ABSTRACT
To understand the developmental expression patterns of key genes in the Toll-like receptor 4 ( TLR4 ) pathway and their regulatory characteristics in the immune response in pigs, we examined TLR4 and its downstream genes expression levels in the intestinal and immune tissues of Meishan pigs. The genes were expressed in all examined tissues at the different developmental stages. TLR4 expression was higher in spleen and lower in other tissues. Spleen and lymph TLR4 expression was significantly lower in 7- and 35-day-old pigs; in the intestinal tissues, it was significantly lower in 21- and 35-day-old pigs. IFNA, IL1B , and TNFA expression varied greatly with developmental stage; expression was significantly higher in most tissues in 21-, 134-, and 158-day-old pigs. TLR4 was highly positively correlated with TNFA in the immune tissues and was significantly correlated with all downstream genes in the spleen; there was no significant correlation in the intestinal tissues. There was near significant positive correlation among the downstream genes in the intestinal tissues, but almost no significant correlation in the immune tissues. We speculated that the TLR4 pathway genes may have an anti-lipopolysaccharide invasion effect during weaning, and the high expression of the downstream genes is beneficial for improving immunity in adult pigs. Our results may contribute to better understanding the TLR4 signaling pathway and its molecular mechanisms and could provide a reference and basis for appropriate-age experimental animal selection for relevant future research.
Keywords:
gene expression; growth curve; pig
Introduction
Upon entering the body, bacteria and viruses invade the innate immune system and induce an immune response. As important receptors involved in the innate immune system, Toll-like receptors (TLR) can specifically recognize pathogen-associated molecular patterns (PAMP), induce innate immunity, and then promote the acquired immunity ( Lee and Min, 2007Lee, M. S. and Min, Y. J. 2007. Signaling pathways downstream of pattern-recognition receptors and their cross talk. Annual Review of Biochemistry 76:447-480. https://doi.org/10.1146/annurev.biochem.76.060605.122847
https://doi.org/10.1146/annurev.biochem....
). TLR4 plays a major role in cell inflammation and in the immune response. Many PAMP can bind specifically to TLR, and many types of PAMP can stimulate TLR4 ( Kurt-Jones et al., 2000Kurt-Jones, E. A.; Popova, L.; Kwinn, L.; Haynes, L. M.; Jones, L. P.; Tripp, R. A.; Walsh, E. E.; Freeman, M. W.; Golenbock, D. T.; Anderson, L. J. and Finberg, R. W. 2000. Pattern recognition receptors TLR4 and CD14 mediate response to respiratory syncytial virus. Nature Immunology 1:398-401. https://doi.org/10.1038/80833
https://doi.org/10.1038/80833...
; Rassa et al., 2002Rassa, J. C.; Meyers, J. L.; Zhang, Y.; Kudaravalli, R. and Ross, S. R. 2002. Murine retroviruses activate B cells via interaction with toll-like receptor 4. Proceedings of the National Academy of Sciences of the United States of America 99:2281-2286. https://doi.org/10.1073/pnas.042355399
https://doi.org/10.1073/pnas.042355399...
). As a principal component of the outer membrane of gram-negative bacteria, lipopolysaccharide (LPS) can specifically activate TLR4 ( Beutler et al., 2001Beutler, B.; Du, X. and Poltorak, A. 2001. Identification of Toll-like receptor 4 (Tlr4) as the sole conduit for LPS signal transduction: genetic and evolutionary studies. Journal of Endotoxin Research 7:277-280. https://doi.org/10.1177/09680519010070040901
https://doi.org/10.1177/0968051901007004...
), triggering a signal cascade that leads to the release of interferon alpha ( IFNA ), interleukin-1 beta ( IL1B ), tumour necrosis factor alpha ( TNFA ), and other downstream cytokines, which leads to intestinal inflammation ( Plociennikowska et al., 2015Plociennikowska, A.; Hromada-Judycka, A.; Borzecka, K. and Kwiatkowska, K. 2015. Co-operation of TLR4 and raft proteins in LPS-induced pro-inflammatory signaling. Cellular and Molecular Life Sciences 72:557-581. https://doi.org/10.1007/s00018-014-1762-5
https://doi.org/10.1007/s00018-014-1762-...
). TLR signaling pathways play an important regulatory role in autoimmune diseases ( Hamerman et al., 2016Hamerman, J. A.; Pottle, J.; Ni, M.; He, Y.; Zhang, Z. Y. and Buckner, J. H. 2016. Negative regulation of TLR signaling in myeloid cells--implications for autoimmune diseases. Immunological Reviews 269:212-227. https://doi.org/10.1111/imr.12381
https://doi.org/10.1111/imr.12381...
), viral infection ( Abe et al., 2007Abe, T.; Kaname, Y.; Hamamoto, I.; Tsuda, Y.; Wen, X.; Taguwa, S.; Moriishi, K.; Takeuchi, O.; Kawai, T.; Kanto T.; Hayashi, N.; Akira, S. and Matsuura, Y. 2007. Hepatitis C virus nonstructural protein 5A modulates the toll-like receptor-MyD88-dependent signaling pathway in macrophage cell lines. Journal of Virology 81:8953-8966. https://doi.org/10.1128/JVI.00649-07
https://doi.org/10.1128/JVI.00649-07...
), and inflammatory bowel disease ( Abreu et al., 2005Abreu, M. T.; Fukata, M. and Arditi, M. 2005. TLR signaling in the gut in health and disease. Journal of Immunology 174:4453-4460. https://doi.org/10.4049/jimmunol.174.8.4453
https://doi.org/10.4049/jimmunol.174.8.4...
). Our recent transcriptome sequencing results have indicated that the TLR4 signaling pathway plays an important regulatory role in resistance to Escherichia coli F18 ( Wu et al., 2016Wu, Z. C.; Liu, Y.; Dong, W. H.; Zhu, G. Q.; Wu, S. L. and Bao, W. B. 2016. CD14 in the TLRs signaling pathway is associated with the resistance to E. coli F18 in Chinese domestic weaned piglets. Scientific Reports 6:24611. https://doi.org/10.1038/srep24611
https://doi.org/10.1038/srep24611...
). The TLR4 signaling pathway is a complicated protein interaction network, and whether the reaction is different in the distinct developmental stages of pigs remains unclear. Furthermore, the changes in TLR4 signaling pathway gene expression levels during immune system development and before and after weaning remain unclear.
To reveal the developmental expression patterns of TLR4 and its downstream genes, we detected the expression of the TLR4 gene and its downstream genes IFNA, IL1B , and TNFA in the intestinal and immune tissues of Meishan pigs at various developmental stages. The results revealed the differential expression of this important immune signaling pathway at different developmental stages in pigs, and contributed to better understanding of the immune developmental changes during pig growth. Our findings can also provide a theoretical and experimental basis for studying the function and regulatory mechanism of the porcine TLR4 signaling pathway.
Material and Methods
The local Institutional Animal Care and Use Committee approved the animal study proposal (case number: SYXK [Su] IACUC 2012-0029). All experimental procedures involving piglets were performed in accordance with the Regulations for the Administration of Affairs Concerning Experimental Animals and were approved by the State Council of the People's Republic of China.
We used Meishan pigs obtained from a company in Jiangsu, China. All experimental pigs were maintained under standard piggery conditions. The pigs had ad libitum access to a commercial-type compound feed containing 21.7% of crude protein and no antimicrobial additives or organic acids. We selected one pig from five litters at the various developmental stages (newborn, 7-, 14-, 21-, 28-, 35-, 134-, 158-day-old). A total of 40 pigs (five pigs per group) were used, and pigs at the same developmental stage were healthy and had similar characteristics (e.g., size and weight) ( Table 1 ). The pigs were electrically stunned (300 V for 5 s) and bled by heart puncture under the left armpit. Spleen, thymus, lymph, duodenum, jejunum, and ileum tissue samples were obtained within 30 min after slaughter, frozen in liquid nitrogen, and stored at −80 °C.
Total RNA was extracted from the tissues (50-100 mg) using TRIzol (TaKaRa Biotechnology Dalian Co., Ltd.). The precipitated RNA was suspended in 20 μL RNase-free water, and stored at −80 °C. Quality of RNA was assessed by 1.5% formaldehyde denaturing gel electrophoresis. Concentration and purity of RNA were determined using a spectrophotometer (Nanodrop ND1000, NanoDrop Technologies Co., Ltd.).
Total RNA was reverse-transcribed into complementary DNA (cDNA) using a HiScript Q RT SuperMix kit for quantitative PCR (qPCR) (+genomic DNA [gDNA] wiper) (Vazyme Biotech Co., Ltd.). The cDNA synthesis reaction mixture (10 µL) consisted of 2 μL 5× qRT SuperMix II, 500 ng total RNA, and RNase-free water. The reaction was carried out at 25 °C for 10 min, 50 °C for 5 min, and 85 °C for 5 min, and the products were stored at 4 °C.
Based on published GenBank sequences, the primers for TLR4 (NM_001113039.2), IFNA (NM_214393.1), IL1B (NM_001005149), and TNFA (NM_214022.1) were designed using Primer Premier 5.0 software (PREMIER Biosoft International, USA). The primers were synthesized by Takara Biotechnology Dalian Co., Ltd. GAPDH (glyceraldehyde-3-phosphate dehydrogenase) and ACTB (β-actin) were used as internal control genes to normalize the threshold cycle (Ct) values of the other transcripts. Table 2 lists the primer sequences and product lengths.
Real-time PCR amplification was performed using a PCR kit (Vazyme Biotech Co., Ltd.) in a 25-μL reaction mixture containing 2 μL cDNA, 0.5 μL forward and reverse primer (10 μM each), 0.5 μL 50 × ROX Reference Dye II, 10 μL 2× SYBR Green Real-Time PCR Master Mix, and double-distilled water. We used 7500 Real-Time PCR system (Applied Biosystems) to perform the process; PCR conditions were set at 95 °C for 5 min, followed by 40 cycles of 95 °C for 5 s and 60 °C for 34 s. Dissociation curve analysis was performed after amplification. A peak melting temperature (Tm) of 60±0.8 °C in the dissociation curve was used to determine the specificity of the amplification product. The Tm value for each sample was calculated using the average of triplicate technical samples.
The original data were arranged using Excel 2007 software (Microsoft Corporation, USA). The relative quantitative expression results were calculated using the comparative Ct (2−ΔΔCt) method ( Livak and Schmittgen, 2001Livak, K. J. and Schmittgen, T. D. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCTmethod. Methods 25:402-408. https://doi.org/10.1006/meth.2001.1262
https://doi.org/10.1006/meth.2001.1262...
). The general univariate linear model was used to determine differences in transcript levels among the developmental stages, age (or tissue) was taken as the fixed factor, and expression level as the dependent variables. A three-dimensional map was drawn using Origin 9.0 software (Microcal Software Inc., USA), and a heatmap was drawn using HemI 1.0 ( Deng et al., 2014Deng, W.; Wang, Y.; Liu, Z.; Cheng, H. and Xue, Y. 2014. HemI: a toolkit for illustrating heatmaps. PloS One 9:e111988. https://doi.org/10.1371/journal.pone.0111988
https://doi.org/10.1371/journal.pone.011...
) after log2 conversion using the mean of the expression levels (X=log2(expression data)). Correlation analysis was performed using SPSS 18.0 software (SPSS Inc., Chicago, IL, USA) on the gene expression levels from the different tissues, respectively. Statistical significance was set at P<0.05.
Results
There were three bands, i.e., 28S, 18S, and 5S, with no DNA contamination and obvious degradation, and the A260:A280 (absorbance at 260 nm and 280 nm) ratio was ∼1.8–1.9. The results indicate that the extracted RNA had high integrity and purity and could be used in subsequent analysis.
The real-time PCR amplification and melting curves for the TLR4, TNFA, IL1B , and IFNA genes showed that the PCR product had only one definite peak, and no primer dimer or non-specific product ( Figures 1 and 2 ).
Expression levels of TLR4, TNFA, IL1B , and IFNA in the Meishan pig intestinal and immune tissues were detected by real-time PCR, and the results were normalized by the GAPDH and ACTB genes. TLR4 and its downstream genes were expressed in all intestinal and immune tissues at the various developmental stages ( Figure 3 ). TLR4 expression was significantly higher in the spleen and significantly lower in the other tissues (P<0.05). IFNA expression was significantly higher in the small intestine (duodenum, jejunum, and ileum) and spleen (P<0.05), and lower in the other tissues. IL1B expression was significantly higher in the small intestine and lymph (P<0.05) and lower in the other tissues. TNFA expression was significantly higher in the thymus and lymph (P<0.05) and moderate in the other tissues.
Spatiotemporal expression patterns of TLR4 and its downstream genes in immunity and intestinal tissues from Meishan pigs.
TLR4 expression levels in the spleen and lymph were significantly lower at 7 and 35 days than at the other stages (P<0.05), and were significantly lower at 21-35 days in the intestinal tissues than at the other stages (P<0.05). Expression levels of IFNA, IL1B , and TNFA varied greatly with developmental stage in the examined tissues. IFNA expression levels were significantly higher at 21, 134, and 158 days than at the other stages in all examined tissues (P<0.05). IL1B expression levels were significantly higher at 21 days than at the other stages in all examined tissues (P<0.05) and significantly higher at 134 and 158 days than at the other stages in the intestinal tissues (P<0.05). TNFA expression levels were significantly higher at 21 and 158 days than at the other stages in almost examined tissues (P<0.05), in addition to lower expression in spleen and thymus at these two stages.
The intestinal and immune tissues could be clearly distinguished on the heatmap constructed based on the expression levels of the four genes ( Figure 4 ). The thymus and lymph tissues were clustered together, followed by the spleen tissue. For the intestinal tissue, the duodenum and jejunum were first grouped together and then clustered with the ileum.
TLR4 and IFNA were significantly positively correlated in the spleen (R = 0.523, P<0.01) ( Table 3 ). TLR4 and IL1B were significantly negatively correlated in the spleen and thymus (R = −0.359, P<0.05; R = 0.524, P<0.01). TLR4 and TNFA had significant positive correlations in the immune tissues (spleen, thymus, lymph: R = 0.400, P<0.05; R = 0.387, P<0.05; R = 0.452, P<0.01, respectively). There were significant positive correlations between IFNA and IL1B in the duodenum and jejunum (R = 0.693, P<0.01; R = 0.355, P<0.05, respectively); IFNA and TNFA had significant positive correlations in the spleen and intestinal tissues (duodenum, jejunum, ileum: R = 0.734, 0.720, 0.427, 0.549, respectively; P<0.01). IL1B and TNFA had significant positive correlations in the intestinal tissues (duodenum, jejunum, ileum: R = 0.847, 0.838, 0.811; P<0.01).
Correlation analysis between TLR4 and its downstream genes in Meishan pig intestinal and immune tissues
Discussion
TLR4 is the first PAMP receptor to be characterized from the TLR family and comprises an extracellular domain, intracellular region, and a transmembrane domain. Its N-terminus contains multiple leucine-rich repeats that recognize PAMP, and the C-terminus contains a Toll/IL-1 receptor domain that recruits the downstream adaptor proteins to activate the downstream signaling pathways ( Buchta and Bishop, 2014Buchta, C. M. and Bishop, G. A. 2014. Toll-like receptors and B cells: functions and mechanisms. Immunologic Research 59:12-22. https://doi.org/10.1007/s12026-014-8523-2
https://doi.org/10.1007/s12026-014-8523-...
). The TLR4 signaling pathway involves the innate immune responses triggered by most microorganisms, including gram-negative bacteria, Chlamydia pneumoniae , and some viruses, such as respiratory syncytial virus and mouse mammary tumor virus ( Li et al., 2016Li, J.; Csakai, A.; Jin, J. L.; Zhang, F. C. and Yin, H. 2016. Therapeutic developments targeting toll-like receptor-4-mediated neuroinflammation. ChemMedChem 11:154-165. https://doi.org/10.1002/cmdc.201500188
https://doi.org/10.1002/cmdc.201500188...
). TLR4 is a crucial LPS receptor: when LPS enters the bloodstream, it is bound by LPS-binding protein (LBP) in the serum and then transferred to CD14 (cluster of differentiation 14). CD14 is a high-affinity receptor of LPS and is present in secreted form or anchored to macrophage surfaces in the form of glycosylphosphatidylinositol, which decomposes LPS polymers into single molecules and presents them to TLR4 / MD-2 (lymphocyte antigen 96) complexes ( Park and Lee, 2013Park, B. S. and Lee, J. O. 2013. Recognition of lipopolysaccharide pattern by TLR4 complexes. Experimental and Molecular Medicine 45:e66. https://doi.org/10.1038/emm.2013.97
https://doi.org/10.1038/emm.2013.97...
; Gioannini et al., 2014Gioannini, T. L.; Teghanemt, A.; Zhang, D. S.; Esparza, G.; Yu, L. P. and Weiss, J. 2014. Purified monomeric ligand. MD-2 complexes reveal molecular and structural requirements for activation and antagonism of TLR4 by Gram-negative bacterial endotoxins. Immunologic Research 59:3-11. ). TLR4 intracellular signaling is dependent on the MyD88 (myeloid differentiation primary response 88)-dependent and MyD88-independent pathways. Currently, there are numerous studies on the mechanism of the TLR4 signaling pathway, and the relationship among the pathway genes is gradually becoming clear. However, knowledge of TLR4 signaling pathway gene expression in all developmental stages of pigs remains relatively sparse. Therefore, we aimed to reveal the TLR4, IFNA, IL1B , and TNFA expression patterns at the various stages of development in Meishan pigs to provide important basic data for studying the function and mechanism of important genes in the TLR4 signaling pathway in pigs, which can help deepen knowledge on the TLR4 signaling pathway.
We found that TLR4 and its downstream genes were expressed in all examined intestinal and immune tissues at the different developmental stages. Their expression levels in the various tissues differed, which may be due to the different functions of the tissues in response to pathogenic infections. TLR4 expression was higher in the spleen and lower in the other tissues, which is in agreement with the study of Liu et al. (2016)Liu, Y.; Gan, L. N.; Qin, W. Y.; Sun, S. Y.; Zhu, G. Q.; Wu, S. L. and Bao, W. B. 2016. Differential expression of Toll-like receptor 4 signaling pathway genes in Escherichia coli F18-resistant and -sensitive Meishan piglets. Polish Journal of Veterinary Sciences 19:303-308. https://doi.org/10.1515/pjvs-2016-0037
https://doi.org/10.1515/pjvs-2016-0037...
on 35-day-old Meishan pigs. The spleen is the largest immune organ in the body, accounting for 25% of the total lymphoid tissue. It is the center of cellular and humoral immunity. This may explain why the spleen had higher TLR4 expression than the other immune and intestinal tissues. The expression profiles of IFNA, IL1B and TNFA were found to be quite different in different tissues. Ojaniemi et al. (2003)Ojaniemi, M.; Glumoff, V.; Harju, K.; Liljeroos, M.; Vuori, K. and Hallman, M. 2003. Phosphatidylinositol 3-kinase is involved in Toll-like receptor 4-mediated cytokine expression in mouse macrophages. European Journal of Immunology 33:597-605. https://doi.org/10.1002/eji.200323376
https://doi.org/10.1002/eji.200323376...
found that, in mouse macrophages, LPS stimulation induces the formation of a complex between PI3K (phosphatidylinositol-4,5-bisphosphate 3-kinase catalytic subunit alpha) and MyD88 and mediates the release of IL1B and TNFA . Furthermore, IL1B and TNFA secretion is linked to AKT activation of nuclear factor kappa B (NF-κB). In addition, the expression of IFNA does not only depend on the MyD88-dependent pathway ( Honda and Taniguchi, 2006Honda, K. and Taniguchi, T. 2006. IRFs: master regulators of signalling by Toll-like receptors and cytosolic pattern-recognition receptors. Nature Reviews Immunology 6:644-658. https://doi.org/10.1038/nri1900
https://doi.org/10.1038/nri1900...
; Zhang and Lu, 2015Zhang, E. and Lu, M. 2015. Toll-like receptor (TLR)-mediated innate immune responses in the control of hepatitis B virus (HBV) infection. Medical Microbiology and Immunology 204:11-20. https://doi.org/10.1007/s00430-014-0370-1
https://doi.org/10.1007/s00430-014-0370-...
). Therefore, we speculate that the expression profiles of these downstream genes may differ because they are not regulated by the same TLR4 signal transduction pathway. The manner in which foreign pathogen invasion is addressed in the different developmental stages and organs of Meishan pigs may involve unique specifications regarding the expression of downstream genes in the TLR4 signaling pathway, which are also worthy of further study.
In the present study, we analyzed the developmental expression patterns of TLR4 and its downstream genes IFNA, IL1B , and TNFA in Meishan pigs. TLR4 expression levels were highest in the spleen at the different developmental stages, which may be related to its important role in natural immunity, as it is the largest immune organ in pigs. TLR4 is upstream of the TLR4 signaling pathway, and its high expression level may be beneficial for initiating the immune response. The expression levels of the downstream genes IFNA, IL1B , and TNFA in the intestinal and immune tissues varied greatly with developmental stage. IFNA plays an important role in fighting viral pathogens ( Capuron et al., 2002Capuron, L.; Gumnick, J. F.; Musselman, D. L.; Lawson, D. H.; Reemsnyder, A.; Nemeroff, C. B. and Miller, A. H. 2002. Neurobehavioral effects of interferon-alpha in cancer patients: phenomenology and paroxetine responsiveness of symptom dimensions. Neuropsychopharmacology 26:643-652. https://doi.org/10.1016/S0893-133X(01)00407-9
https://doi.org/10.1016/S0893-133X(01)00...
). As pro-inflammatory cytokines, TNFA and IL1B are the most important cytokines in the inflammatory reaction ( Michaud et al., 2010Michaud, F.; Coulombe, F.; Gaudreault, E.; Kriz, J. and Gosselin, J. 2010. Involvement of TLR2 in recognition of acute gammaherpesvirus-68 infection. PloS One 5:e13742. https://doi.org/10.1371/journal.pone.0013742
https://doi.org/10.1371/journal.pone.001...
; Fiorino et al., 2014Fiorino, G.; Danese, S.; Pariente, B. and Allez, M. 2014. Paradoxical immune-mediated inflammation in inflammatory bowel disease patients receiving anti-TNF-α agents. Autoimmunity Reviews 13:15-19. https://doi.org/10.1016/j.autrev.2013.06.005
https://doi.org/10.1016/j.autrev.2013.06...
). Activated inflammatory cells produce anti-inflammatory and pro-inflammatory cytokines, and the balance between the two helps control inflammation ( Opal and DePalo, 2000Opal, S. M. and DePalo, V. A. 2000. Anti-inflammatory cytokines. Chest 117:1162-1172. https://doi.org/10.1378/chest.117.4.1162
https://doi.org/10.1378/chest.117.4.1162...
; Gideon et al., 2015Gideon, H. P.; Phuah, J.; Myers, A. J.; Bryson, B. D.; Rodgers, M. A.; Coleman, M. T.; Maiello, P.; Rutledge, T.; Marino, S.; Fortune, S. M.; Kirschner, D. E.; Lin, P. L. and Flynn, J. L. 2015. Variability in tuberculosis granuloma T cell responses exists, but a balance of pro- and anti-inflammatory cytokines is associated with sterilization. Plos Pathogens 11:e1004603. https://doi.org/10.1371/journal.ppat.1004603
https://doi.org/10.1371/journal.ppat.100...
). The intestine is one of the main target organs susceptible to pathogen invasion, and the immune tissues play a major role in local anti-infection function; therefore, we presume that the changes in IFNA, IL1B , and TNFA expression in the intestinal and immune tissues may be associated with this. The IFNA, IL1B , and TNFA expression levels at 21, 134, and 158 days were significantly higher than that of the other days in most of the examined tissues. Meishan pigs begin weaning when they are 21 days old. During this period, weaning is greatly stressful for piglets, and the changes in feed and living environment may lead to pathogenic diarrhea caused by E. coli . As E. coli is a Gram-negative bacteria, its adhesion leads to increased LPS concentrations in the intestine ( Lallès et al., 2004Lallès, J. P.; Boudry, G.; Favier, C.; Le Floc'h, N.; Luron, I.; Montagne, L.; Oswald, I. P.; Pié, S.; Piel, C. and Sève, B. 2004. Gut function and dysfunction in young pigs: physiology. Animal Research 53:301-316. https://doi.org/10.1051/animres:2004018
https://doi.org/10.1051/animres:2004018...
; Fairbrother et al., 2005Fairbrother, J. M.; Nadeau, E. and Gyles, C. L. 2005. Escherichia coli in postweaning diarrhea in pigs: an update on bacterial types, pathogenesis, and prevention strategies. Animal Health Research Reviews 6:17-39. https://doi.org/10.1079/AHR2005105
https://doi.org/10.1079/AHR2005105...
). Lipopolysaccharides can specifically activate the TLR4 signaling pathway, ultimately leading to the release of downstream cytokines such as IFNA, IL1B , and TNFA ( Plociennikowska et al., 2015Plociennikowska, A.; Hromada-Judycka, A.; Borzecka, K. and Kwiatkowska, K. 2015. Co-operation of TLR4 and raft proteins in LPS-induced pro-inflammatory signaling. Cellular and Molecular Life Sciences 72:557-581. https://doi.org/10.1007/s00018-014-1762-5
https://doi.org/10.1007/s00018-014-1762-...
); thus, we speculated that the increased expression levels of these genes in 21-day-old piglets may be associated with weaning stress and LPS infection. Meishan pigs attain sexual and physical maturity at 134 and 158 days, respectively. The high expression of the downstream genes of the TLR4 signaling pathway in these two periods indicates that the regulatory mechanism of the inflammatory reaction in adult pigs may differ from that of piglets, i.e., it may be beneficial for enhancing immunity in adult pigs. The heatmap ( Figure 4 ) shows that the expression patterns of the TLR4 pathway genes in the intestinal and immune tissues could be clearly distinguished. After LPS and other foreign pathogenic products enter the body, the initial invasion site is the intestinal tract, and then LPS combines with TLR4 expressed by the intestinal cells to attract inflammatory cells, and damages the mucosa ( Liu et al., 2010Liu, L.; Li, Y. H.; Niu, Y. B.; Sun, Y.; Guo, Z. J.; Li, Q.; Li, C.; Feng, J.; Cao, S. S. and Mei, Q. B. 2010. An apple oligogalactan prevents against inflammation and carcinogenesis by targeting LPS/TLR4/NF-κB pathway in a mouse model of colitis-associated colon cancer. Carcinogenesis 31:1822-1832. https://doi.org/10.1093/carcin/bgq070
https://doi.org/10.1093/carcin/bgq070...
). In turn, the immune organs such as the spleen, lymph, and thymus initiate the immune response when foreign pathogenic products such as LPS enter the circulatory system, and clear the LPS ( Zhang et al., 1993Zhang, Y. H.; Takahashi, K.; Jiang, G. Z.; Kawai, M.; Fukada, M. and Yokochi, T. 1993. In vivo induction of apoptosis (programmed cell death) in mouse thymus by administration of lipopolysaccharide. Infection and Immunity 61:5044-5048. https://doi.org/10.1128/iai.61.12.5044-5048.1993
https://doi.org/10.1128/iai.61.12.5044-5...
; Norimatsu et al., 1995Norimatsu, M.; Ono, T.; Aoki, A.; Ohishi, K.; Takahashi, T.; Watanabe, G.; Taya, K.; Sasamoto, S. and Tamura, Y. 1995. Lipopolysaccharide-induced apoptosis in swine lymphocytes in vivo. Infection and Immunity 63:1122-1126. https://doi.org/10.1128/IAI.63.3.1122-1126.1995
https://doi.org/10.1128/IAI.63.3.1122-11...
). In addition, TLR4 signaling pathway stimulation can induce a potent inflammatory response. Accordingly, negative regulatory proteins such as NP105, ST2L, and SIGIRR are also expressed in the cell membrane to inhibit the TLR4 signaling pathway, which is also essential for protecting the body from excessive inflammatory damage ( Lu et al., 2008Lu, Y. C.; Yeh, W. C. and Ohashi, P. S. 2008. LPS/TLR4 signal transduction pathway. Cytokine 42:145-151. https://doi.org/10.1016/j.cyto.2008.01.006
https://doi.org/10.1016/j.cyto.2008.01.0...
). These factors may be responsible for the differences in the expression patterns of the TLR4 signaling pathway genes between the intestinal and immune tissues. The duodenum and jejunum had similar TLR4 signaling pathway gene expression patterns, but that for the ileum differed from the two. Kamba et al. (2013)Kamba, A.; Lee, I. A. and Mizoguchi, E. 2013. Potential association between TLR4 and chitinase 3-like 1 (CHI3L1/YKL-40) signaling on colonic epithelial cells in inflammatory bowel disease and colitis-associated cancer. Current Molecular Medicine 13:1110-1121. https://doi.org/10.2174/1566524011313070006
https://doi.org/10.2174/1566524011313070...
found that normal human intestinal epithelial cells only express small amounts of TLR4, while patients with ulcerative colitis and Crohn's disease overexpress TLR4 in the epithelium of the colon and the end of ileum. In addition, the authors also found that TLR4 is mainly distributed in the basal surface of the mucosal epithelium in ulcerative colitis patients, while it is concentrated at the top of the mucosal epithelium in Crohn's disease patients. Consequently, abnormal TLR4 expression may lead to local immune abnormalities in the intestinal mucosa, wherein its sensitivity to different pathogens differs between intestinal segments. This may also be why the TLR4 signaling pathway expression patterns of the ileum are distinct from that of the duodenum and jejunum.
The correlation analysis showed that TLR4 and TNFA had significant positive correlations in the immune tissue; it is worth noting that there was significant correlation between TLR4 and all of its downstream genes in the spleen, and there was some correlation in the other immune tissues, but no significant correlation in the intestinal tissues. This may be because intestinal immunity is mainly composed of gut-associated lymphoid tissue, immune cells, and immunologically active substances, such as secretory immunoglobulin A (SIgA), and forms the most important and complex part of the immune system ( Walker, 2002Walker, W. A. 2002. Development of the intestinal mucosal barrier. Journal of Pediatric Gastroenterology and Nutrition 34:S33-S39. https://doi.org/10.1097/00005176-200205001-00009
https://doi.org/10.1097/00005176-2002050...
). Of the internal organs, the intestinal tract comes into the closest contact with the exterior of the body. Nutrient absorption, development of a variety of biochemical reactions, symbiosis of various bacteria, and invasion of different antigens take place in the intestinal tract. The intestine also exerts autoimmune and synergistic effects with other immune tissues. In addition, other TLR can also combine with their respective ligands and activate a series of downstream factors, including NF-κB and mitogen-activated protein kinase (MAPK), to promote the production of inflammatory cytokines and other factors ( Serezani et al., 2011Serezani, C. H.; Lewis, C.; Jancar, S. and Peters-Golden, M. 2011. Leukotriene B4amplifies NF-κB activation in mouse macrophages by reducing SOCS1 inhibition of MyD88 expression. The Journal of Clinical Investigation 121:671-682. https://doi.org/10.1172/JCI43302
https://doi.org/10.1172/JCI43302...
). There was a near significant positive correlation among the downstream genes in the intestinal tissues, but no significant correlation among the immune tissues (except for IFNA and TNFA in the spleen). IFNA, IL1B , and TNFA are closely related to the inflammatory response caused by various intestinal diseases. Based on their diverse roles in immune regulation, cytokines can be divided into pro-inflammatory and anti-inflammatory cytokines. The imbalance between cytokines is one of the principal factors of mucosal damage ( Dinarello, 2000Dinarello, C. A. 2000. Proinflammatory cytokines. Chest 118:503-508. https://doi.org/10.1378/chest.118.2.503
https://doi.org/10.1378/chest.118.2.503...
; Opal and DePalo, 2000Opal, S. M. and DePalo, V. A. 2000. Anti-inflammatory cytokines. Chest 117:1162-1172. https://doi.org/10.1378/chest.117.4.1162
https://doi.org/10.1378/chest.117.4.1162...
). IFNA has a dual role of antiviral and immune regulation; IL1B and TNFA are important pro-inflammatory cytokines. Under normal physiological conditions, these cytokines maintain a balance to protect the integrity of the intestinal mucosa. This may be why these downstream genes were significantly positively correlated in the intestinal tissues of the Meishan pigs throughout their development.
Conclusions
In this study, we found that TLR4 signaling pathway, as an important immune regulatory pathway in pigs, showed an interesting pattern of change. We speculated that TLR4 pathway genes may have an anti-lipopolysaccharide invasion effect during weaning and that the high expression of the downstream genes is beneficial for improving immunity in adult pigs. We systematically demonstrated that the mRNA expression changes of TLR4 signaling pathway during the immune development of pigs provided experimental and theoretical basis for the research of TLR4 signaling pathway.
Acknowledgments
This work was supported by grants from the National Natural Science Funds (no. 31472066, no. 31572360), Earmarked Fund for Jiangsu Agricultural Industry Technology System, and Jiangsu College Students’ Innovation and Entrepreneurship Training Program (no. KYCX19_2112).
References
- Abe, T.; Kaname, Y.; Hamamoto, I.; Tsuda, Y.; Wen, X.; Taguwa, S.; Moriishi, K.; Takeuchi, O.; Kawai, T.; Kanto T.; Hayashi, N.; Akira, S. and Matsuura, Y. 2007. Hepatitis C virus nonstructural protein 5A modulates the toll-like receptor-MyD88-dependent signaling pathway in macrophage cell lines. Journal of Virology 81:8953-8966. https://doi.org/10.1128/JVI.00649-07
» https://doi.org/10.1128/JVI.00649-07 - Abreu, M. T.; Fukata, M. and Arditi, M. 2005. TLR signaling in the gut in health and disease. Journal of Immunology 174:4453-4460. https://doi.org/10.4049/jimmunol.174.8.4453
» https://doi.org/10.4049/jimmunol.174.8.4453 - Beutler, B.; Du, X. and Poltorak, A. 2001. Identification of Toll-like receptor 4 (Tlr4) as the sole conduit for LPS signal transduction: genetic and evolutionary studies. Journal of Endotoxin Research 7:277-280. https://doi.org/10.1177/09680519010070040901
» https://doi.org/10.1177/09680519010070040901 - Buchta, C. M. and Bishop, G. A. 2014. Toll-like receptors and B cells: functions and mechanisms. Immunologic Research 59:12-22. https://doi.org/10.1007/s12026-014-8523-2
» https://doi.org/10.1007/s12026-014-8523-2 - Capuron, L.; Gumnick, J. F.; Musselman, D. L.; Lawson, D. H.; Reemsnyder, A.; Nemeroff, C. B. and Miller, A. H. 2002. Neurobehavioral effects of interferon-alpha in cancer patients: phenomenology and paroxetine responsiveness of symptom dimensions. Neuropsychopharmacology 26:643-652. https://doi.org/10.1016/S0893-133X(01)00407-9
» https://doi.org/10.1016/S0893-133X(01)00407-9 - Deng, W.; Wang, Y.; Liu, Z.; Cheng, H. and Xue, Y. 2014. HemI: a toolkit for illustrating heatmaps. PloS One 9:e111988. https://doi.org/10.1371/journal.pone.0111988
» https://doi.org/10.1371/journal.pone.0111988 - Dinarello, C. A. 2000. Proinflammatory cytokines. Chest 118:503-508. https://doi.org/10.1378/chest.118.2.503
» https://doi.org/10.1378/chest.118.2.503 - Fairbrother, J. M.; Nadeau, E. and Gyles, C. L. 2005. Escherichia coli in postweaning diarrhea in pigs: an update on bacterial types, pathogenesis, and prevention strategies. Animal Health Research Reviews 6:17-39. https://doi.org/10.1079/AHR2005105
» https://doi.org/10.1079/AHR2005105 - Fiorino, G.; Danese, S.; Pariente, B. and Allez, M. 2014. Paradoxical immune-mediated inflammation in inflammatory bowel disease patients receiving anti-TNF-α agents. Autoimmunity Reviews 13:15-19. https://doi.org/10.1016/j.autrev.2013.06.005
» https://doi.org/10.1016/j.autrev.2013.06.005 - Gideon, H. P.; Phuah, J.; Myers, A. J.; Bryson, B. D.; Rodgers, M. A.; Coleman, M. T.; Maiello, P.; Rutledge, T.; Marino, S.; Fortune, S. M.; Kirschner, D. E.; Lin, P. L. and Flynn, J. L. 2015. Variability in tuberculosis granuloma T cell responses exists, but a balance of pro- and anti-inflammatory cytokines is associated with sterilization. Plos Pathogens 11:e1004603. https://doi.org/10.1371/journal.ppat.1004603
» https://doi.org/10.1371/journal.ppat.1004603 - Gioannini, T. L.; Teghanemt, A.; Zhang, D. S.; Esparza, G.; Yu, L. P. and Weiss, J. 2014. Purified monomeric ligand. MD-2 complexes reveal molecular and structural requirements for activation and antagonism of TLR4 by Gram-negative bacterial endotoxins. Immunologic Research 59:3-11.
- Hamerman, J. A.; Pottle, J.; Ni, M.; He, Y.; Zhang, Z. Y. and Buckner, J. H. 2016. Negative regulation of TLR signaling in myeloid cells--implications for autoimmune diseases. Immunological Reviews 269:212-227. https://doi.org/10.1111/imr.12381
» https://doi.org/10.1111/imr.12381 - Honda, K. and Taniguchi, T. 2006. IRFs: master regulators of signalling by Toll-like receptors and cytosolic pattern-recognition receptors. Nature Reviews Immunology 6:644-658. https://doi.org/10.1038/nri1900
» https://doi.org/10.1038/nri1900 - Kamba, A.; Lee, I. A. and Mizoguchi, E. 2013. Potential association between TLR4 and chitinase 3-like 1 (CHI3L1/YKL-40) signaling on colonic epithelial cells in inflammatory bowel disease and colitis-associated cancer. Current Molecular Medicine 13:1110-1121. https://doi.org/10.2174/1566524011313070006
» https://doi.org/10.2174/1566524011313070006 - Kurt-Jones, E. A.; Popova, L.; Kwinn, L.; Haynes, L. M.; Jones, L. P.; Tripp, R. A.; Walsh, E. E.; Freeman, M. W.; Golenbock, D. T.; Anderson, L. J. and Finberg, R. W. 2000. Pattern recognition receptors TLR4 and CD14 mediate response to respiratory syncytial virus. Nature Immunology 1:398-401. https://doi.org/10.1038/80833
» https://doi.org/10.1038/80833 - Lallès, J. P.; Boudry, G.; Favier, C.; Le Floc'h, N.; Luron, I.; Montagne, L.; Oswald, I. P.; Pié, S.; Piel, C. and Sève, B. 2004. Gut function and dysfunction in young pigs: physiology. Animal Research 53:301-316. https://doi.org/10.1051/animres:2004018
» https://doi.org/10.1051/animres:2004018 - Lee, M. S. and Min, Y. J. 2007. Signaling pathways downstream of pattern-recognition receptors and their cross talk. Annual Review of Biochemistry 76:447-480. https://doi.org/10.1146/annurev.biochem.76.060605.122847
» https://doi.org/10.1146/annurev.biochem.76.060605.122847 - Li, J.; Csakai, A.; Jin, J. L.; Zhang, F. C. and Yin, H. 2016. Therapeutic developments targeting toll-like receptor-4-mediated neuroinflammation. ChemMedChem 11:154-165. https://doi.org/10.1002/cmdc.201500188
» https://doi.org/10.1002/cmdc.201500188 - Liu, L.; Li, Y. H.; Niu, Y. B.; Sun, Y.; Guo, Z. J.; Li, Q.; Li, C.; Feng, J.; Cao, S. S. and Mei, Q. B. 2010. An apple oligogalactan prevents against inflammation and carcinogenesis by targeting LPS/TLR4/NF-κB pathway in a mouse model of colitis-associated colon cancer. Carcinogenesis 31:1822-1832. https://doi.org/10.1093/carcin/bgq070
» https://doi.org/10.1093/carcin/bgq070 - Liu, Y.; Gan, L. N.; Qin, W. Y.; Sun, S. Y.; Zhu, G. Q.; Wu, S. L. and Bao, W. B. 2016. Differential expression of Toll-like receptor 4 signaling pathway genes in Escherichia coli F18-resistant and -sensitive Meishan piglets. Polish Journal of Veterinary Sciences 19:303-308. https://doi.org/10.1515/pjvs-2016-0037
» https://doi.org/10.1515/pjvs-2016-0037 - Livak, K. J. and Schmittgen, T. D. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCTmethod. Methods 25:402-408. https://doi.org/10.1006/meth.2001.1262
» https://doi.org/10.1006/meth.2001.1262 - Lu, Y. C.; Yeh, W. C. and Ohashi, P. S. 2008. LPS/TLR4 signal transduction pathway. Cytokine 42:145-151. https://doi.org/10.1016/j.cyto.2008.01.006
» https://doi.org/10.1016/j.cyto.2008.01.006 - Michaud, F.; Coulombe, F.; Gaudreault, E.; Kriz, J. and Gosselin, J. 2010. Involvement of TLR2 in recognition of acute gammaherpesvirus-68 infection. PloS One 5:e13742. https://doi.org/10.1371/journal.pone.0013742
» https://doi.org/10.1371/journal.pone.0013742 - Norimatsu, M.; Ono, T.; Aoki, A.; Ohishi, K.; Takahashi, T.; Watanabe, G.; Taya, K.; Sasamoto, S. and Tamura, Y. 1995. Lipopolysaccharide-induced apoptosis in swine lymphocytes in vivo. Infection and Immunity 63:1122-1126. https://doi.org/10.1128/IAI.63.3.1122-1126.1995
» https://doi.org/10.1128/IAI.63.3.1122-1126.1995 - Ojaniemi, M.; Glumoff, V.; Harju, K.; Liljeroos, M.; Vuori, K. and Hallman, M. 2003. Phosphatidylinositol 3-kinase is involved in Toll-like receptor 4-mediated cytokine expression in mouse macrophages. European Journal of Immunology 33:597-605. https://doi.org/10.1002/eji.200323376
» https://doi.org/10.1002/eji.200323376 - Opal, S. M. and DePalo, V. A. 2000. Anti-inflammatory cytokines. Chest 117:1162-1172. https://doi.org/10.1378/chest.117.4.1162
» https://doi.org/10.1378/chest.117.4.1162 - Park, B. S. and Lee, J. O. 2013. Recognition of lipopolysaccharide pattern by TLR4 complexes. Experimental and Molecular Medicine 45:e66. https://doi.org/10.1038/emm.2013.97
» https://doi.org/10.1038/emm.2013.97 - Plociennikowska, A.; Hromada-Judycka, A.; Borzecka, K. and Kwiatkowska, K. 2015. Co-operation of TLR4 and raft proteins in LPS-induced pro-inflammatory signaling. Cellular and Molecular Life Sciences 72:557-581. https://doi.org/10.1007/s00018-014-1762-5
» https://doi.org/10.1007/s00018-014-1762-5 - Rassa, J. C.; Meyers, J. L.; Zhang, Y.; Kudaravalli, R. and Ross, S. R. 2002. Murine retroviruses activate B cells via interaction with toll-like receptor 4. Proceedings of the National Academy of Sciences of the United States of America 99:2281-2286. https://doi.org/10.1073/pnas.042355399
» https://doi.org/10.1073/pnas.042355399 - Serezani, C. H.; Lewis, C.; Jancar, S. and Peters-Golden, M. 2011. Leukotriene B4amplifies NF-κB activation in mouse macrophages by reducing SOCS1 inhibition of MyD88 expression. The Journal of Clinical Investigation 121:671-682. https://doi.org/10.1172/JCI43302
» https://doi.org/10.1172/JCI43302 - Walker, W. A. 2002. Development of the intestinal mucosal barrier. Journal of Pediatric Gastroenterology and Nutrition 34:S33-S39. https://doi.org/10.1097/00005176-200205001-00009
» https://doi.org/10.1097/00005176-200205001-00009 - Wu, Z. C.; Liu, Y.; Dong, W. H.; Zhu, G. Q.; Wu, S. L. and Bao, W. B. 2016. CD14 in the TLRs signaling pathway is associated with the resistance to E. coli F18 in Chinese domestic weaned piglets. Scientific Reports 6:24611. https://doi.org/10.1038/srep24611
» https://doi.org/10.1038/srep24611 - Zhang, E. and Lu, M. 2015. Toll-like receptor (TLR)-mediated innate immune responses in the control of hepatitis B virus (HBV) infection. Medical Microbiology and Immunology 204:11-20. https://doi.org/10.1007/s00430-014-0370-1
» https://doi.org/10.1007/s00430-014-0370-1 - Zhang, Y. H.; Takahashi, K.; Jiang, G. Z.; Kawai, M.; Fukada, M. and Yokochi, T. 1993. In vivo induction of apoptosis (programmed cell death) in mouse thymus by administration of lipopolysaccharide. Infection and Immunity 61:5044-5048. https://doi.org/10.1128/iai.61.12.5044-5048.1993
» https://doi.org/10.1128/iai.61.12.5044-5048.1993
Publication Dates
-
Publication in this collection
19 June 2020 -
Date of issue
2020
History
-
Received
15 Dec 2018 -
Accepted
16 Dec 2019