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Urban infestation by Triatoma infestans (Hemiptera: Reduviidae), an overlooked phenomena for Chagas disease in Argentina

Abstract

Vector-borne transmission of Chagas disease in urban areas of Argentina has been an overlooked phenomena. We conducted the first comprehensive cross-sectional study of domestic infestation with Triatoma infestans and vector infection with Trypanosoma cruzi in a metropolitan area of San Juan, Argentina. Our results document the occurrence of T. infestans infected with T. cruzi in human sleeping quarters. In this urban setting, we also show that infestation was associated with construction materials, the presence of chickens, cats and a large number of dogs that can provide blood meals for the vector. Our findings reveal new challenges for vectorial control agencies.

Key words:
urban infestation; vector control; San Juan


Chagas disease in a complex and multidimensional phenomenon, caused by the parasite Trypanosoma cruzi (Chagas, 1909), is transmitted to humans and other mammals by blood-sucking insects called triatomines. They are widely distributed in the Americas from the Great Lakes of northern USA to southern Argentina and Chile. Triatoma infestans (Klug, 1834) is the most important vector in the southern cone countries of South America.11. WHO - World Health Organization. A review of the current public health situation and a vision for the future. Report: conclusions and recommendations. 2018. Available from: https://www.who.int/publications/i/item/Chagas-Disease-in-the-Americas-conclusions-recommendations-2018.
https://www.who.int/publications/i/item/...
Although its historical-geographical distribution has been strongly reduced, after the implementation of the Southern Cone Initiative, this species still persists in some regions of Argentina, Bolivia and Paraguay where it represents an important socio-environmental health problem.11. WHO - World Health Organization. A review of the current public health situation and a vision for the future. Report: conclusions and recommendations. 2018. Available from: https://www.who.int/publications/i/item/Chagas-Disease-in-the-Americas-conclusions-recommendations-2018.
https://www.who.int/publications/i/item/...
In Argentina, there are still provinces with risk of vectorial transmission, although epidemiological data are outdated and were obtained mainly from entomological evaluations carried out in rural areas.22. Spillmann C, Burroni S, Coto H. Análisis de la situación epidemiológica de la enfermedad de Chagas en Argentina: avances en el control, 2012. Rev Argent Salud Publica. 2013; 4: 40-4. The current extension of infestation by T. infestans may be higher than previously recognized, as a recent study compiling different data sources beyond official entomological evaluations showed that this vector has been reported in 92% of the territory (22/24 jurisdictions) in the post-2000 period, although reports mainly occurred in the Dry Chaco and Monte eco-regions areas where T. infestans historically has been reported.33. Ceccarelli S, Balsalobre A, Cano M, Canale D, Lobbia P, Stariolo R, et al. Analysis of Chagas disease vectors occurrence data: the Argentinean triatomine species database. Biodivers Data J. 2020; 8: e58076.

Infestation in urban settings may represent hidden foci since elimination efforts are mostly concentrated in rural areas of endemic provinces.44. Canale D, García MM, Spillmann C. Guía para el control vectorial de la enfermedad de Chagas. 1st ed. Buenos Aires: Ministerio de Salud; 2008. 63 pp. As a consequence of migrations, urbanization, modification of agricultural strategies and climate change, Chagas disease has trespassed the Latin American rural matrix that gave its identity for decades into urban areas.55. OPAS - Organización Panamericana de la Salud. Control, interrupción de la transmisión y eliminación de la enfermedad de Chagas como problema de salud pública. Guía de evaluación, verificación y validación. 2019. Available from: https://iris.paho.org/handle/10665.2/51648.
https://iris.paho.org/handle/10665.2/516...
Urbanization may create conditions to propagate vectorial transmission of disease given the great density of people living in close proximity with domestic and peridomestic animals.66. Seto KC, Sánchez-Rodríguez R, Fragkias M. The new geography of contemporary urbanization and the environment. Annu Rev Environ Resour. 2010; 35: 167-94. However, this phenomenon has been understudied and overlooked by vector agencies.55. OPAS - Organización Panamericana de la Salud. Control, interrupción de la transmisión y eliminación de la enfermedad de Chagas como problema de salud pública. Guía de evaluación, verificación y validación. 2019. Available from: https://iris.paho.org/handle/10665.2/51648.
https://iris.paho.org/handle/10665.2/516...

This study was conceived as part of a rapid intervention work coordinated with national and provincial health agencies to suppress vector infestation and T. cruzi transmission in a large metropolitan area (the city of San Juan) from Argentina. T. infestans is the main domestic vector that colonizes human dwellings mainly in rural areas of Argentina,33. Ceccarelli S, Balsalobre A, Cano M, Canale D, Lobbia P, Stariolo R, et al. Analysis of Chagas disease vectors occurrence data: the Argentinean triatomine species database. Biodivers Data J. 2020; 8: e58076. but historical records have also shown T. infestans infestations in this metro area.77. Vallvé SL, Rojo H, Wisnivesky-Colli C. Urban ecology of Triatoma infestans in San Juan, Argentina. Mem Inst Oswaldo Cruz. 1996; 91(4): 405-8.,88. Páez RC, Pickenhayn J, Páez MC. Chagas urbano en San Juan: diagnóstico, revisión y propuesta para un sistema integrado de ataque. Rev Argent Cardiol. 2008; 76(6): 480-7. Experienced technical personnel of the San Juan Vector Control Program conducted an entomological survey on 2,427 houses from San Juan city and contiguous urban areas, during 2016. An infestation rate between 2-20% was reported. A total of 766 reports of T. infestans presence in domiciles were notified by householders during 2017. Additionally, between 2016 and 2020, acute vectorial transmissions of T. cruzi to humans were confirmed by provincial health authorities. Herein, we conduct the first cross-sectional assessment of domestic infestation with T. infestans and vector infection with T. cruzi in a metro area in Argentina to cast light into the eco-epidemiology of Chagas disease in this new urban context.

The study was conducted during June-December 2017 in the Rawson Department, a contiguous urban area of San Juan, Argentina, which encompass 29,520 houses in 300 km2 and 114,386 inhabitants (Fig. 1A-D).99. INDEC - Instituto Nacional de Estadísticas y Censos de Argentina. Censo nacional de población, hogares y viviendas 2010. Departamento Rawson, provincia de San Juan, Argentina. 2010. Available from: https://www.indec.gob.ar/indec/web/Nivel4-CensoProvincia-1-1-70-077-2010.
https://www.indec.gob.ar/indec/web/Nivel...
We selected 75 blocks (1 ha each) with approximately 35 houses each, totaling 2,612 houses. The selected blocks were representative of all types of houses in the area. All houses were visited, georeferenced, and 1,784 (68%) were inspected for the presence of triatomine vectors, after obtaining oral consent from an adult dweller. The remaining houses could not be inspected because they were closed (n = 581, 22%), uninhabited (n = 26, 1%) or refused to participate in the study (n = 221, 8%). Triatomine collections were conducted by trained personnel from the Provincial and National Vector Control Program using active search. Domestic infestation refers to the occurrence of at least one live T. infestans in the domicile (i.e., an independent structure used as human sleeping quarters with internal bathroom, kitchen and living room) or any peridomestic structure of the house, while intra-domiciliary infestation refers only to findings of T. infestans in domiciles. Immediately after the entomological survey, infested and adjacent houses were sprayed with standard doses (5%) of flowable beta-cypermethrin (Sipertrin, Chemotecnica, Argentina). This protocol has been review by Comité de Ética en Investigación, Ministerio de Salud Pública de San Juan (Exp. No. 800-006169/19). All caught specimens were identified taxonomically following Lent & Wygodzinsky,1010. Lent H, Wygodzinsky P. A revision of the Triatominae (Hemiptera: Reduviidae), and their significance as vectors of Chagas' disease. Bull Am Mus Nat Hist. 1979; 163(3): 123-520. and counted according to species and stage. T. cruzi infection was determined in a random sample of 80% of all collected -third to fifth instar- nymphs and adult bugs, using direct observation under optical microscope (40x).1111. Lardeux F, Aliaga C, Depickère S. Bias due to methods of parasite detection when estimating prevalence of infection of Triatoma infestans by Trypanosoma cruzi. J Vector Ecol. 2016; 41(2): 285-91.

Fig. 1:
location of the study area in Argentina; (A) Location of San Juan province; (B) Rawson Department in San Juan Province; (C) Metropolitan area of Rawson Department (gray) with study area (white rectangle) showing the proximity to the Capital Department (black); (D) Urban houses with access to the power grid, natural gas, asphalted roads, drinking water, sewage and trash disposal.

Bivariate risk factor analysis for domestic and intra-domiciliary infestation was carried out via Firth penalized logistic regression implemented in R 3.6.3 (R Core Team 2020) using the package logistf, to account for small sample bias. The explanatory variables included those collected during a household survey delivered to an adult dweller or by direct observation during the vector survey: the number of dwellers, if the construction materials of walls and roofs could provide refuge for triatomines (e.g., mud or unplastered walls, thatched roofs, etc.), and the presence and number of non-human hosts (dogs, cats or chicken). The construction materials were only recorded for the domiciles. Multiple Firth penalized logistic regression models were conducted using a multi-model inference approach to account for model selection uncertainty, using the package MuMin.1212. Gaspe MS, Provecho YM, Cardinal MV, Fernández M, Gürtler RE. Ecological and sociodemographic determinants of house infestation by Triatoma infestans in indigenous communities of the Argentine Chaco. PLoS Negl Trop Dis. 2015; 18: 9(3): e0003614. Models were ranked according to their Akaike Information Criterion adjusted for small sample sizes (AICc), and model averaging was conducted including those models within AICc < 2 from the best model. Multicollinearity was assessed by estimating the variance inflation factor.

A total of 958 T. infestans adults and nymphs were collected. At least one T. infestans was found in 7.0% (125/1,784) of the inspected houses. Infestation rates were similar in domiciles (3.6%, 63/1,784) and peridomestic sites (3.8%, 67/1,784) (χ2 = 3.14, df = 1, P = 0.08), but only five houses were infested in both. Of the 760 triatomines tested, 7.6% [95% confidence interval (CI) = 6.0-9.7%] were found infected with T. cruzi and came from 17 houses (1.0%, 17/1,784). The prevalence of T. cruzi infection among domiciliary (9.2%; 95% CI = 7.4-11.5%) and peridomestic (5.8%, 95% CI = 4.3-7.7 %) bugs was not significantly different (χ2 = 0.84, df = 1, P = 0.15) (Table I). Although no evident spatial pattern was observed, most of the blocks (64%) had at least one infested house (Fig. 2).

TABLE I
Prevalence of Trypanosoma cruzi infection in Triatoma infestans collected in houses from metropolitan area of San Juan, June-December 2017. The infected bugs came from 17 houses.

Fig. 2:
map showing the 1,784 inspected houses (black dots) georeferenced in the 75 blocks selected as the study area, and the location of houses infested with Triatoma infestans (white circles) and the occurrence of vectors infected with Trypanosoma cruzi (gray star) in the Rawson Department, San Juan province, Argentina, 2017.

Bivariate risk factor analysis showed that domestic infestation (in any site) was positively associated with the presence of cats and chickens (Table II). When ranking all models by AICc, the full model containing all variables was the best model and the remaining models had a delta AICc > 2. The full model confirmed the association of cats and chickens with house infestation and revealed the higher risk of infestation in houses with three or more dogs (Table III). Intra-domiciliary infestation was also associated with the presence of cats in bivariate analysis, and if the walls and/or roofs were built with materials that could offer refuge for triatomines (Table II). Three competing models were identified (AICc < 2 from the best model), and although the relative importance of the construction materials was 1 (i.e., present in the three models averaged), only the presence of at least one cat remained statistically significant (Table III).

TABLE II
Prevalence of domestic and intra-domiciliary infestation with Triatoma infestans and unadjusted odds ratio (OR) and 95% confidence interval (CI) obtained from bivariate. Firth penalized logistic regressions, for variables associated with the infestation by T. infestans in urban domiciles in the Rawson Department, San Juan, Argentina, June-December 2017.

TABLE III
Adjusted odds ratio (ORadj) and 95% confidence interval (CI) obtained from the multiple Firth penalized logistic regressions for domestic and intra-domiciliary infestation. Using a multi-model inference approach, one model (the full model) was identified as the best model for domestic infestation, while three competing models (delta AICc < 2) were averaged for intra-domiciliary infestation. Relative importance of a variable refers to the relative presence of the variable in the competing models (1 = present in all three models; 0 = absent in all three models).

This study confirms the occurrence of domestic infestation with T. infestans infected with T. cruzi in a metropolitan area (> 500,000 inhabitants) in the province of San Juan, Argentina. Although a governmental plan to improve the quality of houses in the area was implemented in the Rawson Department during the last decade,1313. Tomadoni C, Grezzi CR, Chirino S. Impensar las crisis socioambientales: Producción cooperativa de un hábitat inclusivo. Nueva Sociedad. 2018; 273: 55-71. our results show that intra-domiciliary infestation was associated with construction materials that could provide refuge to triatomines (e.g., if they had cracks in the walls). Similarly to other areas from Argentina, domestic infestation is associated with the presence of chickens, cats and a large number of dogs that can provide blood meals for the vector. A serological survey on dogs (n = 130) from the Rawson Department showed that 10% (n = 10) were reactive for T. cruzi [Sartor et al. (unpublished data)]. The role of cats and dogs is particularly important as infection sources for the vector.1414. Zecca IB, Hodo CL, Slack S, Auckland L, Rodgers S, Killets KC, et al. Prevalence of Trypanosoma cruzi infection and associated histologic findings in domestic cats (Felis catus). Vet Parasitol. 2020; 278: 109014.,1515. Jaimes-Dueñez J, Jiménez-Leaño AP, Esteban-Mendoza M, Moreno-Salcedo LA, Triana-Chávez O, Cantillo-Barraza O. Epidemiological and clinical characteristics of Trypanosoma cruzi infection in dogs (Canis lupus familiaris) from a Chagas disease-endemic urban area in Colombia. Prev Vet Med. 2020; 182: 105093. Given the proximity between the houses in this urban environment, the mobility and habits of these hosts might contribute to the dispersion of the parasite in the area. Although birds are refractory to T. cruzi infection, they can maintain triatomine colonies. Previous studies on pigeon lofts located in the metropolitan area indicate that they could be a continuous source of infestation and dispersion.88. Páez RC, Pickenhayn J, Páez MC. Chagas urbano en San Juan: diagnóstico, revisión y propuesta para un sistema integrado de ataque. Rev Argent Cardiol. 2008; 76(6): 480-7.

In the urban context, the peridomicile is markedly different from the rural one. Although our results show that there are simple chicken coops and dog kennels, we did not find the large peridomiciliary structures such as goat corrals, traditional of rural areas with high abundance and infestation with T. infestans.1616. Carbajal-de-la-Fuente AL, Provecho YM, Fernández MP, Cardinal MV, Lencina P, Spillmann C, et al. The eco-epidemiology of Triatoma infestans in the temperate Monte Desert ecoregion of mid-western Argentina. Mem Inst Oswaldo Cruz. 2017; 112(10): 698-708. Application of insecticide is carried out following the attack methodology in rural areas that present an infestation index < 5% or selective methodology when the index is > 5%.44. Canale D, García MM, Spillmann C. Guía para el control vectorial de la enfermedad de Chagas. 1st ed. Buenos Aires: Ministerio de Salud; 2008. 63 pp. In urban areas, the scenario differs from rural settings by an increased population density is high (the last 2010 census indicates that in San Juan and its surroundings it is > 500,000 inhabitants) and house proximity, but also by the heterogeneity in construction materials (i.e., adobe, brick, blocks) and construction types (i.e., single-story homes or multi-story buildings). Thus, the vector indices thresholds for control may differ between settings, as well as the strategy used (i.e., spray coverage and distance radius from detected foci). These findings highlight the urgent need to develop new guidelines for cost-effective insecticide spraying to control the vector populations in this new urban context. Moreover, sustained and continuous coordination between health teams, researchers from multiple disciplines, public policy makers and the communities is critical. As recently proposed by Sanmartino et al.1717. Sanmartino M, Forsyth CJ, Avaria A, Velarde-Rodriguez M, Gómez i Prat J, Albajar-Viñas P. The multidimensional comprehension of Chagas disease. Contributions, approaches, challenges and opportunities from and beyond the Information, Education and Communication field. Mem Inst Oswaldo Cruz. 2021; 116: e200460. we believe that encouraging new reflections including Information, Education, and Communication (IEC) initiatives in Chagas, have great potential for impact in the implementation of multidimensional programs of prevention and control adapted to the urban context where transmision vectorial persists.

ACKNOWLEDGEMENTS

To the National and Provincial Vector Control Program personnel and local health workers, for their valuable assistance in field work. We are grateful to R Piccinali and J Nattero for enriching discussions. Also we thank the four anonymous reviewers for their careful reading of our manuscript and their insightful comments and suggestions.

REFERENCES

  • 1
    WHO - World Health Organization. A review of the current public health situation and a vision for the future. Report: conclusions and recommendations. 2018. Available from: https://www.who.int/publications/i/item/Chagas-Disease-in-the-Americas-conclusions-recommendations-2018
    » https://www.who.int/publications/i/item/Chagas-Disease-in-the-Americas-conclusions-recommendations-2018
  • 2
    Spillmann C, Burroni S, Coto H. Análisis de la situación epidemiológica de la enfermedad de Chagas en Argentina: avances en el control, 2012. Rev Argent Salud Publica. 2013; 4: 40-4.
  • 3
    Ceccarelli S, Balsalobre A, Cano M, Canale D, Lobbia P, Stariolo R, et al. Analysis of Chagas disease vectors occurrence data: the Argentinean triatomine species database. Biodivers Data J. 2020; 8: e58076.
  • 4
    Canale D, García MM, Spillmann C. Guía para el control vectorial de la enfermedad de Chagas. 1st ed. Buenos Aires: Ministerio de Salud; 2008. 63 pp.
  • 5
    OPAS - Organización Panamericana de la Salud. Control, interrupción de la transmisión y eliminación de la enfermedad de Chagas como problema de salud pública. Guía de evaluación, verificación y validación. 2019. Available from: https://iris.paho.org/handle/10665.2/51648
    » https://iris.paho.org/handle/10665.2/51648
  • 6
    Seto KC, Sánchez-Rodríguez R, Fragkias M. The new geography of contemporary urbanization and the environment. Annu Rev Environ Resour. 2010; 35: 167-94.
  • 7
    Vallvé SL, Rojo H, Wisnivesky-Colli C. Urban ecology of Triatoma infestans in San Juan, Argentina. Mem Inst Oswaldo Cruz. 1996; 91(4): 405-8.
  • 8
    Páez RC, Pickenhayn J, Páez MC. Chagas urbano en San Juan: diagnóstico, revisión y propuesta para un sistema integrado de ataque. Rev Argent Cardiol. 2008; 76(6): 480-7.
  • 9
    INDEC - Instituto Nacional de Estadísticas y Censos de Argentina. Censo nacional de población, hogares y viviendas 2010. Departamento Rawson, provincia de San Juan, Argentina. 2010. Available from: https://www.indec.gob.ar/indec/web/Nivel4-CensoProvincia-1-1-70-077-2010
    » https://www.indec.gob.ar/indec/web/Nivel4-CensoProvincia-1-1-70-077-2010
  • 10
    Lent H, Wygodzinsky P. A revision of the Triatominae (Hemiptera: Reduviidae), and their significance as vectors of Chagas' disease. Bull Am Mus Nat Hist. 1979; 163(3): 123-520.
  • 11
    Lardeux F, Aliaga C, Depickère S. Bias due to methods of parasite detection when estimating prevalence of infection of Triatoma infestans by Trypanosoma cruzi. J Vector Ecol. 2016; 41(2): 285-91.
  • 12
    Gaspe MS, Provecho YM, Cardinal MV, Fernández M, Gürtler RE. Ecological and sociodemographic determinants of house infestation by Triatoma infestans in indigenous communities of the Argentine Chaco. PLoS Negl Trop Dis. 2015; 18: 9(3): e0003614.
  • 13
    Tomadoni C, Grezzi CR, Chirino S. Impensar las crisis socioambientales: Producción cooperativa de un hábitat inclusivo. Nueva Sociedad. 2018; 273: 55-71.
  • 14
    Zecca IB, Hodo CL, Slack S, Auckland L, Rodgers S, Killets KC, et al. Prevalence of Trypanosoma cruzi infection and associated histologic findings in domestic cats (Felis catus). Vet Parasitol. 2020; 278: 109014.
  • 15
    Jaimes-Dueñez J, Jiménez-Leaño AP, Esteban-Mendoza M, Moreno-Salcedo LA, Triana-Chávez O, Cantillo-Barraza O. Epidemiological and clinical characteristics of Trypanosoma cruzi infection in dogs (Canis lupus familiaris) from a Chagas disease-endemic urban area in Colombia. Prev Vet Med. 2020; 182: 105093.
  • 16
    Carbajal-de-la-Fuente AL, Provecho YM, Fernández MP, Cardinal MV, Lencina P, Spillmann C, et al. The eco-epidemiology of Triatoma infestans in the temperate Monte Desert ecoregion of mid-western Argentina. Mem Inst Oswaldo Cruz. 2017; 112(10): 698-708.
  • 17
    Sanmartino M, Forsyth CJ, Avaria A, Velarde-Rodriguez M, Gómez i Prat J, Albajar-Viñas P. The multidimensional comprehension of Chagas disease. Contributions, approaches, challenges and opportunities from and beyond the Information, Education and Communication field. Mem Inst Oswaldo Cruz. 2021; 116: e200460.
  • Financial support: Health Ministry of San Juan, National Health Ministry; Argentina’s National Promotion Agency for Science and Technology (PICTs 2018-3200 and 2014-3746 to ALCF); Centro Nacional de Diagnóstico e Investigación en Endemo-epidemias/Administración Nacional de Laboratorios e Institutos de Salud Dr Carlos Malbrán. ALCF is a researcher career of the Consejo Nacional de Investigaciones Científicas y Técnicas de Argentina.

Publication Dates

  • Publication in this collection
    02 June 2021
  • Date of issue
    2021

History

  • Received
    24 Feb 2021
  • Accepted
    07 May 2021
Instituto Oswaldo Cruz, Ministério da Saúde Av. Brasil, 4365 - Pavilhão Mourisco, Manguinhos, 21040-900 Rio de Janeiro RJ Brazil, Tel.: (55 21) 2562-1222, Fax: (55 21) 2562 1220 - Rio de Janeiro - RJ - Brazil
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