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Succession stages and soil attributes influence the structure of arbuscular mycorrhizal fungi communities in the Atlantic Forest

Abstract

The objective of this study was to determine the structure, diversity, composition and drivers of AMF communities in succession areas of Atlantic Forest. Soil and root samples were collected in three natural ecosystems (mature rainforests, early and late secondary forests) with three areas on each ecosystem. In total, 38 AMF taxa were identified in field samples and three more in trap cultures with a greater richness of Acaulospora and Glomus. Based on a richness estimator, 70% of the AMF species were identified. Highest rates of root colonization and number of glomerospores were recorded in the early secondary forest. AMF species diversity differed between early and late forests. The main drivers of AMF distribution were coarse and fine sand, silt, Al, P, Na, pH and base saturation. The greatest number of exclusive species was recorded in the mature rainforests. The distribution of AMF communities was influenced by different successional stages and some soil attributes.

Keywords:
Community assembly; Glomeromycota; glomerospores; mycorrhiza; tropical rainforest

Introduction

The Atlantic Forest in Brazil consists of native forest formations [Dense, Mixed (=Araucaria Forest) and Open Ombrophylous Forest; Semideciduous Seasonal Forest; and Seasonal Deciduous Forest and associated ecosystems, such as mangroves, restingas, highland fields, inland marshes and forest enclaves in the Northeast (MMA 2022MMA - Ministério do Meio Ambiente. 2022. Mata Atlântica. https://www.gov.br/mma/pt-br/assuntos/ecossistemas-1/biomas/mata-atlantica. 12 Jan. 2023.
https://www.gov.br/mma/pt-br/assuntos/ec...
), extending over 112 Mha (Rezende et al. 2018Rezende CL, Scarano FR, Assad ED et al. 2018. From hotspot to hopespot: An opportunity for the Brazilian Atlantic Forest. Perspectives in Ecology and Conservation 16: 208-214.). It provides countless environmental services available to the people, such as climate balance, soil stability and water supply (MMA 2010MMA - Ministério do Meio Ambiente, Secretaria de Biodiversidade e Florestas. 2010. Mata Atlântica: Patrimônio nacional dos brasileiros. Brasília, Ministério do Meio Ambiente.) and constitutes a natural habitat for numerous species of fauna and flora, presenting great biological richness with a high degree of endemism (Myers et al. 2000Myers N, Mittermeier RA, Mittermeier CG, Fonseca GAB, Kent J. 2000. Biodiversity hotspots for conservation priorities. Nature 403: 853-858. ). Fungi are also well represented in this biome with approximately 3,291 species recorded (Flora e Funga do Brasil 2023Flora e Funga do Brasil. 2023. Jardim Botânico do Rio de Janeiro. http://floradobrasil.jbrj.gov.br/. 12 Jan. 2023.
http://floradobrasil.jbrj.gov.br/...
) performing important ecosystem services. However, much of this biological diversity has been lost, even before its ecological or economic importance was known (Almeida 2016Almeida DS. 2016. Recuperação ambiental da Mata Atlântica. Editus, Ilhéus.). The Atlantic Forest is constantly affected by human practices, especially deforestation, which have reduced the forest to small patches of vegetation (MMA 2010MMA - Ministério do Meio Ambiente, Secretaria de Biodiversidade e Florestas. 2010. Mata Atlântica: Patrimônio nacional dos brasileiros. Brasília, Ministério do Meio Ambiente.). These fragments have become most vulnerable due to the loss of biodiversity highlighting the need for studies to identify and protect all species essential for the maintenance of these environments.

As observed in the Atlantic Forest, secondary forest landscapes are prevailing in tropical forests worldwide (Lugo 2009Lugo AE. 2009. The emerging era of novel tropical forests. Biotropica 41: 589-591. ). Secondary vegetation appears after a certain area has suffered a disturbance, natural or human, such as an area abandoned after its use in agriculture. As a response to human actions or natural events there is a progressive replacement of plant species in nature over time and place, characterizing an ecological succession (Gandolfi et al. 2007Gandolfi S, Rodrigues RR, Martins SV. 2007. Theoretical bases of the forest ecological restoration. In: Rodrigues RR, Martins SV, Gandolfi S (eds.). High diversity forest restoration in degraded areas. New York, Nova Science Publishers. p. 27-60.). This succession of species can be classified as an initial stage [with herbaceous/shrubby physiognomy of small size, variable diversity with few arboreal species, absence of understory and presence of many pioneer species] followed by an intermediate stage [with arboreal and/or shrub physiognomy predominating over herbaceous and greater diversity of woody species in relation to the primary stage] and finally a late stage [with arboreal physiognomy dominating the others, forming a closed canopy] (CONAMA 2007CONAMA - Conselho Nacional do Meio Ambiente, Ministério do Meio Ambiente. 2007. Resolução No 391/2007, de 25 de junho de 2007. Biomas - Estágios sucessionais da vegetação da Mata Atlântica. Paraíba, Conselho Nacional do Meio Ambiente.) and species that develop in conditions of light or intense shade, remaining throughout their lives or until reaching the forest canopy (Gandolfi et al. 1995Gandolfi S, Leitão FH, Bezerra CLF. 1995. Composição florística e estrutura fitossociológica do estrato arbóreo de mata mesófila semidecidua de encosta, no município de Guarulhos - SP. Revista Brasileira de Biologia 55: 753-767. ).

Arbuscular mycorrhizal fungi (AMF) are important agents for the advancement of plant succession in ecosystems as they provide greater nutritional support for plant species, especially pioneers (Zangaro et al. 2007Zangaro W, Nishidate FR, Vandresen J, Andrade G, Nogueira MA. 2007. Root mycorrhizal colonization and plant responsiveness are related to root plasticity, soil fertility and successional status of native woody species in southern Brazil. Journal of Tropical Ecology 23: 53-62. ). As essential representatives of the soil micro biota, AMF form a mutualistic symbiotic association with most plant species and, as obligate biotrophs, require the plant to complete their life cycle (Smith & Read 2008Smith SE, Read DJ. 2008. Mycorrhizal Symbiosis. 3rd. edn. London, Academic Press.).

Classified in the phylum Glomeromycota (Wijayawardene et al. 2022Wijayawardene NN, Hyde KD, Dai DQ et al. 2022. Outline of Fungi and fungus-like taxa-2021. Mycosphere 13: 53-453. ), AMF allow an increase in the area of ​​nutrient assimilation by plants, especially mineral nutrients with little mobility in the soil and of extreme importance, such as P, Cu and Zn (Smith & Read 2008Smith SE, Read DJ. 2008. Mycorrhizal Symbiosis. 3rd. edn. London, Academic Press.). In addition to nutritional benefits, these microorganisms provide greater tolerance to abiotic and biotic stresses (Gianinazzi et al. 2010Gianinazzi S, Gollotte A, Binet MN, van Tuinen D, Redecker D, Wipf D. 2010. Agroecology: The key role of arbuscular mycorrhizas in ecosystem services. Mycorrhiza 20: 519-530.), such as water (Frosi et al. 2016Frosi G, Barros VA, Oliveira MT et al. 2016. Symbiosis with AMF and leaf P i supply increases water deficit tolerance of woody species from seasonal dry tropical forest. Journal of Plant Physiology 207: 84-93.) and saline (Yano-Melo et al. 2003Yano-Melo AM, Trufem SF, Maia LC. 2003. Arbuscular mycorrhizal fungi in salinized and surrounded areas at the São Francisco Submedium Valley, Brazil. Hoehnea 30: 79-87.) stress, also assisting in nutrient cycling (van der Heijden et al. 2015van der Heijden MG, Martin FM, Selosse MAA, Sanders IR. 2015. Mycorrhizal ecology and evolution: The past, present, and the future. New Phytologist 205: 1406-1423. ).

In order to adapt to different environmental conditions, AMF have evolved different survival strategies, being classified by Chagnon et al. (2013)Chagnon PL, Bradley RL, Maherali H, Klironomos JN. 2013. A trait-based framework to understand life history of mycorrhizal fungi. Trends in Plant Science 18: 484-491. as: competitors, stress tolerant or ruderal (C-S-R). Competitors, such as members of Gigasporales, invest in greater mycelial growth for soil exploration, have lower glomerospore production and require higher carbon content from their plant hosts. The stress-tolerant species have a low growth rate, mycelium with high resistance to abiotic stressors, such as acidity and low temperature, and are represented by members of Acaulosporaceae. Ruderals have a high growth rate, ability to regenerate fragmented hyphae, investing early in the production of glomerospores, such as Glomerales species (Chagnon et al. 2013Chagnon PL, Bradley RL, Maherali H, Klironomos JN. 2013. A trait-based framework to understand life history of mycorrhizal fungi. Trends in Plant Science 18: 484-491. ). de León et al. (2016)de León DG, Moora M, Öpik M et al. 2016. Dispersal of arbuscular mycorrhizal fungi and plants during succession. Acta Oecologica 77: 128-135. observed that in the early stages of plant succession AMF with ruderal characteristics predominate, colonizing more efficiently such hostile environments. In addition to the different life strategies, these fungal families have different ways of quickly colonizing roots, having highly infective mycelia, while Gigasporales has better structured mycelia and colonize their plant hosts more slowly (Hart & Reader 2002Hart MM, Reader RJ. 2002. Taxonomic basis for variation in the colonization strategy of arbuscular mycorrhizal fungi. New Phytologist 153: 335-344.).

In areas of different stages of succession in the Atlantic Forest, vegetation modification can alter the richness and diversity of AMF species (da Silva et al. 2015ada Silva DKA, Coutinho FP, Escobar IEC et al. 2015a. The community of arbuscular mycorrhizal fungi in natural and revegetated coastal areas (Atlantic Forest) in northeastern Brazil. Biodiversity Conservation 24: 2213-2226.; bda Silva DKA, Souza RG, Velez BAA, Silva GA, Oehl F, Maia LC. 2015b. Communities of arbuscular mycorrhizal fungi on a vegetation gradient in tropical coastal dunes. Applied Soil Ecology 96: 7-17. doi: 10.1016/j.apsoil.2015.06.009
https://doi.org/10.1016/j.apsoil.2015.06...
; da Silva et al. 2016da Silva CF, Pereira MG, Santos VL, Miguel DL, Silva EMR. 2016. Fungos micorrízicos arbusculares: Composição, comprimento de micélio extraradicular e glomalina em áreas de Mata Atlântica. Ciência Florestal 26: 419-430.), as well as glomerospore density (Zangaro et al. 2013Zangaro W, Rostirola LV, Souza PB et al. 2013. Root colonization and spore abundance of arbuscular mycorrhizal fungi in distinct successional stages from an Atlantic rainforest biome in southern Brazil. Mycorrhiza 23: 221-233.) and mycorrhizal colonization (Zangaro et al. 2000Zangaro W, Bononi VLR, Trufen SB. 2000. Mycorrhizal dependency, inoculum potential and habitat preference of native woody species in South Brazil. Journal of Tropical Ecology 16: 603-622.; Aidar et al. 2004Aidar MPM, Carrenho R, Joly AC. 2004. Aspects of arbuscular mycorrhizal fungi in na Atlantic Forest chronosequence. Parque Estadual Turístico do Alto Ribeira (PETAR), SP. Biota Neotrópica 4: 1-15.). As indicated by Pereira et al. (2018)Pereira CMR, Silva DKA, Goto BT, Rosendahl S, Maia LC. 2018. Management practices may lead to loss of arbuscular mycorrhizal fungal diversity in protected areas of the Brazilian Atlantic Forest. Fungal Ecology 34: 50-58., vegetation and soil characteristics are important drivers of AMF communities in this biome.

Considering the profound influence of AMF on the stability of successional environments, the following hypotheses were tested: (1) areas of mature forest have greater diversity of AMF species than areas of initial succession; and (2) in areas of initial succession there is a greater abundance of AMF propagules that have a ruderal life strategy, characterized by high production of glomerospores, compared to areas at a more advanced stage of succession. In this context, the objectives of this study were to determine the structure, diversity, composition and structuring factors (drivers) of AMF communities in successional areas of the tropical Atlantic Rainforest in Brazil. This information will support efficient restoration strategies in Atlantic Forest areas.

Material and methods

Study areas

This study was carried out in the Dois Irmãos State Park (PEDI), located in the northwest of the city of Recife, PE, at coordinates 7º59'30” and 8º01'00”S and 34º56'30” and 34º57'30”W (Mesquita et al. 2020Mesquita ANS, Silva AFO, Santos A, Siqueira WN. 2020. A relação entre ambiente e sociedade: a importância das práticas de Educação Ambiental no Parque Estadual Horto Dois Irmãos (Recife-Brasil). Revista Brasileira de Meio Ambiente 8: 11-29.). The climate of the region is classified as tropical humid coastal type As', according to Koppen, with average monthly temperatures above 25.5 ºC (Lima et al. 2018Lima MS, Freire FJ, Marangon LC, Almeida BG, Ribeiro EP, Santos RL. 2018. Solos florestais em fragmento de floresta urbana na mata de Dois Irmãos, Recife, Pernambuco, Brasil. Ciência Florestal 28: 542-553.), and the predominant soils are ferralsols, acrisols, and arenosols, as mentioned by da Cunha et al. (2021)da Cunha JAS, Fonsêca NC, Cunha JSA, Rodrigues LS, Gusmão RAF, Lins-e-Silva ACB. 2021. Selective logging in a chronosequence of Atlantic Forest: Drivers and impacts on biodiversity and ecosystem services. Perspectives in Ecology and Conservation 19: 286-292.. The site is characterized as an environmental protection area. However, it is constantly threatened by human pressures and is vulnerable to predatory actions by the surrounding population, in addition to being surrounded by highways (Rodrigues & Silva 2014Rodrigues MF, Silva SPV. 2014. Plano de Manejo do Parque Estadual de Dois Irmãos. Recife, Secretaria de Meio Ambiente e Sustentabilidade do estado de Pernambuco.).

The PEDI has an area of approximately 1,158 ha and is formed from remnants of the Atlantic Rainforest, characterized as Lowland Dense Ombrophilous Forest (Lima et al. 2018Lima MS, Freire FJ, Marangon LC, Almeida BG, Ribeiro EP, Santos RL. 2018. Solos florestais em fragmento de floresta urbana na mata de Dois Irmãos, Recife, Pernambuco, Brasil. Ciência Florestal 28: 542-553.), in a stage of secondary succession, resulting from logging and natural tree death (Rodrigues & Silva 2014Rodrigues MF, Silva SPV. 2014. Plano de Manejo do Parque Estadual de Dois Irmãos. Recife, Secretaria de Meio Ambiente e Sustentabilidade do estado de Pernambuco.). The most common tree families are Fabaceae, Lecythidaceae, Anacardiaceae, Melastomataceae and Moraceae (Braga et al. 2021Braga MB, Leite MS, Luz SCS. 2021. Biodiversidade nas UCNs: Vegetação e Flora. In: Braga MB, Leite MS, Luz SCS (eds.). Biodiversidade das unidades de conservação do Recife. Itacaiúnas, Editora Ananindeua. p. 19-20.).

Sampling

Soil and root samples were collected during the dry season (February 2021), in three ecosystems of PEDI, with three areas for each stage of succession: early secondary forest (<38 years), late secondary forest (38-50 years) and mature forest (at least 60 years old). The average annual precipitation at the sampling areas is 2.263 mm, with a rainy period concentrated from April to August (Falcão & Silva 2022Falcão M, Silva ACBL. 2022. Plano de Manejo do Parque Estadual de Dois Irmãos. Recife, Secretaria de Meio Ambiente e Sustentabilidade de Pernambuco.). The mature forest fragment covers 384.42 ha, while the younger secondary forest, with two successional stages (early and late) comprises 774.09 ha (da Cunha et al. 2021da Cunha JAS, Fonsêca NC, Cunha JSA, Rodrigues LS, Gusmão RAF, Lins-e-Silva ACB. 2021. Selective logging in a chronosequence of Atlantic Forest: Drivers and impacts on biodiversity and ecosystem services. Perspectives in Ecology and Conservation 19: 286-292.). The history of these areas was determined from aerial photos and satellite images, delimiting a chronosequence, according to da Cunha et al. (2021)da Cunha JAS, Fonsêca NC, Cunha JSA, Rodrigues LS, Gusmão RAF, Lins-e-Silva ACB. 2021. Selective logging in a chronosequence of Atlantic Forest: Drivers and impacts on biodiversity and ecosystem services. Perspectives in Ecology and Conservation 19: 286-292.. The predominant species in each successional forest stage are listed in Tab. 1. In each area a geographically demarcated 30x30 m grid was established, from which five simple samples of rhizospheric soil (0-15 cm depth) were collected, totalling 45 sampling units.

Table 1
Dominant plant species in the early secondary forest, late secondary forest and mature forest in Dois Irmãos State Park, PE.

Trap cultures

Trap cultures were established to stimulate the production of spores, especially from species that had not sporulated in the field before soil sampling, and to obtain new glomerospores in good condition to facilitate identification. The cultures were mounted in plastic pots with 500 g of sterilized sand + 500 g of soil from field samples. In each pot, three seeds of bean (Phaseolus vulgaris L.), three of forage sorghum (Sorghum bicolor L.) and three of corn (Zea mays L.) were placed. The pots were kept in a greenhouse of the Mycology Department / Federal University of Pernambuco for a period of four months and watered every other day, without adding nutrient solution. After this period, the plants were subjected to water stress for two weeks. Then aliquots of 100 g of soil were taken from each sample for extraction of glomerospores and subsequent taxonomic identification.

Quantification of glomerospores and AMF identification

Glomerospores from field samples and trap cultures were extracted from 100 g-1 of homogenized dry soil by wet sieving (Gerdemann & Nicolson 1963Gerdemann JW, Nicolson TH. 1963. Spores of mycorrhizal Endogone species extracted from soil by wet sieving and decanting. Transactions of the British Mycological Society 46: 235-244.) and sucrose centrifugation (Jenkins 1964Jenkins WR. 1964. A rapid centrifugal-flotation technique for separating nematodes from soil. Plant Disease Report 48: 692.). The isolates from the field samples were quantified in a channelled plate, with the aid of a stereomicroscope (40x). After that, all glomerospores (from field and trap cultures) were separated by morphotypes and mounted in glass slides with PVLG (polyvinyl alcohol and lactoglycerol) and PVLG + Melzer’s reagent for further identification of AMF species, using specific literature including the most recent descriptions of AMF species.

Analysis of mycorrhizal colonization

The collected roots were separated from each soil sample, washed, diaphanized with KOH (10%) and the fungal structures inside the roots were stained with Trypan blue (0.05%) following the methodology of Phillips and Hayman (1970)Phillips JM, Hayman DS. 1970. Improved procedures for cleaning roots and staining parasitic and vesicular-arbuscular mycorrhizal fungi for rapid assessment of infection. Transactions of the British Mycological Society 55: 158-161.. The percentage of colonization was established by the intersection method proposed by McGonigle et al. (1990)Mcgonigle TP, Miller MH, Evans DG, Fairchild GL, Swan JA. 1990. A new method which gives an objective measure of colonization of roots by vesicular-arbuscular mycorrhizal fungi. New Phytologist 115: 495-501., considering the following structures in the roots: hyphae, arbuscules, vesicles and glomerospores.

Data analysis

The following parameters were determined for all samples: number of glomerospores, mycorrhizal colonization, AMF species richness and Shannon and Weaver (1949)Shannon CE, Weaver W. 1949. The mathematical theory of communication. Illinois, Urbana, University of Illinois Press. diversity index. Glomerospore number data were transformed into log (x+1) and colonization data transformed into log 10, before analysis of variance (ANOVA). To determine whether the richness and diversity of AMF species vary between the successional stages, analyses of variance (ANOVA) were used and, when significant differences were detected, the Tukey test was applied.

In order to estimate the richness of AMF species we used a method based on the extrapolation of the accumulation curve to represent the entire AMF richness (Chao et al. 2013Chao A, Wang YT, Jost L. 2013. Entropy and the species accumulation curve: A novel entropy estimator via discovery rates of new species. Methods in Ecology and Evolution 4: 1091-1100.; Hsieh et al. 2016Hsieh TC, Ma KH, Chao A. 2016. iNEXT: An R package for rarefaction and extrapolation of species diversity (Hill numbers). Methods in Ecology and Evolution 7: 1451-1456.). The relative abundance of glomerospores of each species per area was calculated from the ratio between the numbers of spores of a given species by the total number of spores per area. The frequency of occurrence (FO) of the species in each successional stage was determined according to the equation: FO = Ji/k where, FO = frequency of occurrence of the species, Ji=number of samples from the area (15) in which the species occurred, k = total number of soil samples. The relative frequency of occurrence is expressed as a percentage and the AMF species were classified as: dominant (FO>50%), very common (FO between 31% and 50%), common (FO between 10% and 30%) and rare (FO<10%) (Zhang et al. 2004Zhang Y, Guo LD, Liu RJ. 2004. Survey of arbuscular mycorrhizal fungi in deforested and natural forest land in the subtropical region of Dujiangyan, southwest China. Plant and Soil 261: 257-263.). To test the relationship of AMF species with the different successional stages, an indicator species analysis was used (Dufrêne & Legendre 1997Dufrêne M, Legendre P. 1997. Species assemblages and indicator species: The need for a flexible asymmetrical approach. Ecological Monographs 67: 345-366.). The indication values (IV) were calculated for each species and the significance determined by the Monte Carlo test using 999 permutations.

Multivariate permutation analysis (PERMANOVA), based on Bray-Curtis distance, was applied to test whether AMF communities differed between environments in succession. PERMANOVA was also applied, based on Euclidean distance, to test whether the physicochemical properties differed between the study areas, using the “adonis” function in the “’vegan” package (Oksanen et al. 2022Oksanen J, Blanchet FG, Friendly M et al. 2022. Vegan: Community ecology package version (2.5-6). ). For the physical and chemical soil attributes one-way ANOVA was also applied among areas.

Redundancy analysis (RDA) was used to explore whether there was a significant relationship between the composition of AMF communities and soil variables (phosphorus (P), pH, potassium (K), sodium (Na), aluminum (Al), calcium (Ca), magnesium (Mg), hydrogen (H), cation exchange capacity (CEC), base saturation (V), coarse sand, fine sand, silt and clay. Venn diagrams were built to demonstrate the number of unique and shared species between areas, using a web tool available at (http://www.interactivenn.net//).

The significance of all statistical tests was assessed based on p < 0.05, except in cases of multiple comparisons where the p value was corrected based on the Bonferroni test. All statistical and ecological analyses were carried out using the R program (R Core Team 2022R Core Team. 2022. R: A Language and Environment for statistical computing. R Foundation for Statistical Computing. https://www.R-project.org/. 12 Jan. 2023.
https://www.R-project.org/...
).

Results

Mycorrhizal colonization

Total mycorrhizal colonization differed statistically (p < 0.05) among the areas and was higher in roots collected in the early secondary forest compared to late secondary forest and mature forest (Table 2). Colonization by hyphae, vesicles, arbuscules and spores was also higher in the initial secondary forest area (Table 2).

Table 2
Mycorrhizal colonization by hyphae, arbuscules, vesicles, spores and total, in root fragments in early secondary forest (ESF), late secondary forest (LSF) and mature (MF) forest in Dois Irmãos State Park, PE.

AMF spore density

There was a greater abundance of glomerospores per 100 g of soil in the initial secondary forest (249) than in the mature forest (175) and in the late secondary forest (159; p=0.01; Fig. 1).

Figure 1
Number of glomerospores in soil samples collected in early secondary forest (ESF), late secondary forest (LSF) and mature forest (MF) in Dois Irmãos State Park, PE.

Species richness and diversity

Thirty-eight AMF species were recorded in field samples (Table 3) and three additional species in the trap cultures (Acaulospora scrobiculata, Dominikia sp. 2 and Glomus sp. 4), distributed in 10 families (Acaulosporaceae, Archaeosporaceae, Ambisporaceae, Entrophosporaceae, Glomeraceae, Dentiscutataceae, Gigasporaceae, Scutellosporaceae, Paraglomeraceae and Racocetraceae) and 15 genera: Acaulospora, Archaeospora, Ambispora, Claroideoglomus, Cetraspora, Dominikia, Dentiscutata, Funneliformis, Gigaspora, Glomus, Fuscutata, Oehlia, Orbispora, Paraglomus and Racocetra. The most representative genera were Acaulospora and Glomus, with nine species each, equivalent to 48% of the number of AMF species recorded in this study (Fig. 2). Dominikia was represented by four taxa, Racocetra, Cetraspora, Funneliformis and Gigaspora by two species, and the others (Archaeospora, Ambispora, Claroideoglomus, Dentiscutata, Fuscutata, Oehlia, Orbispora, Paraglomus) represented by only one specific taxon.

Figure 2
Representativeness of AMF genera in areas of early secondary forest (ESF), late secondary forest (LSF) and mature forest (MF) in Dois Irmãos State Park, PE.

Five species (13.1%) were recorded in two of the areas (Cetraspora sp. 1, Glomus microcarpum, Orbispora pernambucana, Paraglomus sp. 1 and Racocetra fulgida) and 24 (63.2%) occurred in only one of the areas (Table 3).

Table 3
Relative abundance (RA) and frequency of occurrence (FO)a of arbuscular mycorrhizal fungi in areas of early secondary forest (ESF), late secondary forest (LSF) and mature forest (MF) in Dois Irmãos State Park, PE.

Glomus brohultii and G. macrocarpum were the most abundant species and dominated in all three forest ecosystems. Acaulospora longula, A. mellea and Dominikia aurea were also recorded in the three ecosystems, with greater abundance, either in the mature forests, in the early secondary and mature forests, or in the early secondary forest respectively. Regarding rare species, 16 were recorded in the mature forest, whereas 6 and 3 were identified in the late and early secondary forest areas, respectively (Table 3).

The identified taxa represent almost 10% of all known for the phylum Glomeromycota. Of the 38 taxa recorded in field samples, nine were shared across all areas: Acaulospora mellea, A. morrowiae, A. foveata, A. longula, Glomus australe, G. glomerulatum G. macrocarpum, G. brohultii and Dominikia aurea (Fig. 3). Of the 26 species recorded in mature forest areas, 14 occurred only in these locations and of the 18 species found in the late secondary forest, five were exclusive to these areas.

Figure 3
Richness of exclusive and shared AMF taxa in areas at different successional stages: mature forest (MF), late secondary forest (LSF) and early secondary forest (ESF) in Dois Irmãos State Park, PE.

No significant difference was observed on richness of AMF species between the successional stages. However, the Shannon species diversity differed between the areas of late and early secondary forests (F= 3.99, df= 2, p= 0.02) (Fig. 4).

Figure 4
Diversity of arbuscular mycorrhizal fungi (AMF) in soil samples collected in early secondary forest (ESF), late secondary forest (LSF) and mature forest (MF) in Dois Irmãos State Park, PE.

Based on the first order Jackknife richness estimator, the estimated number of AMF species was 54 for all areas, with 38 species recovered in the field samples, equivalent to 70% (Fig. 5). For the areas of initial secondary forest, 19 species were estimated and 17 (89%) recovered; in the late forest, 24 species were estimated and 18 (75%) recovered, and of the 41 species estimated for the mature forest, 26 (63 %) were identified.

Figure 5
Accumulation curve of AMF species in areas of Atlantic rainforest in Dois Irmãos State Park, PE.

AMF indicator species

Of the recorded AMF species, three were revealed as indicators of mature forest areas (Glomus sp.1, G. microcarpum, and Acaulospora mellea), three for early secondary forest areas (Dominikia aurea, Orbispora pernambucana and Acaulospora mellea) and only one species (Glomus australe) was an indicator of late secondary forest (Table 4).

Table 4
Indicator AMF species in areas of mature forest, late secondary forest, early secondary forest in Dois Irmãos State Park, PE.

Considering the species by the type of spore formation (acaulosporoid, gigasporoid and glomoid), the acaulosporoid type was an indicator of areas of mature forest and early secondary forest, with indication values of 87% and p < 0.01.

Soil attributes and arbuscular mycorrhizal fungal communities

The soils of the study areas were considered acidic, with a lower pH in the mature forest areas (pH = 3.82b), in comparison with the other ESF (pH= 4.52a) and LSF (pH= 4.31a) areas. Phosphorus and aluminum contents differed significantly between areas and were higher in mature forest areas. P concentration in mature forest soils was 5.60 mg/dm3, while in ESF areas it was 3.87 mg/dm3 and in LSF 3.40 mg/dm3, without differing between them. Al content ranged from 1.23 cmolc/dm3 in soils of mature forest to 0.63 cmolc/dm3 in LSF and 0.59 cmolc/dm3 in ESF, with no significant difference between soils of these two successional stages.

Regarding the physical characteristics, in all areas predominated coarse sand (percentages of 60,86b in the MSF; 55,06b and 71,33a respectively in the LSF and ESF). Proportions of silt varied from 10.2a (MSF), 8.26a (LSF) and 3.80b (ESF), and those of fine sand were from 14-20%.

The multivariate permutation analysis (PERMANOVA), based on the physical and chemical components of the soil, showed differences between forest types/ecosystems (early secondary forest, late secondary forest, and mature forest) (F=10.773; p <0.0001). The composition of AMF communities also differed between late secondary and mature (F=11.055; p <0.003) and late secondary and early (F=22.014; p <0.003) forest areas.

Redundancy analysis (RDA) explained 16% of the total variation, with the largest part for axis 1 (8.8%) and the smallest for axis 2 (7.8%) of the RDA. The following main factors influenced the AMF communities in the forests: coarse sand, silt, fine sand, aluminum, cation exchange capacity, phosphorus, sodium, potassium, hydrogen, magnesium, pH and base saturation (Fig. 6).

Figure 6
Redundancy analysis (RDA) based on AMF communities’ composition in areas of mature forest, late secondary forest and early secondary forest in Dois Irmãos State Park, PE. Abbreviations: P (phosphorus), K (potassium), Na (sodium), Al (aluminum), Ca (calcium), Mg (magnesium), m (aluminum saturation), H (hydrogen), CEC (cation exchange capacity) and V (base saturation).

Discussion

In this study, the structure of AMF communities was investigated in areas of Atlantic Forest characterized as mature forest, early secondary forest and late secondary forest, using ecological data on richness, diversity and species composition of this fungal group.

The analysis of root fragments collected in each of the areas showed that mycorrhizal colonization was higher in the initial secondary forest. In other studies, a higher percentage of colonization was also recorded in areas undergoing initial regeneration, compared to more advanced stages of succession (Zangaro et al. 2007Zangaro W, Nishidate FR, Vandresen J, Andrade G, Nogueira MA. 2007. Root mycorrhizal colonization and plant responsiveness are related to root plasticity, soil fertility and successional status of native woody species in southern Brazil. Journal of Tropical Ecology 23: 53-62. ; 2013Zangaro W, Rostirola LV, Souza PB et al. 2013. Root colonization and spore abundance of arbuscular mycorrhizal fungi in distinct successional stages from an Atlantic rainforest biome in southern Brazil. Mycorrhiza 23: 221-233.). Greater mycorrhizal colonization in plant species in the first stages of succession indicates greater dependence on the benefits promoted by fungi in more hostile environments, as they help in the establishment, growth and survival of the plants (Zangaro et al. 2000Zangaro W, Bononi VLR, Trufen SB. 2000. Mycorrhizal dependency, inoculum potential and habitat preference of native woody species in South Brazil. Journal of Tropical Ecology 16: 603-622.). In contrast, plants in more advanced stages of succession which by definition are in more balanced environments exert less nutritional demand making the association with AMF less necessary (Zangaro et al. 2002Zangaro W, Nisizaki SMA, Domingos JCB, Nakano EM. 2002. Micorriza arbuscular em espécies arbóreas nativas da bacia do rio Tibagi, Paraná. Cerne 8: 77-87.). On the other hand, if individual observations are made it is possible to find a higher proportion of colonization in late-successional plants than in early successional plants when inoculated with some AM fungal species, indicating that the response depends also on the associated AMF (Koziol & Bever 2016Koziol L, Bever D. 2016. AMF, phylogeny, and succession: specificity of response to mycorrhizal fungi increases for late-sucessional plants. Ecosphere 7: 11.).

Plant species characteristic of environments in initial succession have a high growth rate and photosynthetic activity, increasing the carbon available to AMF (Gamage et al. 2004Gamage HK, Singhakumara BMP, Ashton MS. 2004. Effects of light and fertilization on arbuscular mycorrhizal colonization and growth of tropical rain-forest Syzygium tree seedlings. Journal of Tropical Ecology 20: 525-534.). Therefore, the greater number of arbuscules recorded in plants at this stage demonstrates that the association is in its initial period, with a large bilateral transfer of resources between the symbionts (Bonfante & Genre 2010Bonfante P, Genre A. 2010. Mechanisms underlying beneficial plant-fungus interactions in mycorrhizal symbiosis. Nature Communications 1: 48.; Gutjahr & Parniske 2013Gutjahr C, Parniske M. 2013. Cell and developmental biology of arbuscular mycorrhiza symbiosis. Annual Review of Cell and Developmental Biology 29: 593-617).

The presence of certain fungal structures, such as hypha, is essential for the regeneration of forests (Guadarrama et al. 2008Guadarrama P, Castillo-Argüero S, Ramos-Zapata JA, Camargo-Ricalde SL, Álvarez-Sánchez J. 2008. Propagules of arbuscular mycorrhizal fungi in a secondary dry forest of Oaxaca, México. Revista de Biología Tropical 56: 269-277. ), because the plants provide photosynthates to fungi, favouring the growth of hyphae inside and outside the roots, and resulting in high transfer of nutrients from the soil to the hosts (Lebrón et al. 2012Lebrón L, Lodge DJ, Bayman P. 2012. Differences in arbuscular mycorrhizal fungi among three coffee cultivars in Puerto Rico. ISRN Agronomy 2: 53-78.). The largest amount of hypha recorded in the initial stages of forest regeneration may also indicate greater transfer of essential nutrients for plant growth in this initial stage of succession.

As lipid storage structures, vesicles may be important in regenerating environments as they are useful as energy sources for glomerospore germination under suitable conditions (Roth & Paszkowski 2017Roth R, Paszkowski U. 2017. Plant carbon nourishment of arbuscular mycorrhizal fungi. Current Opinion in Plant Biology 39: 50-56.). Glomerospores are effective structures for the persistence, colonization and propagation of AMF communities, especially for communities in succession (Wu et al. 2007Wu B, Hogetsu T, Isobe K, Ishii R. 2007. Community structure of arbuscular mycorrhizal fungi in a primary successional volcanic desert on the southeast slope of Mount Fuji. Mycorrhiza 17: 495-506.). Therefore, the greater amount of these structures found in the areas of initial secondary forest compared to more mature areas may be related to the survival and reproduction of fungi.

AMF communities are sensitive to the chemical and physical attributes of the soil (de Assis et al. 2018de Assis DMA, Melo MAC, Silva DKA, Oehl F, Silva GA. 2018. Assemblages of arbuscular mycorrhizal fungi in tropical humid and dry forests in the Northeast of Brazil. Botany 96: 859-871.; Ezeokoli et al. 2020Ezeokoli OT, Mashigo SK, Maboeta MS, Bezuidenhout CC, Khasa DP, Adeleke RA. 2020. Arbuscular mycorrhizal fungal community differentiation along a post-coal mining reclamation chronosequence in South Africa: A potential indicator of ecosystem recovery. Applied Soil Ecology 147: 103429. ; Bi et al. 2021Bi Y, Wang K, Du S, Ma S, Zhang J, Xie L. 2021. Shifts in arbuscular mycorrhizal fungal community composition and edaphic variables during reclamation chronosequence of an open-cast coal mining dump. Catena 203: 105301. ; Zhang et al. 2021Zhang J, Quan C, Ma L, Chu G, Liu Z, Tang X. 2021. Plant community and soil properties drive arbuscular mycorrhizal fungal diversity: A case study in tropical forests. Soil Ecology Letters 3: 52-62.), which act as environmental filters for the presence of species in different environments (Rodríguez-Echeverría et al. 2017Rodríguez-Echeverría S, Teixeira H, Correia M et al. 2017. Arbuscular mycorrhizal fungi communities from tropical Africa reveal strong ecological structure. New Phytologist 213: 380-390.). The value of some of these attributes, such as pH, differed between the studied areas.

The AMF community of the areas in initial regeneration was influenced by the pH and coarse sand contents of the soil. This physical attribute was recorded as influencing the distribution of AMF communities in a chronosequence of tropical humid forest in Colombia (Rodríguez-León et al. 2021Rodríguez-León CH, Peña-Venegas CP, Sterling A, Muñoz-Ramirez H, Virguez-Díaz YR. 2021. Changes in Soil-Borne Communities of Arbuscular Mycorrhizal Fungi during Natural Regrowth of Abandoned Cattle Pastures Are Indicative of Ecosystem Restoration. Agronomy 11: 2468.). In rupestrian fields, the coarse sand content also affected the occurrence of AMF species (Carvalho et al. 2012Carvalho F, Souza FA, Carrenho R, Moreira FMS, Jesus EC, Fernandes GW. 2012. The mosaic of habitats in the high-altitude Brazilian rupestrian fields is a hotspot for arbuscular mycorrhizal fungi. Applied Soil Ecology 52: 9-19.).

The soil factors most related to AMF communities in areas undergoing late regeneration were fine sand, sodium, magnesium, calcium, potassium and base saturation contents. Sodium is considered a stressor for AMF, and may induce greater sporulation in environments with a high value of this element (Kumar et al. 2014Kumar A, Dames JF, Gupta A, Sharma S, Gilbert JA, Ahmad P. 2014. Current developments in arbuscular mycorrhizal fungi research and its role in salinity stress alleviation: A biotechnological perspective. Critical Reviews in Biotechnology 35: 461-474.).

For mature forest areas, phosphorus, silt and cation exchange capacity (CEC) were the factors most related to AMF communities. Álvarez-Lopeztello et al. (2019)Álvarez-Lopeztello J, Castillo RF, Robles C, Hernandéz-Cuevas LV. 2019. Spore diversity of arbuscular mycorrhizal fungi in human-modified neotropical ecosystems. Ecological Research 34: 394-405. reported that in a tropical forest in Mexico a higher CEC induced an increase in glomerospore density. This soil attribute is directly linked to soil fertility, as it represents the amount of exchangeable cations that the soil can fix to be later absorbed by plants (Teixeira et al. 2017Teixeira PC, Campos DVB, Saldanha MFC, Pérez DV. 2017. Complexo sortivo do solo. In: Teixeira PC, Donagemma GK, Fontana A, Teixeira WG (eds.). Manual de métodos de análise de solo. Brasília, Embrapa . p. 240-244.).

Phosphorus is essential in plant metabolism and is often found in an inaccessible form in soil (Wright et al. 2018Wright SJ, Turner BL, Yavitt JB et al. 2018. Plant responses to fertilization experiments in lowland, species rich, tropical forests. Ecology 99: 1129-1138.); in general, the levels of this element decrease with the successional advance of forests (Li et al. 2013Li Y, Yang F, Ou Y et al. 2013.Changes in forest soil properties in different successional stages in lower tropical China. PLoS One 8: e81359.; Ullah et al. 2020Ullah S, Muhammad B, Amin R, Abbas H, Muneer MA. 2020. Sensitivity of arbuscular mycorrhizal fungi in old-growth forests: Direct effect on growth and soil carbon storage. Applied Ecological Environment Research 17: 13749-13758.). The role of AMF in regenerating environments is crucial, as they accelerate the process of phosphorus solubilization for plants, especially when it is bound to other nutrients such as aluminum and iron (Liu et al. 2021Liu Y, Zhang G, Luo X et al. 2021. Mycorrhizal fungi and phosphatase involvement in rhizosphere phosphorus transformations improves plant nutrition during subtropical forest succession. Soil Biology and Biochemistry 153: 108099. ). Changes in the composition of AMF communities were observed when the species were submitted to different degrees of fertilization by phosphorus, suggesting greater competition of fungi for plant carbohydrates, since with the nutritional increase of the soil, the mycorrhizal association is less favoured (Liu et al. 2015Liu Y, Johnson NC, Lin M, Guoxi S, Jiang S et al. 2015. Phylogenetic structure of arbuscular mycorrhizal community shifts in response to increasing soil fertility. Soil Biology and Biochemistry 89: 196-205.). In areas with different successional stages, due to mining practices, phosphorus was also one of the soil factors responsible for changes in the composition of AMF communities. Therefore, the status of this element is important in the process of recovering degraded areas, interfering in the relationship of benefits between AMF and plants (Bi et al. 2021Bi Y, Wang K, Du S, Ma S, Zhang J, Xie L. 2021. Shifts in arbuscular mycorrhizal fungal community composition and edaphic variables during reclamation chronosequence of an open-cast coal mining dump. Catena 203: 105301. ).

The highest aluminum levels were found in mature forest areas. Aluminum is a limiting factor for plant growth (Alotaibi et al. 2021Alotaibi MO, Saleh AM, Sobrinho RL et al. 2021. Arbuscular mycorrhizae mitigate aluminum toxicity and regulateproline metabolism in plants grown in acidic soil. Journal of Fungi 7: 531.), since it can inhibit phosphorus absorption, making it unavailable to plants (Liu et al. 2021Liu Y, Zhang G, Luo X et al. 2021. Mycorrhizal fungi and phosphatase involvement in rhizosphere phosphorus transformations improves plant nutrition during subtropical forest succession. Soil Biology and Biochemistry 153: 108099. ). AMF can be affected by aluminum as they receive lower amounts of photosynthates when plants are subjected to stress by this element, decreasing mycorrhizal colonization (Alotaibi et al. 2021Alotaibi MO, Saleh AM, Sobrinho RL et al. 2021. Arbuscular mycorrhizae mitigate aluminum toxicity and regulateproline metabolism in plants grown in acidic soil. Journal of Fungi 7: 531.). Showing that the association with AMF can decrease aluminum levels in plants, these authors also noted that “the impact of aluminum levels on mycorrhizal development appears to be plant species dependent”. Thus, AMF colonization in mature forest areas may also have been affected by the greater amount of aluminum present in the soil in these areas.

Although soils in all areas were considered acidic, those in the mature forests had the lowest pH values, what explains the highest aluminum recorded in these locations. Aluminum becomes soluble when pH decrease and, as a consequence, its amount in the soil solution increases and can become toxic to plants; mycorrhization can aleviate this problem (Alotaibi et al. 2021Alotaibi MO, Saleh AM, Sobrinho RL et al. 2021. Arbuscular mycorrhizae mitigate aluminum toxicity and regulateproline metabolism in plants grown in acidic soil. Journal of Fungi 7: 531.). Soil pH plays an important role, influencing plant growth, mobilization and nutrient availability (Neina 2019Neina D. 2019. The role of soil pH in plant nutrition and soil remediation. Applied and Environmental Soil Science 2019: 5794869. ). In relation to AMF, different species adapt to a specific range of pH to develop (Kawahara et al. 2016Kawahara A, Miyakawa S, Sonoda J, Ezawa T. 2016. Nestedness in arbuscular mycorrhizal fungal communities along soil pH gradients in early primary succession: Acid-tolerant fungi are pH generalists. PLoS One 11: e0165035. ) and it has been suggested that pH is the main driver of AMF communities (Oehl et al. 2010Oehl F, Laczko E, Bogenrieder A et al. 2010. Soil type and land use intensity determine the composition of arbuscular mycorrhizal fungal communities. Soil Biology and Biochemistry 42: 724-738. ; Hazard et al. 2013Hazard C, Gosling P, van der Gast CJ, Mitchell DT, Doohan FM, Bending GD. 2013. The role of local environment and geographical distance in determining community composition of arbuscular mycorrhizal fungi at the landscape scale. ISME Journal 7: 498-508. ; Sun et al. 2016Sun Y, Zhang X, Wu Z, Hu Y, Wu S, Chen B. 2016. The molecular diversity of arbuscular mycorrhizal fungi in the arsenic mining impacted sites in Hunan Province of China. Journal of Environmental Sciences 39: 110-118.). The presence of one Acaulospora species (A. mellea) among the most abundant in the mature forest can be explained by the higher acidity of the soil in this area, as species of this genus are constantly associated with low pH environments (Liu et al. 2021Liu Y, Zhang G, Luo X et al. 2021. Mycorrhizal fungi and phosphatase involvement in rhizosphere phosphorus transformations improves plant nutrition during subtropical forest succession. Soil Biology and Biochemistry 153: 108099. ). Kawahara et al. (2016)Kawahara A, Miyakawa S, Sonoda J, Ezawa T. 2016. Nestedness in arbuscular mycorrhizal fungal communities along soil pH gradients in early primary succession: Acid-tolerant fungi are pH generalists. PLoS One 11: e0165035. mentioned that fungi from acidic soils occur in a wide range of pH and called them pH generalists; moreover, acid-tolerant fungi may predominate and have an important role in the establishment of vegetation in early primary succession.

The total average of glomerospores in the present study reached approximately 2 g-1 of soil, which can be considered low. However, other works in succession areas in the Atlantic Forest, recorded an average of 1 to 10 glomerospores g-1 of soil (Aidar et al. 2004Aidar MPM, Carrenho R, Joly AC. 2004. Aspects of arbuscular mycorrhizal fungi in na Atlantic Forest chronosequence. Parque Estadual Turístico do Alto Ribeira (PETAR), SP. Biota Neotrópica 4: 1-15.) and 2 to 8 glomerospores g-1 of soil (Stürmer et al. 2006Stürmer SL, Klauberg Filho O, Queiroz MH, Mendonça MM. 2006. Occurrence of arbuscular mycorrhizal fungi in soils of early stages of a secondary succession of Atlantic Forest in South Brazil. Acta Botanica Brasilica 20: 513-521.). In a review paper, Pagano et al. (2019)Pagano MC, Silva DKA, Silva AS, Maia LC. 2019. Tropical Dry Forest Compared to Rainforest and Associated Ecosystems in Brazil. In: Pagano MC, Lugo MA (eds.). Mycorrhizal fungi in South America. New York, Springer International Publishing. p. 177-192. mention that the density of glomerospores in the Atlantic Forest is variable and can reach 20 glomerospores g-1 of soil. In others tropical humid forest, in China, the density has ranged from less than one to 25 glomerospores g-1 of soil (Zhao et al. 2003Zhao ZW, Wang GH, Yang L. 2003. Biodiversity of arbuscular mycorrhizal fungi in a tropical rainforest of Xishuangbanna, southwest China. Fungal Diversity 13: 233-242.). This variability can be attributed to different types of soil and diversity of plant species (Pagano et al. 2019Pagano MC, Silva DKA, Silva AS, Maia LC. 2019. Tropical Dry Forest Compared to Rainforest and Associated Ecosystems in Brazil. In: Pagano MC, Lugo MA (eds.). Mycorrhizal fungi in South America. New York, Springer International Publishing. p. 177-192.). Moreover, AMF have different sporulation rates and periods (Oehl et al. 2009Oehl F, Sieverding E, Ineichen K, Mäder P, Wiemken A, Boller T. 2009. Distinct sporulation dynamics of arbuscular mycorrhizal fungal communities from different agroecosystems in long-term microcosms. Agriculture, Ecosystems & Environment 134: 257-268.).

Glomerospore density can be affected by soil attributes (da Silva et al. 2017da Silva IR, Silva DK, de Souza F, Oehl F, Maia LC. 2017. Changes in arbuscular mycorrhizal fungal communities along a river delta island in northeastern Brazil. Acta Oecologica 79: 8-17.; Vieira et al. 2020Vieira LC, Silva DKA, Escobar IEC et al. 2020. Changes in an arbuscular mycorrhizal fungi community along an environmental gradient. Plants (Basel) 9: 52.) and vegetation (Turrini et al. 2018Turrini A, Bedini A, Loor MB et al. 2018. Local diversity of native arbuscular mycorrhizal symbionts differentially affects growth and nutrition of three crop plant species. Biology and Fertility of Soils 54: 203-217.). In the present study, soils in areas undergoing initial regeneration were classified as sandy (dos Santos et al. 2018dos Santos HG, Jacomine PKT, Anjos LHCet al. 2018. Sistema Brasileiro de Classificação de Solos. 5th. edn. Brasília, Embrapa.), which are generally characterized by low nutrient availability, low water retention capacity and low levels of organic matter (Rocha et al. 2021Rocha MJC, Ongarato G, Ferrari Neto J, Costa FA, Jadoski CJ, Guilherme DO. 2021. Componentes da produção do feijão preto cultivado em solo arenoso em função da inoculação das suas sementes com Azospirillum Brasiliense. Brazilian Journal of Development 7: 95385-95396.). This type of soil favours sporulation and dissemination of AMF (Aker et al. 2022Aker AM, Caproni AL, Berbara RLL et al. 2022. Arbuscular mycorrhizal fungi in the Cerrado biome: Effects of land use system, soil texture, and seasonality. Revista Caatinga 35: 170-180.), since it has larger porous spaces, also facilitating soil-root exchange through AMF (Vieira et al. 2020Vieira LC, Silva DKA, Escobar IEC et al. 2020. Changes in an arbuscular mycorrhizal fungi community along an environmental gradient. Plants (Basel) 9: 52.). Conversely, soils in areas of late secondary and mature forest may contain higher clay contents, which can negatively affect the propagation of AMF in the environment (Lekberg et al. 2007Lekberg Y, Koide RT, Rohr JR, Aldrich-Wolfe L, Morton JB. 2007. Role of niche restrictions and dispersal in the composition of arbuscular mycorrhizal fungal communities. Journal of Ecology 95: 95-105.), considering that they are made up of heavier and less porous particles, which makes sporulation difficult (Moebius-Clune et al. 2013Moebius-Clune DJ, Moebius-Clune BN, van Es HM, Pawlowska TE. 2013. Arbuscular mycorrhizal fungi associated with a single agronomic plant host across the landscape: Community differentiation along a soil textural gradient. Soil Biology and Biochemistry 64: 191-199.).

Higher AMF sporulation was recorded in areas of early secondary forest compared to other forest areas. Similar results were recorded in areas of the Atlantic Forest under environmental pressures, such as areas with little restoration time (Bonfim et al. 2013Bonfim JA, Vasconcellos RLF, Stürmer SL, Cardoso EJBN. 2013. Arbuscular mycorrhizal fungi in the Brazilian Atlantic forest: A gradient of environmental restoration. Applied Soil Ecology 71: 7-14.), in natural regeneration (Rodrigues 2019Rodrigues LS. 2019. A diversidade arbórea em uma paisagem florestal urbana: efeitos dos estágios sucessionais e de perturbações antrópicas crônicas. M. Sc. Thesis, Universidade Federal Rural de Pernambuco, Recife.) and under different land uses (Oehl et al. 2010Oehl F, Laczko E, Bogenrieder A et al. 2010. Soil type and land use intensity determine the composition of arbuscular mycorrhizal fungal communities. Soil Biology and Biochemistry 42: 724-738. ; Pereira et al. 2014Pereira CMR, Silva DKA, Ferreira ACA, Goto BT, Maia LC. 2014. Diversity of arbuscular mycorrhizal fungi in Atlantic forest areas under different land uses. Agriculture, Ecosystems & Environment 185: 245-252.). In stressed environments, AMF seek survival, which is reflected in high sporulation rates, as glomerospores are the resistance structures of these fungi (da Silva et al. 2006da Silva CF, Pereira MG, Silva EMR, Correia MEF, Saggin-Júnior OJ. 2006. Fungos micorrízicos arbusculares em áreas no entorno do Parque Estadual da Serra do Mar em Ubatuba (SP). Revista Caatinga 19: 1-10.). This demonstrates a greater action of AMF in soils that are in the recovery process (Piotrowski et al. 2008Piotrowski JS, Lekberg Y, Harner MJ, Ramsey PW, Rillig MC. 2008. Dynamics of mycorrhizae during development of riparian forests along an unregulated river. Ecography 31: 245-253.), unlike what is observed in conserved areas, with fungi investing more energy in mycelial growth than in glomerospore production, as observed for areas of late and mature secondary forest in the Amazon Forest (Stürmer & Siqueira 2011Stürmer SL, Siqueira JO. 2011. Species richness and spore abundance of arbuscular mycorrhizal fungi across distinct land uses in Western Brazilian Amazon. Mycorrhiza 21: 255-267.).

The 29 AMF taxa identified at the species level in field samples and trap cultures correspond to 18% of the recorded taxa (153) in the Atlantic Forest (Maia et al. 2020Maia LC, Passos JH, Silva JA, Oehl F, Assis DMA. 2020. Species diversity of Glomeromycota in Brazilian biomes. Sydowia 72: 181-205.) and to 8% of all species described (343) in the phylum Glomeromycota (Wijayawardene et al. 2022Wijayawardene NN, Hyde KD, Dai DQ et al. 2022. Outline of Fungi and fungus-like taxa-2021. Mycosphere 13: 53-453. ). A similar number of taxa was also recorded in successional areas in the Amazon (Reyes et al. 2019Reyes HA, Ferreira PFA, Silva LC, Costa MG, Nobre CP, Gehring C. 2019. Arbuscular mycorrhizal fungi along secondary forest succession at the eastern periphery of Amazonia: Seasonal variability and impacts of soil fertility. Applied Soil Ecology 136: 10.) and in Chile (Castillo et al. 2006Castillo CG, Borie F, Godoy R, Rubio R, Sieverding E. 2006. Diversity of mycorrhizal plant species and arbuscular mycorrhizal fungi in evergreen forest, deciduous forest and grassland ecosystems of Southern Chile. Journal of Applied Botany and Food Quality 80: 40-47.), but differed from that observed in other studies in natural areas and in succession in the Atlantic Forest, where in some cases it was higher (Aidar et al. 2004Aidar MPM, Carrenho R, Joly AC. 2004. Aspects of arbuscular mycorrhizal fungi in na Atlantic Forest chronosequence. Parque Estadual Turístico do Alto Ribeira (PETAR), SP. Biota Neotrópica 4: 1-15.; Bonfim et al. 2013Bonfim JA, Vasconcellos RLF, Stürmer SL, Cardoso EJBN. 2013. Arbuscular mycorrhizal fungi in the Brazilian Atlantic forest: A gradient of environmental restoration. Applied Soil Ecology 71: 7-14.) and in others it was lower (Rodrigues et al. 2021Rodrigues LA, Silva DKA, Yano-Melo AM. 2021. Arbuscular mycorrhizal fungal assemblages in conservation unit of Atlantic forest areas under native vegetation and natural regeneration. Microbial Ecology 82: 122-134.).

Glomus and Acaulospora were the most representative genera in the studied places, together representing 48% of the registered taxa. The dominance of these genera has also been observed in other successional environments in the Atlantic Forest (Aidar et al. 2004Aidar MPM, Carrenho R, Joly AC. 2004. Aspects of arbuscular mycorrhizal fungi in na Atlantic Forest chronosequence. Parque Estadual Turístico do Alto Ribeira (PETAR), SP. Biota Neotrópica 4: 1-15.; Stürmer et al. 2006Stürmer SL, Klauberg Filho O, Queiroz MH, Mendonça MM. 2006. Occurrence of arbuscular mycorrhizal fungi in soils of early stages of a secondary succession of Atlantic Forest in South Brazil. Acta Botanica Brasilica 20: 513-521.), in the Brazilian Amazon (Reyes et al. 2019Reyes HA, Ferreira PFA, Silva LC, Costa MG, Nobre CP, Gehring C. 2019. Arbuscular mycorrhizal fungi along secondary forest succession at the eastern periphery of Amazonia: Seasonal variability and impacts of soil fertility. Applied Soil Ecology 136: 10.) and in a tropical forest in Chile (Castillo et al. 2006Castillo CG, Borie F, Godoy R, Rubio R, Sieverding E. 2006. Diversity of mycorrhizal plant species and arbuscular mycorrhizal fungi in evergreen forest, deciduous forest and grassland ecosystems of Southern Chile. Journal of Applied Botany and Food Quality 80: 40-47.). These AMF genera are commonly found in tropical forests around the world (Marinho et al. 2018Marinho F, Silva IR, Oehl F, Maia LC. 2018. Checklist of arbuscular mycorrhizal fungi in tropical forests. Sydowia 70: 107-127.) and are prevalent in natural and modified environments (Oehl et al. 2003Oehl F, Sieverding E, Ineichen K, Mäder P, Boller T, Wiemken A. 2003. Impact of land use intensity on the species diversity of arbuscular mycorrhizal fungi in agroecosystems of Central Europe. Applied Environmental and Microbiology 69: 2816-2824. ; Aidar et al. 2004Aidar MPM, Carrenho R, Joly AC. 2004. Aspects of arbuscular mycorrhizal fungi in na Atlantic Forest chronosequence. Parque Estadual Turístico do Alto Ribeira (PETAR), SP. Biota Neotrópica 4: 1-15.; Stürmer et al. 2006Stürmer SL, Klauberg Filho O, Queiroz MH, Mendonça MM. 2006. Occurrence of arbuscular mycorrhizal fungi in soils of early stages of a secondary succession of Atlantic Forest in South Brazil. Acta Botanica Brasilica 20: 513-521.; Zangaro & Moreira 2010Zangaro W, Moreira M. 2010. Micorrizas arbusculares nos biomas Floresta Atlântica e Floresta de Araucária. Micorrizas. In: Siqueira JO, Souza FA, Cardoso EJBN, Tsai SM (eds.). Micorrizas: 30 anos de pesquisas no Brasil. Lavras, UFLA . p. 279-310.; Pereira et al. 2014Pereira CMR, Silva DKA, Ferreira ACA, Goto BT, Maia LC. 2014. Diversity of arbuscular mycorrhizal fungi in Atlantic forest areas under different land uses. Agriculture, Ecosystems & Environment 185: 245-252.). The greater number of described species (Wijayawardene et al. 2022Wijayawardene NN, Hyde KD, Dai DQ et al. 2022. Outline of Fungi and fungus-like taxa-2021. Mycosphere 13: 53-453. ) and the characteristics of these two genera, such as high sporulation, adaptation to environmental stresses and use of different propagules to colonize the hosts, allow the occurrence of Acaulospora and Glomus species in several environments (Hart & Reader 2002Hart MM, Reader RJ. 2002. Taxonomic basis for variation in the colonization strategy of arbuscular mycorrhizal fungi. New Phytologist 153: 335-344.; Chagnon et al. 2013Chagnon PL, Bradley RL, Maherali H, Klironomos JN. 2013. A trait-based framework to understand life history of mycorrhizal fungi. Trends in Plant Science 18: 484-491. ).

Among the most frequent species found in the studied areas, Glomus macrocarpum has cosmopolitan distribution (Stürmer et al. 2018Stürmer SL, Bever JD, Morton JB. 2018. Biogeography of arbuscular mycorrhizal fungi (Glomeromycota): A phylogenetic perspective on species distribution patterns. Mycorrhiza 28: 587-603.), occurring in successional environments, under different land uses and agrosystems (Pereira et al. 2014Pereira CMR, Silva DKA, Ferreira ACA, Goto BT, Maia LC. 2014. Diversity of arbuscular mycorrhizal fungi in Atlantic forest areas under different land uses. Agriculture, Ecosystems & Environment 185: 245-252.; Sousa et al. 2014Sousa CS, Menezes RSC, Sampaio EVSB, Lima FS, Maia LC, Oehl F. 2014. Arbuscular mycorrhizal fungi in successional stages of caatinga in the semi-arid region of Brazil. Ciência Florestal 24: 137-148.; Pontes et al. 2017Pontes JS, Oehl F, Marinho F et al. 2017. Diversity of arbuscular mycorrhizal fungi in Brazil’s Caatinga and experimental agroecosystems. Biotropica 49: 413-427.; Reyes et al. 2019Reyes HA, Ferreira PFA, Silva LC, Costa MG, Nobre CP, Gehring C. 2019. Arbuscular mycorrhizal fungi along secondary forest succession at the eastern periphery of Amazonia: Seasonal variability and impacts of soil fertility. Applied Soil Ecology 136: 10.). Glomus brohultii has been commonly found in natural and regenerating areas in the Atlantic Forest (Pereira et al. 2018Pereira CMR, Silva DKA, Goto BT, Rosendahl S, Maia LC. 2018. Management practices may lead to loss of arbuscular mycorrhizal fungal diversity in protected areas of the Brazilian Atlantic Forest. Fungal Ecology 34: 50-58.; Rodrigues et al. 2021Rodrigues LA, Silva DKA, Yano-Melo AM. 2021. Arbuscular mycorrhizal fungal assemblages in conservation unit of Atlantic forest areas under native vegetation and natural regeneration. Microbial Ecology 82: 122-134.), as well as Glomus glomerulatum, recorded also in successional areas in the Amazon (Santos et al. 2018dos Santos HG, Jacomine PKT, Anjos LHCet al. 2018. Sistema Brasileiro de Classificação de Solos. 5th. edn. Brasília, Embrapa.; Reyes et al. 2019Reyes HA, Ferreira PFA, Silva LC, Costa MG, Nobre CP, Gehring C. 2019. Arbuscular mycorrhizal fungi along secondary forest succession at the eastern periphery of Amazonia: Seasonal variability and impacts of soil fertility. Applied Soil Ecology 136: 10.). Glomus australe was found in natural areas in the Atlantic Forest and in areas under different uses in the Amazon (Stürmer & Siqueira 2011Stürmer SL, Siqueira JO. 2011. Species richness and spore abundance of arbuscular mycorrhizal fungi across distinct land uses in Western Brazilian Amazon. Mycorrhiza 21: 255-267.; Jobim et al. 2018Jobim K, Vista XM, Goto BT. 2018. Updates on the knowledge of arbuscular mycorrhizal fungi (Glomeromycotina) in the Atlantic Forest biome-an example of very high species richness in the Brazilian landscape. Mycotaxon 133: 209.). Dominikia aurea, other member of Glomeraceae, has been recorded in areas with different uses in the Atlantic Forest and the Brazilian Cerrado (Jobim et al. 2018Jobim K, Vista XM, Goto BT. 2018. Updates on the knowledge of arbuscular mycorrhizal fungi (Glomeromycotina) in the Atlantic Forest biome-an example of very high species richness in the Brazilian landscape. Mycotaxon 133: 209.; Vieira et al. 2019Vieira LC, Silva DKA, Silva IR et al. 2019. Ecological aspects of arbuscular mycorrhizal fungal communities in different habitat types of a Brazilian mountainous area. Ecological Research 34: 182-192.).

The species of Acaulospora identified in all three forest types have a worldwide distribution (da Silva et al. 2022da Silva KJG, Fernandes JAL, Magurno F, Leandro LBA, Goto BT, Theodoro RC. 2022. Phylogenetic Review of Acaulospora (Diversisporales, Glomeromycota) and the Homoplasic Nature of Its Ornamentations. Journal of Fungi 8: 892.). In Brazil, Acaulospora foveata has been registered in several ecosystems (de Souza et al. 2010de Souza FA, Stürmer RC, Carrenho R, Trufem SFB. 2010. FMA: Classificação e taxonomia dos fungos micorrízicos arbusculares e ocorrência no Brasil. In: Siqueira JO, de Souza FA, Cardoso EJBN, Tsai SM (eds.). Micorrizas: 30 anos de pesquisas no Brasil. Lavras, UFLA. p. 15-118.; Bonfim et al. 2016Bonfim JA, Vasconcellos RLF, Gumiere T, Mescolotti DLC, Oehl F, Cardoso EJBN. 2016. Diversity of arbuscular mycorrhizal fungi in a Brazilian Atlantic forest toposequence. Microbial Ecology 71: 164-177.; Maia et al. 2020Maia LC, Passos JH, Silva JA, Oehl F, Assis DMA. 2020. Species diversity of Glomeromycota in Brazilian biomes. Sydowia 72: 181-205.); A. longula is found in tropical forests in South America and also in regenerating environments in the Atlantic Forest (Castillo et al. 2006Castillo CG, Borie F, Godoy R, Rubio R, Sieverding E. 2006. Diversity of mycorrhizal plant species and arbuscular mycorrhizal fungi in evergreen forest, deciduous forest and grassland ecosystems of Southern Chile. Journal of Applied Botany and Food Quality 80: 40-47.; Zangaro et al. 2013Zangaro W, Rostirola LV, Souza PB et al. 2013. Root colonization and spore abundance of arbuscular mycorrhizal fungi in distinct successional stages from an Atlantic rainforest biome in southern Brazil. Mycorrhiza 23: 221-233.); A. mellea occurs both in natural and pasture areas, in the Atlantic Forest (da Silva et al. 2016da Silva CF, Pereira MG, Santos VL, Miguel DL, Silva EMR. 2016. Fungos micorrízicos arbusculares: Composição, comprimento de micélio extraradicular e glomalina em áreas de Mata Atlântica. Ciência Florestal 26: 419-430.; de Cristo et al. 2018de Cristo SA, Fors RO, Carvalho AG. 2018. Diversity of arbuscular mycorrhizal fungi in pasture areas in the Serra do Itajaí National Park. Revista Brasileira de Ciências Agrarias 13: 1-7.) and in revegetated areas in the Amazon (Caproni et al. 2003Caproni AL, Franco AA, Berbara RLL, Trufem SB, Granha JRDO, Monteiro AB. 2003. Ocorrência de fungos micorrízicos arbusculares em áreas revegetadas após mineração de bauxita em Porto Trombetas, Pará. Pesquisa Agropecuária Brasileira 38: 1409-1418. ); A. morrowiae is frequently found in successional environments in the Atlantic Forest and other humid tropical forests (Lovelock et al. 2003Lovelock CE, Andersen K, Morton JB. 2003. Arbuscular mycorrhizal communities in tropical forests are affected by host tree species and environment. Oecologia 135: 268-279.; Stürmer et al. 2006Stürmer SL, Klauberg Filho O, Queiroz MH, Mendonça MM. 2006. Occurrence of arbuscular mycorrhizal fungi in soils of early stages of a secondary succession of Atlantic Forest in South Brazil. Acta Botanica Brasilica 20: 513-521.; Zangaro et al. 2013Zangaro W, Rostirola LV, Souza PB et al. 2013. Root colonization and spore abundance of arbuscular mycorrhizal fungi in distinct successional stages from an Atlantic rainforest biome in southern Brazil. Mycorrhiza 23: 221-233.).

A large number of species (14) was classified as exclusive to the mature secondary forest in the present study. According to the moderate microbial endemicity model, not all microorganisms have a cosmopolitan distribution, with a fraction having a more restricted distribution, even in suitable environments (Foissner 2008Foissner W. 2008. Protist diversity and geographical distribution: Some basic considerations. Biodiversity Conservation 17: 235-242.). As pointed out by Foissner (2006)Foissner W. 2006. Biogeography and dispersal of micro-organisms: A review emphasizing protists. Acta Protozoological 45: 111-136. , information on the distribution patterns of microorganism species is limited by the scarcity of taxonomists, failures in species identification and insufficient sampling, with many areas not yet studied. In the case of the AMF, Stürmer et al. (2018)Stürmer SL, Bever JD, Morton JB. 2018. Biogeography of arbuscular mycorrhizal fungi (Glomeromycota): A phylogenetic perspective on species distribution patterns. Mycorrhiza 28: 587-603. observed evidence of endemism for some species when describing large-scale distribution patterns. This observation supports the hypothesis of moderate endemicity, with some taxa being recorded on only one continent. Reyes et al. (2019)Reyes HA, Ferreira PFA, Silva LC, Costa MG, Nobre CP, Gehring C. 2019. Arbuscular mycorrhizal fungi along secondary forest succession at the eastern periphery of Amazonia: Seasonal variability and impacts of soil fertility. Applied Soil Ecology 136: 10. attributed the differences in AMF taxa composition alongside plant succession in Amazonia to this more restricted distribution of certain species.

The presence of exclusive species also suggests a great affinity of these fungi for specific habitats (Carvalho et al. 2012Carvalho F, Souza FA, Carrenho R, Moreira FMS, Jesus EC, Fernandes GW. 2012. The mosaic of habitats in the high-altitude Brazilian rupestrian fields is a hotspot for arbuscular mycorrhizal fungi. Applied Soil Ecology 52: 9-19.). Mature forests are known to have greater stability and less competition of AMF for specific niches (Scoriza et al. 2016Scoriza RN, Correira MEF, Silva EMR. 2016. Colêmbolos e fungos micorrízicos arbusculares como indicadores de degradação em fragmentos florestais de encosta. Revista de Ciências Agrárias Amazonian Journal of Agricultural and Environmental Sciences 59: 386-392.), representing important reservoirs of AMF species adapted to local environmental conditions (Belay et al. 2020Belay Z, Negash M, Kaseva J, Vestberg M, Kahiluoto H. 2020. Native forests but not agroforestry systems preserve arbuscular mycorrhizal fungal species richness in southern Ethiopia. Mycorrhiza 30: 749-759.). Therefore, it is essential to conserve natural environments such as the Atlantic Forest which are constantly threatened by human activities.

Although there were no significant differences in AMF richness in the studied forests, the highest absolute number of species was recorded in mature forest areas (26 species), with 18 and 17 species respectively in areas of late and early secondary forests. Similar data were recorded by Bonfim et al. (2013)Bonfim JA, Vasconcellos RLF, Stürmer SL, Cardoso EJBN. 2013. Arbuscular mycorrhizal fungi in the Brazilian Atlantic forest: A gradient of environmental restoration. Applied Soil Ecology 71: 7-14., with greater AMF richness in native areas of Atlantic Forest than in areas in restoration gradients. On the other hand, in another study, greater AMF richness was recorded in areas under regeneration than in natural ecosystems; areas subjected to stress, with a history of environmental degradation (crop and fire) may favour the sporulation of a greater number of AMF species (Rodrigues et al. 2021Rodrigues LA, Silva DKA, Yano-Melo AM. 2021. Arbuscular mycorrhizal fungal assemblages in conservation unit of Atlantic forest areas under native vegetation and natural regeneration. Microbial Ecology 82: 122-134.).

The hypothesis that greater AMF diversity would be found in mature areas than in initial succession was refuted, once that there was no significant difference for this ecological measure between these two stages. It was observed, however, that among the three areas the diversity was lower in the areas of late succession. Zhang et al. (2021)Zhang J, Quan C, Ma L, Chu G, Liu Z, Tang X. 2021. Plant community and soil properties drive arbuscular mycorrhizal fungal diversity: A case study in tropical forests. Soil Ecology Letters 3: 52-62. recorded greater AMF diversity in mature forests, associating the phenomenon with greater plant diversity in these forests. Taking into account that the Shannon-Weaver index uses the richness and abundance of individuals per species, the diversity was certainly influenced by the greater abundance of AMF species in the areas of early secondary forest. The same was observed in other studies, where areas under environmental stress showed greater AMF diversity (Pereira et al. 2014Pereira CMR, Silva DKA, Ferreira ACA, Goto BT, Maia LC. 2014. Diversity of arbuscular mycorrhizal fungi in Atlantic forest areas under different land uses. Agriculture, Ecosystems & Environment 185: 245-252.; Yang et al. 2021Yang W, Zhang M, Song F, Liu S, Li X, Zhu X. 2021. Comparative analysis of arbuscular mycorrhizal fungal communities between farmland and woodland in the black soil region of Northeast China. Agriculture 11: 866.). Santos et al. (2018)dos Santos HG, Jacomine PKT, Anjos LHCet al. 2018. Sistema Brasileiro de Classificação de Solos. 5th. edn. Brasília, Embrapa. reported that in tropical dry forest with different successional stages, the area in initial regeneration showed higher production of propagules, which also reflected in greater diversity of AMF species. Sporulation is a survival strategy of AMF which is more intense in stress situations.

The AMF species accumulation curve did not reach the maximum stabilization point, but it did recover 70% of the predicted species for the study areas. As the morphological identification counts only the glomerospores to estimate the richness, the species that were in the non-sporulating phase are underestimated (Bartz et al. 2008Bartz MLC, Carrenho R, Gomes-da-Costa SM, Colozzi Filho A, Tormena CA. 2008. Comparação entre as técnicas de amostragem direta em campo e cultura-armadilha para mensuração da diversidade de espécies de fungos micorrízicos arbusculares. Hoehnea 35: 159-164. ). Other studies based on morphological identification were able to access similar or higher percentages of estimated AMF species richness, between 70% and 77% in natural and cultivated areas (Pereira et al. 2014Pereira CMR, Silva DKA, Ferreira ACA, Goto BT, Maia LC. 2014. Diversity of arbuscular mycorrhizal fungi in Atlantic forest areas under different land uses. Agriculture, Ecosystems & Environment 185: 245-252.), However, there are also reports of higher percentages: 80% of the estimated species in tropical coastal dunes (da Silva et al. 2015bda Silva DKA, Souza RG, Velez BAA, Silva GA, Oehl F, Maia LC. 2015b. Communities of arbuscular mycorrhizal fungi on a vegetation gradient in tropical coastal dunes. Applied Soil Ecology 96: 7-17. doi: 10.1016/j.apsoil.2015.06.009
https://doi.org/10.1016/j.apsoil.2015.06...
), 82% in natural and regenerating areas (Rodrigues et al. 2021Rodrigues LA, Silva DKA, Yano-Melo AM. 2021. Arbuscular mycorrhizal fungal assemblages in conservation unit of Atlantic forest areas under native vegetation and natural regeneration. Microbial Ecology 82: 122-134.), between 85% and 93% in protected areas of the Atlantic Forest (Pereira et al. 2018Pereira CMR, Silva DKA, Goto BT, Rosendahl S, Maia LC. 2018. Management practices may lead to loss of arbuscular mycorrhizal fungal diversity in protected areas of the Brazilian Atlantic Forest. Fungal Ecology 34: 50-58.), and 98% in sandy coastal plain ecosystems of the Atlantic forest (da Silva et al. 2017da Silva IR, Silva DK, de Souza F, Oehl F, Maia LC. 2017. Changes in arbuscular mycorrhizal fungal communities along a river delta island in northeastern Brazil. Acta Oecologica 79: 8-17.). This variation in the number of taxa is directly linked to the sampling effort. Therefore, accumulation curves are useful to assess how much samples were sufficient to characterize AMF communities in the studied areas (Hart et al. 2015Hart MM, Aleklett K, Chagnon PL et al. 2015. Navigating the labyrinth: A guide to sequence-based, community ecology of arbuscular mycorrhizal fungi. New Phytologist 207: 235-247.).

With the trap cultures it was possible to add three more taxa, which constitute species distinct from those observed directly in the field samples: one at a specific level (Acaulospora scrobiculata) and two at a genus level: Dominikia sp. 2 and Glomus sp. 4, recorded in the areas of early, mature and late secondary forest. Acaulospora scrobiculata is one of the most widely distributed (da Silva et al. 2022da Silva KJG, Fernandes JAL, Magurno F, Leandro LBA, Goto BT, Theodoro RC. 2022. Phylogenetic Review of Acaulospora (Diversisporales, Glomeromycota) and the Homoplasic Nature of Its Ornamentations. Journal of Fungi 8: 892.), being recorded in natural environments, pastures and plant succession, as well as in degraded environments (Bonfim et al. 2016Bonfim JA, Vasconcellos RLF, Gumiere T, Mescolotti DLC, Oehl F, Cardoso EJBN. 2016. Diversity of arbuscular mycorrhizal fungi in a Brazilian Atlantic forest toposequence. Microbial Ecology 71: 164-177.; Reyes et al. 2019Reyes HA, Ferreira PFA, Silva LC, Costa MG, Nobre CP, Gehring C. 2019. Arbuscular mycorrhizal fungi along secondary forest succession at the eastern periphery of Amazonia: Seasonal variability and impacts of soil fertility. Applied Soil Ecology 136: 10.; de Jesus et al. 2020De Jesus JA, Caproni AL, Silva CF, Pereira MG, Santos OAQ, Berbara RLL. 2020. Arbuscular Mycorrhizal Fungal Communities in pasture and tropical Riparian Forest ecosystems in Guajará-mirim, Rondônia, Brazil. Floresta 51: 658-667.; Maia et al. 2020Maia LC, Passos JH, Silva JA, Oehl F, Assis DMA. 2020. Species diversity of Glomeromycota in Brazilian biomes. Sydowia 72: 181-205.). Trap cultures provide complementary information on the richness of AMF communities, and viable fungal structures for taxonomic identification (Leal et al. 2018Leal PL, Carvalho TS, Siqueira JO, Moreira F. 2018. Assessment of the occurrence and richness of arbuscular mycorrhizal fungal spores by direct analysis of field samples and trap culture-a comparative study. Anais da Academia Brasileira de Ciências 90: 2359-2373.). Ecological studies using this bioassay have been successful in identifying species that were not sporulating during field collections (Säle et al. 2015Säle V, Aguilera P, Laczko E et al. 2015. Impact of conservation tillage and organic farming on the diversity of arbuscular mycorrhizal fungi. Soil Biology and Biochemistry 84: 38-52.; de Assis et al. 2016de Assis DMA, Oehl F, Gonçalves CM, Silva DKA, Silva GA. 2016. Community structure of arbuscular mycorrhizal fungi in fluvial and maritime dunes of Brazilian Northeast. Applied Soil Ecology 108: 136-146. ; dos Passos et al. 2021dos Passos JH, Maia LC, de Assis DMA, Silva JA, Oehl F, Silva IR. 2021. Arbuscular mycorrhizal fungal community structure in the rhizosphere of three plant species of crystalline and sedimentary areas in the Brazilian dry forest. Microbial Ecology 82: 104-121.).

The analysis of indicator species selected taxa for all areas, demonstrating that the characteristics of each location favored the distribution of AMF in different successional stages. This type of analysis considers the relative abundance and relative frequency of species. Of the indicator species, most belong to the genus Glomus, characterized as ruderal, with a high growth rate and early production of glomerospores (Chagnon et al. 2013Chagnon PL, Bradley RL, Maherali H, Klironomos JN. 2013. A trait-based framework to understand life history of mycorrhizal fungi. Trends in Plant Science 18: 484-491. ). In addition, their representatives are fast colonizers in successive environments (de León et al. 2016de León DG, Moora M, Öpik M et al. 2016. Dispersal of arbuscular mycorrhizal fungi and plants during succession. Acta Oecologica 77: 128-135.), being well represented in disturbed environments (Jefwa et al. 2012Jefwa JM, Okoth S, Wachira P et al. 2012. Impact of land use types and farming practices on occurrence of arbuscular mycorrhizal fungi (AMF) Taita-Taveta district in Kenya. Agriculture, Ecosystems & Environment 157: 32-39.; Soka & Ritchie 2018Soka GE, Ritchie ME. 2018. Arbuscular mycorrhizal spore composition and diversity associated with different land uses in a tropical savanna landscape, Tanzania. Applied Soil Ecology 125: 222-232. ). Two Glomus species were indicators of mature forest areas: Glomus microcarpum and Glomus sp. 1. Species of Glomus have been reported in natural and disturbed areas (Pereira et al. 2018Pereira CMR, Silva DKA, Goto BT, Rosendahl S, Maia LC. 2018. Management practices may lead to loss of arbuscular mycorrhizal fungal diversity in protected areas of the Brazilian Atlantic Forest. Fungal Ecology 34: 50-58.; Maia et al. 2020Maia LC, Passos JH, Silva JA, Oehl F, Assis DMA. 2020. Species diversity of Glomeromycota in Brazilian biomes. Sydowia 72: 181-205.; Rodrigues et al. 2021Rodrigues LA, Silva DKA, Yano-Melo AM. 2021. Arbuscular mycorrhizal fungal assemblages in conservation unit of Atlantic forest areas under native vegetation and natural regeneration. Microbial Ecology 82: 122-134.). Glomus microcarpum, recorded as an indicator for mature forest areas, is commonly found in natural areas in the Atlantic Forest (Zangaro et al. 2013Zangaro W, Rostirola LV, Souza PB et al. 2013. Root colonization and spore abundance of arbuscular mycorrhizal fungi in distinct successional stages from an Atlantic rainforest biome in southern Brazil. Mycorrhiza 23: 221-233.; da Silva et al. 2015ada Silva DKA, Coutinho FP, Escobar IEC et al. 2015a. The community of arbuscular mycorrhizal fungi in natural and revegetated coastal areas (Atlantic Forest) in northeastern Brazil. Biodiversity Conservation 24: 2213-2226.) and was also selected as an indicator in maritime dunes, in the Atlantic Forest (de Assis et al. 2016de Assis DMA, Oehl F, Gonçalves CM, Silva DKA, Silva GA. 2016. Community structure of arbuscular mycorrhizal fungi in fluvial and maritime dunes of Brazilian Northeast. Applied Soil Ecology 108: 136-146. ).

Acaulospora mellea, the only one of the genus Acaulospora indicated for areas of early and mature secondary forest was also an indicator for other regenerating areas in the Atlantic Forest (Rodrigues et al. 2021Rodrigues LA, Silva DKA, Yano-Melo AM. 2021. Arbuscular mycorrhizal fungal assemblages in conservation unit of Atlantic forest areas under native vegetation and natural regeneration. Microbial Ecology 82: 122-134.). Species of Acaulospora are prevalent in early stages of revegetation (Caproni et al. 2018Caproni AL, Granha JRDO, Fornaciari AJ, Nobre CP, Mendonça LP, Berbara RLL. 2018. Diversity of Arbuscular Mycorrhizal Fungi in an Amazon Environment after Mining. Floresta e Ambiente 25: e20150224.) and also in tropical rainforest (Lovelock et al. 2003Lovelock CE, Andersen K, Morton JB. 2003. Arbuscular mycorrhizal communities in tropical forests are affected by host tree species and environment. Oecologia 135: 268-279.). Species of this genus support acidic soils, as in tropical forests, and show resilience to environmental disturbances (Hart & Reader 2002Hart MM, Reader RJ. 2002. Taxonomic basis for variation in the colonization strategy of arbuscular mycorrhizal fungi. New Phytologist 153: 335-344.; Winagraski et al. 2019Winagraski E, Kaschuk G, Monteiro PHR, Auer CG, Higa AR. 2019. Diversity of arbuscular mycorrhizal fungi in forest ecosystems of Brazil: A review. Cerne 25: 25-35.). As recorded for A. mellea, an acaulosporoid species, this type of spore formation was found to be an indicator for areas of early secondary forest and mature forest. Acaulosporoid AMF species require lower nutritional demands from their hosts, which may be useful in more stabilized environments (Gehring & Whitham 2002Gehring CA, Whitham TG. 2002. Mycorrhizae-herbivore interactions: population and community consequences. In: van der Heijden MGA, Sanders IR (eds.). Mycorrhizal Ecology. Ecological Studies, Springer. Berlin, Heidelberg. p. 295-320.) and are also prevalent in disturbed environments, with mycelium resistant to soil mechanical disturbances (Chagnon et al. 2013Chagnon PL, Bradley RL, Maherali H, Klironomos JN. 2013. A trait-based framework to understand life history of mycorrhizal fungi. Trends in Plant Science 18: 484-491. ; van der Heyde et al. 2017van der Heyde MG, Ohsowski B, Abbott LK, Hart M. 2017. Arbuscular mycorrhizal fungus responses to disturbance are context-dependent. Mycorrhiza 27: 431-440.). Therefore, they are well adapted to the regenerating areas of the present study, where soils are acidic, and this characteristic may have been decisive for the selection, as an indicator, of species with this type of glomerospore formation, since they are well adapted to pH ranging between 4 and 6 (Oehl et al. 2011Oehl F, Jansa J, Ineichen K, Van der Heijden M. 2011. Arbuscular mycorrhizal fungi as bio-indicators in Swiss agricultural soils. Agrarfor. Schweiz 18: 304-311.).

Orbispora pernambucana, an indicator of areas of early secondary forest, was also indicator of succession areas in the Amazon (Reyes et al. 2019Reyes HA, Ferreira PFA, Silva LC, Costa MG, Nobre CP, Gehring C. 2019. Arbuscular mycorrhizal fungi along secondary forest succession at the eastern periphery of Amazonia: Seasonal variability and impacts of soil fertility. Applied Soil Ecology 136: 10.) and in natural areas of the Atlantic Forest (Pereira et al. 2014Pereira CMR, Silva DKA, Ferreira ACA, Goto BT, Maia LC. 2014. Diversity of arbuscular mycorrhizal fungi in Atlantic forest areas under different land uses. Agriculture, Ecosystems & Environment 185: 245-252.). The presence of this species in areas of early secondary forest may reflect greater availability of nutrients for plants at this stage, due to the investment in extraradical mycelium characteristic of the Gigasporales group, to which it belongs (Chagnon et al. 2013Chagnon PL, Bradley RL, Maherali H, Klironomos JN. 2013. A trait-based framework to understand life history of mycorrhizal fungi. Trends in Plant Science 18: 484-491. ). The presence of indicator species reinforces the importance of preserving natural environments (Álvarez-Lopeztello et al. 2019Álvarez-Lopeztello J, Castillo RF, Robles C, Hernandéz-Cuevas LV. 2019. Spore diversity of arbuscular mycorrhizal fungi in human-modified neotropical ecosystems. Ecological Research 34: 394-405.) and supports the use of AMF species adapted to different ecosystems as bioinoculants in the production of seedlings for the restoration of degraded areas (Robinson-Boyer et al. 2009Robinson-Boyer L, Grzyb I, Jeffries P. 2009. Shifting the balance from qualitative to quantitative analysis of arbuscular mycorrhizal communities in field soils. Fungal Ecology 2: 1-9.; Pedone-Bonfim et al. 2018Pedone-Bonfim MVL, Silva DKA, Maia LC, Yano-Melo AM. 2018. Mycorrhizal benefits on native plants of the Caatinga, a Brazilian dry tropical forest. Symbiosis 74: 79-88.).

The composition of AMF communities did not differ between the initial and mature areas, as also recorded in other areas in initial (20 years) and advanced (50 years) regeneration of the Atlantic Forest (Morales-Londoño et al. 2019Morales-Londoño DM, Meyer E, Kunze A et al. 2019. Are microbial activity and arbuscular mycorrhizal fungal community influenced by regeneration stages? A case study in Southern Brazil coastal Atlantic Rain Forest. Applied Soil Ecology 138: 94-98. ). Likewise, Bi et al. (2021)Bi Y, Wang K, Du S, Ma S, Zhang J, Xie L. 2021. Shifts in arbuscular mycorrhizal fungal community composition and edaphic variables during reclamation chronosequence of an open-cast coal mining dump. Catena 203: 105301. did not find differences between areas with five and 15 years of recovery in a tropical forest in China. Teixeira et al. (2020)Teixeira HM, Cardoso IM, Bianchi FJJA, Silva AC, Jamme D, Peña-Claros M. 2020. Linking vegetation and soil functions during secondary forest succession in the Atlantic forest. Forest Ecology and Management 457: 117696. reported that in 25-50 years areas in recovery can reach the characteristics found in primary forests. This might explain why the initial and mature secondary forests did not differ in relation to the composition of AMF communities in the studied forests, but it is not clear why those of late secondary forests differed from the other two forests.

Vegetation can influence the composition of AMF communities over time as the nutrient requirements of plants at each successional stage may vary, with plant species at the beginning of regeneration needing rapid nutrient acquisition to supply the high growth rate and metabolic demand, unlike plants in more advanced stages (Zangaro et al. 2003Zangaro W, Nisizaki SMA, Domingos JCB, Nakano EM. 2003. Mycorrhizal response and successional status in 80 woody species from south Brazil. Journal of Tropical Ecology 19: 315-324. ). This would justify the greater need for mycorrhizal association in this initial period of regeneration. On the other hand, the species composition of AMF can vary depending on the group of associated plants, as in the case of woody or grassy plants (Davison et al. 2020Davison J, Garcia de León D, Zobel M et al. 2020. Plant functional groups associate with distinct arbuscular mycorrhizal fungal communities. New Phytologist 226: 1117-1128.).

The vegetation in the studied areas differs in terms of the most frequent species, characterizing a succession process. Thus, in the areas of early secondary forest, the most frequent tree species are members of Anacardiaceae, Araliaceae, Chrysobalanaceae and Myrtaceae; in late secondary forest are more commonly found species of Melastomataceae and Fabaceae, while in the mature forest also predominate species of Fabaceae and Melastomataceae, together with species of Lecythidaceae, Anacardiaceae, and Moraceae (Braga et al. 2021Braga MB, Leite MS, Luz SCS. 2021. Biodiversidade nas UCNs: Vegetação e Flora. In: Braga MB, Leite MS, Luz SCS (eds.). Biodiversidade das unidades de conservação do Recife. Itacaiúnas, Editora Ananindeua. p. 19-20.). AMF are successful inoculants of species of the Myrtaceae family (Lattuada et al. 2019Lattuada DS, Rieth S, Back M, Souza PVD. 2019. Interaction between endomycorrhizae and native fruit tree (Myrtaceae) in Rio Grande do Sul state. Ciência Florestal 29: 1726-1736.), and there are also reports of benefits promoted by AMF in species of Moraceae (Mazzoni-Viveiros & Trufem 2004Mazzoni-Viveiros SC, Trufem SFB. 2004. Efeitos da poluição aérea e edáfica no sistema radicular de Tibouchina pulchra Cogn. (Melastomataceae) em área de mata Atlântica: Associações micorrízicas e morfologia. Brazilian Journal of Botany 27: 337-348.), in addition to species of Fabaceae, family known to be highly mycotrophic (Ghosh & Dutta 2016Ghosh A, Dutta S. 2016. Investigation on Arbuscular Mycorrhizal colonization on the roots of some members of Fabaceae and selection of suitable hosts for mass multiplication of VAM. International Journal of Advanced Research in Biological Sciences 3: 193-197.). Probably the differences in vegetation composition are influencing the AMF communities in the studied areas, as reported by other authors (Zangaro et al. 2003Zangaro W, Nisizaki SMA, Domingos JCB, Nakano EM. 2003. Mycorrhizal response and successional status in 80 woody species from south Brazil. Journal of Tropical Ecology 19: 315-324. ; Davison et al. 2020Davison J, Garcia de León D, Zobel M et al. 2020. Plant functional groups associate with distinct arbuscular mycorrhizal fungal communities. New Phytologist 226: 1117-1128.).

Conclusions

From this study it was possible to expand our knowledge about the diversity and composition of AMF species in secondary forests of the Atlantic Rainforest.

The plants in the initial secondary forest are more susceptible and probably more benefited by AM symbiosis compared to those in the other areas.

A high number of exclusive AMF species in the mature forest indicate that it harbours a unique set of species well adapted to the stable condition of this type of forest.

The composition of AMF communities is influenced by different successional stages and by physical and chemical properties of the soil, notably coarse sand, silt, fine sand, phosphorus, pH and base saturation.

The detection of some species of AMF as indicators of regenerating forests shows that they are more adapted to these environments and may be promising for use in future environmental restoration projects in the studied areas.

The first hypothesis raised, that mature forest areas have a greater diversity of AMF species than the initial secondary forest was refuted because the diversity index did not differ between the two areas. The second hypothesis that in areas of early secondary forest there is a greater abundance of AMF propagules that have a ruderal life strategy, characterized by high production of glomerospores was confirmed. The three most abundant species (Glomus brohultii, G. macrocarpum and Dominikia aurea) are characterized by glomoid formation.

This study reinforces the potential of the Atlantic Forest to harbour a great diversity of AMF, mainly exclusive species and the need for in situ preservation of this group of fungi to guarantee the stability of forest ecosystems.

Acknowledgments

Thanks are due to: Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES) for providing a Post-Doctorate fellowship (Proc.88887.337977/2019-00) to DMA, the Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq) for grant support and a fellowship (Proc. 306.880/2020-2, 420.129/2018-9, and 441.578/2020-9) provided to LCM, Fundação de Amparo à Ciência e Tecnologia do Estado de Pernambuco (FACEPE) that provided a Master scholarship to JAS (IBPG-0075-2.03/20), a research grant to LCM (APQ-0392-2.03/21) and a Visiting Professor grant to FO (APV-0014-2.03/19). We also thank the Dois Irmãos State Park (PEDI) administration for research permission and the PPBio Mata Atlântica Program (PPBio-MA) for allowing the use of data related with characterization of the studied area. Special thanks are due to Dr. Ana Carolina Borges Lins e Silva (UFRPE) for her support.

References

  • Aidar MPM, Carrenho R, Joly AC. 2004. Aspects of arbuscular mycorrhizal fungi in na Atlantic Forest chronosequence. Parque Estadual Turístico do Alto Ribeira (PETAR), SP. Biota Neotrópica 4: 1-15.
  • Aker AM, Caproni AL, Berbara RLL et al 2022. Arbuscular mycorrhizal fungi in the Cerrado biome: Effects of land use system, soil texture, and seasonality. Revista Caatinga 35: 170-180.
  • Almeida DS. 2016. Recuperação ambiental da Mata Atlântica. Editus, Ilhéus.
  • Alotaibi MO, Saleh AM, Sobrinho RL et al 2021. Arbuscular mycorrhizae mitigate aluminum toxicity and regulateproline metabolism in plants grown in acidic soil. Journal of Fungi 7: 531.
  • Álvarez-Lopeztello J, Castillo RF, Robles C, Hernandéz-Cuevas LV. 2019. Spore diversity of arbuscular mycorrhizal fungi in human-modified neotropical ecosystems. Ecological Research 34: 394-405.
  • Bartz MLC, Carrenho R, Gomes-da-Costa SM, Colozzi Filho A, Tormena CA. 2008. Comparação entre as técnicas de amostragem direta em campo e cultura-armadilha para mensuração da diversidade de espécies de fungos micorrízicos arbusculares. Hoehnea 35: 159-164.
  • Belay Z, Negash M, Kaseva J, Vestberg M, Kahiluoto H. 2020. Native forests but not agroforestry systems preserve arbuscular mycorrhizal fungal species richness in southern Ethiopia. Mycorrhiza 30: 749-759.
  • Bi Y, Wang K, Du S, Ma S, Zhang J, Xie L. 2021. Shifts in arbuscular mycorrhizal fungal community composition and edaphic variables during reclamation chronosequence of an open-cast coal mining dump. Catena 203: 105301.
  • Bonfante P, Genre A. 2010. Mechanisms underlying beneficial plant-fungus interactions in mycorrhizal symbiosis. Nature Communications 1: 48.
  • Bonfim JA, Vasconcellos RLF, Gumiere T, Mescolotti DLC, Oehl F, Cardoso EJBN. 2016. Diversity of arbuscular mycorrhizal fungi in a Brazilian Atlantic forest toposequence. Microbial Ecology 71: 164-177.
  • Bonfim JA, Vasconcellos RLF, Stürmer SL, Cardoso EJBN. 2013. Arbuscular mycorrhizal fungi in the Brazilian Atlantic forest: A gradient of environmental restoration. Applied Soil Ecology 71: 7-14.
  • Braga MB, Leite MS, Luz SCS. 2021. Biodiversidade nas UCNs: Vegetação e Flora. In: Braga MB, Leite MS, Luz SCS (eds.). Biodiversidade das unidades de conservação do Recife. Itacaiúnas, Editora Ananindeua. p. 19-20.
  • Caproni AL, Franco AA, Berbara RLL, Trufem SB, Granha JRDO, Monteiro AB. 2003. Ocorrência de fungos micorrízicos arbusculares em áreas revegetadas após mineração de bauxita em Porto Trombetas, Pará. Pesquisa Agropecuária Brasileira 38: 1409-1418.
  • Caproni AL, Granha JRDO, Fornaciari AJ, Nobre CP, Mendonça LP, Berbara RLL. 2018. Diversity of Arbuscular Mycorrhizal Fungi in an Amazon Environment after Mining. Floresta e Ambiente 25: e20150224.
  • Carvalho F, Souza FA, Carrenho R, Moreira FMS, Jesus EC, Fernandes GW. 2012. The mosaic of habitats in the high-altitude Brazilian rupestrian fields is a hotspot for arbuscular mycorrhizal fungi. Applied Soil Ecology 52: 9-19.
  • Castillo CG, Borie F, Godoy R, Rubio R, Sieverding E. 2006. Diversity of mycorrhizal plant species and arbuscular mycorrhizal fungi in evergreen forest, deciduous forest and grassland ecosystems of Southern Chile. Journal of Applied Botany and Food Quality 80: 40-47.
  • Chagnon PL, Bradley RL, Maherali H, Klironomos JN. 2013. A trait-based framework to understand life history of mycorrhizal fungi. Trends in Plant Science 18: 484-491.
  • Chao A, Wang YT, Jost L. 2013. Entropy and the species accumulation curve: A novel entropy estimator via discovery rates of new species. Methods in Ecology and Evolution 4: 1091-1100.
  • CONAMA - Conselho Nacional do Meio Ambiente, Ministério do Meio Ambiente. 2007. Resolução No 391/2007, de 25 de junho de 2007. Biomas - Estágios sucessionais da vegetação da Mata Atlântica. Paraíba, Conselho Nacional do Meio Ambiente.
  • da Cunha JAS, Fonsêca NC, Cunha JSA, Rodrigues LS, Gusmão RAF, Lins-e-Silva ACB. 2021. Selective logging in a chronosequence of Atlantic Forest: Drivers and impacts on biodiversity and ecosystem services. Perspectives in Ecology and Conservation 19: 286-292.
  • da Silva CF, Pereira MG, Santos VL, Miguel DL, Silva EMR. 2016. Fungos micorrízicos arbusculares: Composição, comprimento de micélio extraradicular e glomalina em áreas de Mata Atlântica. Ciência Florestal 26: 419-430.
  • da Silva CF, Pereira MG, Silva EMR, Correia MEF, Saggin-Júnior OJ. 2006. Fungos micorrízicos arbusculares em áreas no entorno do Parque Estadual da Serra do Mar em Ubatuba (SP). Revista Caatinga 19: 1-10.
  • da Silva DKA, Coutinho FP, Escobar IEC et al 2015a. The community of arbuscular mycorrhizal fungi in natural and revegetated coastal areas (Atlantic Forest) in northeastern Brazil. Biodiversity Conservation 24: 2213-2226.
  • da Silva DKA, Souza RG, Velez BAA, Silva GA, Oehl F, Maia LC. 2015b. Communities of arbuscular mycorrhizal fungi on a vegetation gradient in tropical coastal dunes. Applied Soil Ecology 96: 7-17. doi: 10.1016/j.apsoil.2015.06.009
    » https://doi.org/10.1016/j.apsoil.2015.06.009
  • da Silva IR, Silva DK, de Souza F, Oehl F, Maia LC. 2017. Changes in arbuscular mycorrhizal fungal communities along a river delta island in northeastern Brazil. Acta Oecologica 79: 8-17.
  • da Silva KJG, Fernandes JAL, Magurno F, Leandro LBA, Goto BT, Theodoro RC. 2022. Phylogenetic Review of Acaulospora (Diversisporales, Glomeromycota) and the Homoplasic Nature of Its Ornamentations. Journal of Fungi 8: 892.
  • Davison J, Garcia de León D, Zobel M et al 2020. Plant functional groups associate with distinct arbuscular mycorrhizal fungal communities. New Phytologist 226: 1117-1128.
  • de Assis DMA, Melo MAC, Silva DKA, Oehl F, Silva GA. 2018. Assemblages of arbuscular mycorrhizal fungi in tropical humid and dry forests in the Northeast of Brazil. Botany 96: 859-871.
  • de Assis DMA, Oehl F, Gonçalves CM, Silva DKA, Silva GA. 2016. Community structure of arbuscular mycorrhizal fungi in fluvial and maritime dunes of Brazilian Northeast. Applied Soil Ecology 108: 136-146.
  • de Cristo SA, Fors RO, Carvalho AG. 2018. Diversity of arbuscular mycorrhizal fungi in pasture areas in the Serra do Itajaí National Park. Revista Brasileira de Ciências Agrarias 13: 1-7.
  • De Jesus JA, Caproni AL, Silva CF, Pereira MG, Santos OAQ, Berbara RLL. 2020. Arbuscular Mycorrhizal Fungal Communities in pasture and tropical Riparian Forest ecosystems in Guajará-mirim, Rondônia, Brazil. Floresta 51: 658-667.
  • de León DG, Moora M, Öpik M et al 2016. Dispersal of arbuscular mycorrhizal fungi and plants during succession. Acta Oecologica 77: 128-135.
  • de Souza FA, Stürmer RC, Carrenho R, Trufem SFB. 2010. FMA: Classificação e taxonomia dos fungos micorrízicos arbusculares e ocorrência no Brasil. In: Siqueira JO, de Souza FA, Cardoso EJBN, Tsai SM (eds.). Micorrizas: 30 anos de pesquisas no Brasil. Lavras, UFLA. p. 15-118.
  • dos Passos JH, Maia LC, de Assis DMA, Silva JA, Oehl F, Silva IR. 2021. Arbuscular mycorrhizal fungal community structure in the rhizosphere of three plant species of crystalline and sedimentary areas in the Brazilian dry forest. Microbial Ecology 82: 104-121.
  • dos Santos HG, Jacomine PKT, Anjos LHCet al 2018. Sistema Brasileiro de Classificação de Solos. 5th. edn. Brasília, Embrapa.
  • Dufrêne M, Legendre P. 1997. Species assemblages and indicator species: The need for a flexible asymmetrical approach. Ecological Monographs 67: 345-366.
  • Ezeokoli OT, Mashigo SK, Maboeta MS, Bezuidenhout CC, Khasa DP, Adeleke RA. 2020. Arbuscular mycorrhizal fungal community differentiation along a post-coal mining reclamation chronosequence in South Africa: A potential indicator of ecosystem recovery. Applied Soil Ecology 147: 103429.
  • Falcão M, Silva ACBL. 2022. Plano de Manejo do Parque Estadual de Dois Irmãos. Recife, Secretaria de Meio Ambiente e Sustentabilidade de Pernambuco.
  • Flora e Funga do Brasil. 2023. Jardim Botânico do Rio de Janeiro. http://floradobrasil.jbrj.gov.br/ 12 Jan. 2023.
    » http://floradobrasil.jbrj.gov.br/
  • Foissner W. 2006. Biogeography and dispersal of micro-organisms: A review emphasizing protists. Acta Protozoological 45: 111-136.
  • Foissner W. 2008. Protist diversity and geographical distribution: Some basic considerations. Biodiversity Conservation 17: 235-242.
  • Frosi G, Barros VA, Oliveira MT et al 2016. Symbiosis with AMF and leaf P i supply increases water deficit tolerance of woody species from seasonal dry tropical forest. Journal of Plant Physiology 207: 84-93.
  • Gamage HK, Singhakumara BMP, Ashton MS. 2004. Effects of light and fertilization on arbuscular mycorrhizal colonization and growth of tropical rain-forest Syzygium tree seedlings. Journal of Tropical Ecology 20: 525-534.
  • Gandolfi S, Leitão FH, Bezerra CLF. 1995. Composição florística e estrutura fitossociológica do estrato arbóreo de mata mesófila semidecidua de encosta, no município de Guarulhos - SP. Revista Brasileira de Biologia 55: 753-767.
  • Gandolfi S, Rodrigues RR, Martins SV. 2007. Theoretical bases of the forest ecological restoration. In: Rodrigues RR, Martins SV, Gandolfi S (eds.). High diversity forest restoration in degraded areas. New York, Nova Science Publishers. p. 27-60.
  • Gehring CA, Whitham TG. 2002. Mycorrhizae-herbivore interactions: population and community consequences. In: van der Heijden MGA, Sanders IR (eds.). Mycorrhizal Ecology. Ecological Studies, Springer. Berlin, Heidelberg. p. 295-320.
  • Gerdemann JW, Nicolson TH. 1963. Spores of mycorrhizal Endogone species extracted from soil by wet sieving and decanting. Transactions of the British Mycological Society 46: 235-244.
  • Ghosh A, Dutta S. 2016. Investigation on Arbuscular Mycorrhizal colonization on the roots of some members of Fabaceae and selection of suitable hosts for mass multiplication of VAM. International Journal of Advanced Research in Biological Sciences 3: 193-197.
  • Gianinazzi S, Gollotte A, Binet MN, van Tuinen D, Redecker D, Wipf D. 2010. Agroecology: The key role of arbuscular mycorrhizas in ecosystem services. Mycorrhiza 20: 519-530.
  • Guadarrama P, Castillo-Argüero S, Ramos-Zapata JA, Camargo-Ricalde SL, Álvarez-Sánchez J. 2008. Propagules of arbuscular mycorrhizal fungi in a secondary dry forest of Oaxaca, México. Revista de Biología Tropical 56: 269-277.
  • Gutjahr C, Parniske M. 2013. Cell and developmental biology of arbuscular mycorrhiza symbiosis. Annual Review of Cell and Developmental Biology 29: 593-617
  • Hart MM, Aleklett K, Chagnon PL et al 2015. Navigating the labyrinth: A guide to sequence-based, community ecology of arbuscular mycorrhizal fungi. New Phytologist 207: 235-247.
  • Hart MM, Reader RJ. 2002. Taxonomic basis for variation in the colonization strategy of arbuscular mycorrhizal fungi. New Phytologist 153: 335-344.
  • Hazard C, Gosling P, van der Gast CJ, Mitchell DT, Doohan FM, Bending GD. 2013. The role of local environment and geographical distance in determining community composition of arbuscular mycorrhizal fungi at the landscape scale. ISME Journal 7: 498-508.
  • Hsieh TC, Ma KH, Chao A. 2016. iNEXT: An R package for rarefaction and extrapolation of species diversity (Hill numbers). Methods in Ecology and Evolution 7: 1451-1456.
  • Jefwa JM, Okoth S, Wachira P et al 2012. Impact of land use types and farming practices on occurrence of arbuscular mycorrhizal fungi (AMF) Taita-Taveta district in Kenya. Agriculture, Ecosystems & Environment 157: 32-39.
  • Jenkins WR. 1964. A rapid centrifugal-flotation technique for separating nematodes from soil. Plant Disease Report 48: 692.
  • Jobim K, Vista XM, Goto BT. 2018. Updates on the knowledge of arbuscular mycorrhizal fungi (Glomeromycotina) in the Atlantic Forest biome-an example of very high species richness in the Brazilian landscape. Mycotaxon 133: 209.
  • Kawahara A, Miyakawa S, Sonoda J, Ezawa T. 2016. Nestedness in arbuscular mycorrhizal fungal communities along soil pH gradients in early primary succession: Acid-tolerant fungi are pH generalists. PLoS One 11: e0165035.
  • Koziol L, Bever D. 2016. AMF, phylogeny, and succession: specificity of response to mycorrhizal fungi increases for late-sucessional plants. Ecosphere 7: 11.
  • Kumar A, Dames JF, Gupta A, Sharma S, Gilbert JA, Ahmad P. 2014. Current developments in arbuscular mycorrhizal fungi research and its role in salinity stress alleviation: A biotechnological perspective. Critical Reviews in Biotechnology 35: 461-474.
  • Lattuada DS, Rieth S, Back M, Souza PVD. 2019. Interaction between endomycorrhizae and native fruit tree (Myrtaceae) in Rio Grande do Sul state. Ciência Florestal 29: 1726-1736.
  • Leal PL, Carvalho TS, Siqueira JO, Moreira F. 2018. Assessment of the occurrence and richness of arbuscular mycorrhizal fungal spores by direct analysis of field samples and trap culture-a comparative study. Anais da Academia Brasileira de Ciências 90: 2359-2373.
  • Lebrón L, Lodge DJ, Bayman P. 2012. Differences in arbuscular mycorrhizal fungi among three coffee cultivars in Puerto Rico. ISRN Agronomy 2: 53-78.
  • Lekberg Y, Koide RT, Rohr JR, Aldrich-Wolfe L, Morton JB. 2007. Role of niche restrictions and dispersal in the composition of arbuscular mycorrhizal fungal communities. Journal of Ecology 95: 95-105.
  • Li Y, Yang F, Ou Y et al 2013.Changes in forest soil properties in different successional stages in lower tropical China. PLoS One 8: e81359.
  • Lima MS, Freire FJ, Marangon LC, Almeida BG, Ribeiro EP, Santos RL. 2018. Solos florestais em fragmento de floresta urbana na mata de Dois Irmãos, Recife, Pernambuco, Brasil. Ciência Florestal 28: 542-553.
  • Liu Y, Johnson NC, Lin M, Guoxi S, Jiang S et al 2015. Phylogenetic structure of arbuscular mycorrhizal community shifts in response to increasing soil fertility. Soil Biology and Biochemistry 89: 196-205.
  • Liu Y, Zhang G, Luo X et al 2021. Mycorrhizal fungi and phosphatase involvement in rhizosphere phosphorus transformations improves plant nutrition during subtropical forest succession. Soil Biology and Biochemistry 153: 108099.
  • Lovelock CE, Andersen K, Morton JB. 2003. Arbuscular mycorrhizal communities in tropical forests are affected by host tree species and environment. Oecologia 135: 268-279.
  • Lugo AE. 2009. The emerging era of novel tropical forests. Biotropica 41: 589-591.
  • Maia LC, Passos JH, Silva JA, Oehl F, Assis DMA. 2020. Species diversity of Glomeromycota in Brazilian biomes. Sydowia 72: 181-205.
  • Marinho F, Silva IR, Oehl F, Maia LC. 2018. Checklist of arbuscular mycorrhizal fungi in tropical forests. Sydowia 70: 107-127.
  • Mazzoni-Viveiros SC, Trufem SFB. 2004. Efeitos da poluição aérea e edáfica no sistema radicular de Tibouchina pulchra Cogn. (Melastomataceae) em área de mata Atlântica: Associações micorrízicas e morfologia. Brazilian Journal of Botany 27: 337-348.
  • Mcgonigle TP, Miller MH, Evans DG, Fairchild GL, Swan JA. 1990. A new method which gives an objective measure of colonization of roots by vesicular-arbuscular mycorrhizal fungi. New Phytologist 115: 495-501.
  • Mesquita ANS, Silva AFO, Santos A, Siqueira WN. 2020. A relação entre ambiente e sociedade: a importância das práticas de Educação Ambiental no Parque Estadual Horto Dois Irmãos (Recife-Brasil). Revista Brasileira de Meio Ambiente 8: 11-29.
  • MMA - Ministério do Meio Ambiente, Secretaria de Biodiversidade e Florestas. 2010. Mata Atlântica: Patrimônio nacional dos brasileiros. Brasília, Ministério do Meio Ambiente.
  • MMA - Ministério do Meio Ambiente. 2022. Mata Atlântica. https://www.gov.br/mma/pt-br/assuntos/ecossistemas-1/biomas/mata-atlantica 12 Jan. 2023.
    » https://www.gov.br/mma/pt-br/assuntos/ecossistemas-1/biomas/mata-atlantica
  • Moebius-Clune DJ, Moebius-Clune BN, van Es HM, Pawlowska TE. 2013. Arbuscular mycorrhizal fungi associated with a single agronomic plant host across the landscape: Community differentiation along a soil textural gradient. Soil Biology and Biochemistry 64: 191-199.
  • Morales-Londoño DM, Meyer E, Kunze A et al 2019. Are microbial activity and arbuscular mycorrhizal fungal community influenced by regeneration stages? A case study in Southern Brazil coastal Atlantic Rain Forest. Applied Soil Ecology 138: 94-98.
  • Myers N, Mittermeier RA, Mittermeier CG, Fonseca GAB, Kent J. 2000. Biodiversity hotspots for conservation priorities. Nature 403: 853-858.
  • Neina D. 2019. The role of soil pH in plant nutrition and soil remediation. Applied and Environmental Soil Science 2019: 5794869.
  • Oehl F, Jansa J, Ineichen K, Van der Heijden M. 2011. Arbuscular mycorrhizal fungi as bio-indicators in Swiss agricultural soils. Agrarfor. Schweiz 18: 304-311.
  • Oehl F, Laczko E, Bogenrieder A et al 2010. Soil type and land use intensity determine the composition of arbuscular mycorrhizal fungal communities. Soil Biology and Biochemistry 42: 724-738.
  • Oehl F, Sieverding E, Ineichen K, Mäder P, Boller T, Wiemken A. 2003. Impact of land use intensity on the species diversity of arbuscular mycorrhizal fungi in agroecosystems of Central Europe. Applied Environmental and Microbiology 69: 2816-2824.
  • Oehl F, Sieverding E, Ineichen K, Mäder P, Wiemken A, Boller T. 2009. Distinct sporulation dynamics of arbuscular mycorrhizal fungal communities from different agroecosystems in long-term microcosms. Agriculture, Ecosystems & Environment 134: 257-268.
  • Oksanen J, Blanchet FG, Friendly M et al 2022. Vegan: Community ecology package version (2.5-6).
  • Pagano MC, Silva DKA, Silva AS, Maia LC. 2019. Tropical Dry Forest Compared to Rainforest and Associated Ecosystems in Brazil. In: Pagano MC, Lugo MA (eds.). Mycorrhizal fungi in South America. New York, Springer International Publishing. p. 177-192.
  • Pedone-Bonfim MVL, Silva DKA, Maia LC, Yano-Melo AM. 2018. Mycorrhizal benefits on native plants of the Caatinga, a Brazilian dry tropical forest. Symbiosis 74: 79-88.
  • Pereira CMR, Silva DKA, Ferreira ACA, Goto BT, Maia LC. 2014. Diversity of arbuscular mycorrhizal fungi in Atlantic forest areas under different land uses. Agriculture, Ecosystems & Environment 185: 245-252.
  • Pereira CMR, Silva DKA, Goto BT, Rosendahl S, Maia LC. 2018. Management practices may lead to loss of arbuscular mycorrhizal fungal diversity in protected areas of the Brazilian Atlantic Forest. Fungal Ecology 34: 50-58.
  • Phillips JM, Hayman DS. 1970. Improved procedures for cleaning roots and staining parasitic and vesicular-arbuscular mycorrhizal fungi for rapid assessment of infection. Transactions of the British Mycological Society 55: 158-161.
  • Piotrowski JS, Lekberg Y, Harner MJ, Ramsey PW, Rillig MC. 2008. Dynamics of mycorrhizae during development of riparian forests along an unregulated river. Ecography 31: 245-253.
  • Pontes JS, Oehl F, Marinho F et al 2017. Diversity of arbuscular mycorrhizal fungi in Brazil’s Caatinga and experimental agroecosystems. Biotropica 49: 413-427.
  • R Core Team. 2022. R: A Language and Environment for statistical computing. R Foundation for Statistical Computing. https://www.R-project.org/ 12 Jan. 2023.
    » https://www.R-project.org/
  • Reyes HA, Ferreira PFA, Silva LC, Costa MG, Nobre CP, Gehring C. 2019. Arbuscular mycorrhizal fungi along secondary forest succession at the eastern periphery of Amazonia: Seasonal variability and impacts of soil fertility. Applied Soil Ecology 136: 10.
  • Rezende CL, Scarano FR, Assad ED et al 2018. From hotspot to hopespot: An opportunity for the Brazilian Atlantic Forest. Perspectives in Ecology and Conservation 16: 208-214.
  • Robinson-Boyer L, Grzyb I, Jeffries P. 2009. Shifting the balance from qualitative to quantitative analysis of arbuscular mycorrhizal communities in field soils. Fungal Ecology 2: 1-9.
  • Rocha MJC, Ongarato G, Ferrari Neto J, Costa FA, Jadoski CJ, Guilherme DO. 2021. Componentes da produção do feijão preto cultivado em solo arenoso em função da inoculação das suas sementes com Azospirillum Brasiliense. Brazilian Journal of Development 7: 95385-95396.
  • Rodrigues LA, Silva DKA, Yano-Melo AM. 2021. Arbuscular mycorrhizal fungal assemblages in conservation unit of Atlantic forest areas under native vegetation and natural regeneration. Microbial Ecology 82: 122-134.
  • Rodrigues LS. 2019. A diversidade arbórea em uma paisagem florestal urbana: efeitos dos estágios sucessionais e de perturbações antrópicas crônicas. M. Sc. Thesis, Universidade Federal Rural de Pernambuco, Recife.
  • Rodrigues MF, Silva SPV. 2014. Plano de Manejo do Parque Estadual de Dois Irmãos. Recife, Secretaria de Meio Ambiente e Sustentabilidade do estado de Pernambuco.
  • Rodríguez-Echeverría S, Teixeira H, Correia M et al 2017. Arbuscular mycorrhizal fungi communities from tropical Africa reveal strong ecological structure. New Phytologist 213: 380-390.
  • Rodríguez-León CH, Peña-Venegas CP, Sterling A, Muñoz-Ramirez H, Virguez-Díaz YR. 2021. Changes in Soil-Borne Communities of Arbuscular Mycorrhizal Fungi during Natural Regrowth of Abandoned Cattle Pastures Are Indicative of Ecosystem Restoration. Agronomy 11: 2468.
  • Roth R, Paszkowski U. 2017. Plant carbon nourishment of arbuscular mycorrhizal fungi. Current Opinion in Plant Biology 39: 50-56.
  • Säle V, Aguilera P, Laczko E et al 2015. Impact of conservation tillage and organic farming on the diversity of arbuscular mycorrhizal fungi. Soil Biology and Biochemistry 84: 38-52.
  • Scoriza RN, Correira MEF, Silva EMR. 2016. Colêmbolos e fungos micorrízicos arbusculares como indicadores de degradação em fragmentos florestais de encosta. Revista de Ciências Agrárias Amazonian Journal of Agricultural and Environmental Sciences 59: 386-392.
  • Shannon CE, Weaver W. 1949. The mathematical theory of communication. Illinois, Urbana, University of Illinois Press.
  • Smith SE, Read DJ. 2008. Mycorrhizal Symbiosis. 3rd. edn. London, Academic Press.
  • Soka GE, Ritchie ME. 2018. Arbuscular mycorrhizal spore composition and diversity associated with different land uses in a tropical savanna landscape, Tanzania. Applied Soil Ecology 125: 222-232.
  • Sousa CS, Menezes RSC, Sampaio EVSB, Lima FS, Maia LC, Oehl F. 2014. Arbuscular mycorrhizal fungi in successional stages of caatinga in the semi-arid region of Brazil. Ciência Florestal 24: 137-148.
  • Stürmer SL, Bever JD, Morton JB. 2018. Biogeography of arbuscular mycorrhizal fungi (Glomeromycota): A phylogenetic perspective on species distribution patterns. Mycorrhiza 28: 587-603.
  • Stürmer SL, Klauberg Filho O, Queiroz MH, Mendonça MM. 2006. Occurrence of arbuscular mycorrhizal fungi in soils of early stages of a secondary succession of Atlantic Forest in South Brazil. Acta Botanica Brasilica 20: 513-521.
  • Stürmer SL, Siqueira JO. 2011. Species richness and spore abundance of arbuscular mycorrhizal fungi across distinct land uses in Western Brazilian Amazon. Mycorrhiza 21: 255-267.
  • Sun Y, Zhang X, Wu Z, Hu Y, Wu S, Chen B. 2016. The molecular diversity of arbuscular mycorrhizal fungi in the arsenic mining impacted sites in Hunan Province of China. Journal of Environmental Sciences 39: 110-118.
  • Teixeira HM, Cardoso IM, Bianchi FJJA, Silva AC, Jamme D, Peña-Claros M. 2020. Linking vegetation and soil functions during secondary forest succession in the Atlantic forest. Forest Ecology and Management 457: 117696.
  • Teixeira PC, Campos DVB, Saldanha MFC, Pérez DV. 2017. Complexo sortivo do solo. In: Teixeira PC, Donagemma GK, Fontana A, Teixeira WG (eds.). Manual de métodos de análise de solo. Brasília, Embrapa . p. 240-244.
  • Turrini A, Bedini A, Loor MB et al 2018. Local diversity of native arbuscular mycorrhizal symbionts differentially affects growth and nutrition of three crop plant species. Biology and Fertility of Soils 54: 203-217.
  • Ullah S, Muhammad B, Amin R, Abbas H, Muneer MA. 2020. Sensitivity of arbuscular mycorrhizal fungi in old-growth forests: Direct effect on growth and soil carbon storage. Applied Ecological Environment Research 17: 13749-13758.
  • van der Heijden MG, Martin FM, Selosse MAA, Sanders IR. 2015. Mycorrhizal ecology and evolution: The past, present, and the future. New Phytologist 205: 1406-1423.
  • van der Heyde MG, Ohsowski B, Abbott LK, Hart M. 2017. Arbuscular mycorrhizal fungus responses to disturbance are context-dependent. Mycorrhiza 27: 431-440.
  • Vieira LC, Silva DKA, Escobar IEC et al 2020. Changes in an arbuscular mycorrhizal fungi community along an environmental gradient. Plants (Basel) 9: 52.
  • Vieira LC, Silva DKA, Silva IR et al 2019. Ecological aspects of arbuscular mycorrhizal fungal communities in different habitat types of a Brazilian mountainous area. Ecological Research 34: 182-192.
  • Wijayawardene NN, Hyde KD, Dai DQ et al 2022. Outline of Fungi and fungus-like taxa-2021. Mycosphere 13: 53-453.
  • Winagraski E, Kaschuk G, Monteiro PHR, Auer CG, Higa AR. 2019. Diversity of arbuscular mycorrhizal fungi in forest ecosystems of Brazil: A review. Cerne 25: 25-35.
  • Wright SJ, Turner BL, Yavitt JB et al 2018. Plant responses to fertilization experiments in lowland, species rich, tropical forests. Ecology 99: 1129-1138.
  • Wu B, Hogetsu T, Isobe K, Ishii R. 2007. Community structure of arbuscular mycorrhizal fungi in a primary successional volcanic desert on the southeast slope of Mount Fuji. Mycorrhiza 17: 495-506.
  • Yang W, Zhang M, Song F, Liu S, Li X, Zhu X. 2021. Comparative analysis of arbuscular mycorrhizal fungal communities between farmland and woodland in the black soil region of Northeast China. Agriculture 11: 866.
  • Yano-Melo AM, Trufem SF, Maia LC. 2003. Arbuscular mycorrhizal fungi in salinized and surrounded areas at the São Francisco Submedium Valley, Brazil. Hoehnea 30: 79-87.
  • Zangaro W, Bononi VLR, Trufen SB. 2000. Mycorrhizal dependency, inoculum potential and habitat preference of native woody species in South Brazil. Journal of Tropical Ecology 16: 603-622.
  • Zangaro W, Moreira M. 2010. Micorrizas arbusculares nos biomas Floresta Atlântica e Floresta de Araucária. Micorrizas. In: Siqueira JO, Souza FA, Cardoso EJBN, Tsai SM (eds.). Micorrizas: 30 anos de pesquisas no Brasil. Lavras, UFLA . p. 279-310.
  • Zangaro W, Nishidate FR, Vandresen J, Andrade G, Nogueira MA. 2007. Root mycorrhizal colonization and plant responsiveness are related to root plasticity, soil fertility and successional status of native woody species in southern Brazil. Journal of Tropical Ecology 23: 53-62.
  • Zangaro W, Nisizaki SMA, Domingos JCB, Nakano EM. 2002. Micorriza arbuscular em espécies arbóreas nativas da bacia do rio Tibagi, Paraná. Cerne 8: 77-87.
  • Zangaro W, Nisizaki SMA, Domingos JCB, Nakano EM. 2003. Mycorrhizal response and successional status in 80 woody species from south Brazil. Journal of Tropical Ecology 19: 315-324.
  • Zangaro W, Rostirola LV, Souza PB et al 2013. Root colonization and spore abundance of arbuscular mycorrhizal fungi in distinct successional stages from an Atlantic rainforest biome in southern Brazil. Mycorrhiza 23: 221-233.
  • Zhang J, Quan C, Ma L, Chu G, Liu Z, Tang X. 2021. Plant community and soil properties drive arbuscular mycorrhizal fungal diversity: A case study in tropical forests. Soil Ecology Letters 3: 52-62.
  • Zhang Y, Guo LD, Liu RJ. 2004. Survey of arbuscular mycorrhizal fungi in deforested and natural forest land in the subtropical region of Dujiangyan, southwest China. Plant and Soil 261: 257-263.
  • Zhao ZW, Wang GH, Yang L. 2003. Biodiversity of arbuscular mycorrhizal fungi in a tropical rainforest of Xishuangbanna, southwest China. Fungal Diversity 13: 233-242.

Publication Dates

  • Publication in this collection
    08 Sept 2023
  • Date of issue
    2023

History

  • Received
    09 Mar 2023
  • Accepted
    04 July 2023
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