Polymorphism in the TLR Adaptors of the Toll Signalling Pathway for Use in Livestock Breeding for Health Traits
Abstract
1. Introduction
2. Toll Pathway in the Frame of Innate Immunity
2.1. Toll-like Receptors
2.2. The Mechanism of Toll-like Receptor Action
2.3. Downstream Signal Transfer
3. Regulation of TLRs by Co-Receptors and the Role of MyD88
4. Antimicrobial Action Ascribed to the Toll Signalling Pathway and Other Phenotypic Effects
4.1. Known Examples from Model Species
4.2. Examples from Human Medicine
4.3. Known Examples from Farm Species
5. Natural and Generated Diversity of TLRs and the Documented Consequences
5.1. General Toll Signalling Pathway Polymorphism
5.2. Known Mutations in the TLRs and Their Consequences in Livestock Species
6. Natural Variability of TLR Adaptors Including MYD88
6.1. Known Mutations in the TLR Adaptors and Their Consequences in Model Species
6.2. Known Mutations in TLR Adaptors in Human Medicine
6.3. Variability of TLR Adaptors Including MYD88 Across the Domestic Species
6.4. Variability Affecting MyD88 Interactions with Other Members of the Toll Pathway
6.5. Importance of the Haplotype Structure
7. Prospect for Using Toll Pathway Variability for Increasing the Efficiency of Breeding in Livestock Species
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ANOVA | one-factor analysis of variance |
| APEX1 | apurinic/apyrimidinic endonuclease 1 |
| CDS | coding DNA Sequence |
| CpG | 5′-C-phosphate-G-3′ |
| DC | dendritic cell |
| DNA | deoxyribonucleic acid |
| EBI | European Bioinformatics Institute, Cambridge, VB |
| EDTA | ethylenediaminetetraacetic acid |
| gDNA | genomic deoxyribonucleic acid |
| G−, G+ | Gram-negative and -positive bacteria, respectively |
| IFN-α | type I interferon-α |
| IKK | inhibitor of κB Kinase |
| IKK-γ | inhibitor of NF-κB kinase regulatory subunit γ |
| IL-1R | interleukine-1 receptor |
| IRAKs | interleukin-1 receptor (IL-1R) associated kinases |
| IRF-7 | interferon regulatory factor 7 |
| ITAM | immunoreceptor tyrosine-based activation motif |
| LPS | lipopolysaccharide |
| LRR | leucine-rich repeats |
| Mal/TIRAP | TIR-domain-containing adaptor/MyD88 adaptor-like |
| MD-2 | myeloid differentiation factor 2 |
| MyD88 | myeloid differentiation primary response gene 88 |
| NK | natural killer cells |
| NKT | natural killer T cells |
| NCBI | National Center for Biotechnology Information |
| NF-κB | nuclear factor κB |
| NGS | next-generation sequencing |
| NOX2 | NADPH oxidase 2 |
| PAMPs | pathogen-associated molecular patterns |
| PCR | polymerase chain reaction |
| PLCγ2 | phospolipase C gamma 2 |
| PRR | pattern recognition receptors |
| RNA | ribonucleic acid |
| SNP | single nucleotide polymorphism |
| SRLVs | small ruminant lentiviruses |
| SYK | spleen tyrosine kinase |
| TAB | TAK-1-binding proteins |
| TAK1 | TGF (transforming growth factor)-β-activated kinase 1 |
| TBL1XR1 | transducin beta-like 1 receptor 1 |
| TIR | Toll/IL-1R/R gene region |
| TLR | Toll-like receptors |
| TMEM154 | transmembrane protein 154 |
| TNF | tumour necrosis factor |
| TRAF3 | TNF receptor associated factor 3 |
| TRAF6 | TNF receptor associated factor 6 |
References
- Pilzecker, B.; Jacobs, H. Mutating for Good: DNA Damage Responses During Somatic Hypermutation. Front. Immunol. 2019, 10, 438. [Google Scholar] [CrossRef] [Scilit]
- Netea, M.G.; Schlitzer, A.; Placek, K.; Joosten, L.A.B.; Schultze, J.L. Innate and Adaptive Immune Memory: An Evolutionary Continuum in the Host’s Response to Pathogens. Cell Host Microbe 2019, 25, 13–26. [Google Scholar] [CrossRef] [Scilit]
- Jungi, T.W.; Farhat, K.; Burgener, I.A.; Werling, D. Toll-like Receptors in Domestic Animals. Cell Tissue Res. 2011, 343, 107–120. [Google Scholar] [CrossRef] [Scilit]
- Novák, K. Functional Polymorphisms in Toll-like Receptor Genes for Innate Immunity in Farm Animals. Vet. Immunol. Immunopathol. 2014, 157, 1–11. [Google Scholar] [CrossRef] [Scilit]
- Maljković, M.M.; Vlahek, I.; Piplica, A.; Kabalin, A.E.; Sušić, V.; Stevanović, V. Prospects of Toll-like Receptors in Dairy Cattle Breeding. Anim. Genet. 2023, 54, 425–434. [Google Scholar] [CrossRef] [Scilit]
- Janeway, C. A Primitive Immune System. Nature 1989, 341, 108. [Google Scholar] [CrossRef] [Scilit]
- Chataigner, L.M.P.; Leloup, N.; Janssen, B.J.C. Structural Perspectives on Extracellular Recognition and Conformational. Changes of Several Type-I Transmembrane Receptors. Front. Mol. Biosci. 2020, 7, 129. [Google Scholar] [CrossRef] [Scilit]
- Sheedy, F.J.; Grebe, A.; Rayner, K.J.; Kalantari, P.; Ramkhelawon, B.; Carpenter, S.; Becker, C.; Ediriweera, H.; Mullick, A.; Golenbock, D.; et al. CD36 Coordinates NLRP3 Inflammasome Activation by Facilitating Intracellular Nucleation of Soluble Ligands into Particulate Ligands in Sterile Inflammation. Nat. Immunol. 2013, 14, 812–820. [Google Scholar] [CrossRef] [Scilit]
- Takeuchi, O.; Akira, S. Pattern Recognition Receptors and Inflammation. Cell 2010, 140, 805–820. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kaisho, T.; Akira, S. Toll-like Receptor Function and Signalling. J. Allergy Clin. Immunol. 2006, 117, 979–987. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Stein, D.; Roth, S.; Vogelsang, E.; Nüsslein-Volhard, C. The Polarity of the Dorsoventral Axis in the Drosophila Embryo Is Defined by an Extracellular Signal. Cell 1991, 65, 725–735. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lemaitre, B.; Nicolas, E.; Michaut, L.; Reichhart, J.M.; Hoffman, J.A. The Dorsoventral Regulatory Gene Cassette Spatzle/Toll/Cactus Controls the Potent Antifungal Response in Drosophila Adults. Cell 1996, 86, 973–983. [Google Scholar] [CrossRef] [Scilit]
- Iwasaki, A.; Medzhitov, R. Regulation of Adaptive Immunity by the Innate Immune System. Science 2010, 327, 291–295. [Google Scholar] [CrossRef] [Scilit]
- Wiens, M.; Korzhev, M.; Perovic-Ottstadt, S.; Luthringer, B.; Brandt, D.; Klein, S.; Mueller, W.E.G. Toll-like Receptors Are Part of the Innate Immune Defense System of Sponges (Demospongiae: Porifera). Mol. Biol. Evol. 2007, 24, 792–804. [Google Scholar] [CrossRef] [Scilit]
- Zipfel, C.; Robatzek, S.; Navarro, L.; Oakeley, E.J.; Jones, J.D.G.; Felix, G.; Boller, T. Bacterial Disease Resistance in Arabidopsis through Flagellin Perception. Nature 2004, 428, 764–767. [Google Scholar] [CrossRef] [Scilit]
- Kawai, T.; Akira, S. The Role of Pattern-Recognition Receptors in Innate Immunity: Update on Toll-like Receptors. Nat. Immunol. 2010, 11, 373–384. [Google Scholar] [CrossRef] [Scilit]
- Andrade, W.A.; Souza, M.D.; Ramos-Martinez, E.; Nagpal, K.; Dutra, M.S.; Melo, M.B.; Bartholomeu, D.C.; Ghosh, S.; Golenbock, D.T.; Gazzinelli, R.T. Combined Action of Nucleic Acid-Sensing Toll-Like Receptors and TLR11/TLR12 Heterodimers Imparts Resistance To Toxoplasma Gondii in Mice. Cell Host Microbe 2013, 13, 42–53. [Google Scholar] [CrossRef] [Scilit]
- Akira, S. TLR Signaling. In From Innate Immunity to Immunological Memory; Pulendran, B., Ahmed, R., Eds.; Book Series: Current Topics in Microbiology and Immunology; Springer: New York, NY, USA, 2006; Volume 311, pp. 1–16. [Google Scholar]
- Nishimura, M.; Naito, S. Tissue-Specific mRNA Expression Profiles of Human Toll-like Receptors and Related Genes. Biol. Pharm. Bull. 2005, 28, 886–892. [Google Scholar] [CrossRef] [Scilit]
- Lakshmi, R.; Jayavardhanan, K.K.; Aravindakshan, T.V. Characterization of Promoter Sequence of Toll-like Receptor Genes in Vechur Cattle. Vet. World 2019, 9, 626–632. [Google Scholar] [CrossRef] [Scilit]
- Kang, J.Y.; Nan, X.; Jin, M.S.; Youn, S.J.; Ryu, Y.H.; Mah, S.; Han, S.H.; Lee, H.; Paik, S.G.; Lee, J.O. Recognition of Lipopeptide Patterns By Toll-like Receptor 2-Toll-like Receptor 6 Heterodimer. Immunity 2009, 31, 873–884. [Google Scholar] [CrossRef] [Scilit]
- Schenk, M.; Belisle, J.T.; Modlin, R.L. TLR2 Looks at Lipoproteins. Immunity 2009, 31, 847–849. [Google Scholar] [CrossRef] [Scilit]
- Kawasaki, T.; Kawai, T. Toll-like Receptor Signaling Pathways. Front. Immunol. 2014, 5, 461. [Google Scholar] [CrossRef] [Scilit]
- Solt, L.A.; May, M.J. The IκB Kinase Complex: Master Regulator of NF-κB Signaling. Immunol. Res. 2008, 42, 3–18. [Google Scholar] [CrossRef] [Scilit]
- Chen, Z.J. Ubiquitination in Signaling to and Activation of IKK. Immunol. Rev. 2012, 246, 95–106. [Google Scholar] [CrossRef] [Scilit]
- Misch, E.A.; Hawn, T.R. Toll-like Receptor Polymorphisms and Susceptibility to Human Disease. Clin. Sci. 2008, 114, 347–360. [Google Scholar] [CrossRef] [Scilit]
- Hayden, M.S.; Ghosh, S. Shared Principles in NF-kappaB Signaling. Cell 2008, 132, 344–362. [Google Scholar] [CrossRef] [Scilit]
- Medzhitov, R.; Preston-Hurlburt, P.; Kopp, E.; Stadlen, A.; Chen, C.; Ghosh, S.; Janeway, C.A., Jr. MyD88 Is an Adaptor Protein in the hToll/IL-1 Receptor Family Signaling Pathways. Mol. Cell 1998, 2, 253–258. [Google Scholar] [CrossRef] [Scilit]
- Werling, D.; Jungi, T.W. Toll-like Receptors Linking Innate and Adaptive Immune Response. Vet. Immunol. Immunopathol. 2023, 91, 1–12. [Google Scholar] [CrossRef] [Scilit]
- Kelley, L.A.; Mezulis, S.; Yates, C.M.; Wass, M.N.; Sternberg, M.J.E. The Phyre2 Web Portal for Protein Modeling, Prediction and Analysis. Nat. Protoc. 2015, 10, 845–858. [Google Scholar] [CrossRef] [Scilit]
- Wesche, H.; Henzel, W.J.; Shillinglaw, W.; Li, S.; Cao, Z. MyD88: An adapter that recruits IRAK to the IL-1 receptor complex. Immunity 1997, 7, 837–847. [Google Scholar] [CrossRef] [Scilit]
- Lin, S.C.; Lo, Y.C.; Wu, H. Helical Assembly in the Myd88-IRAK4-IRAK2 Complex in TLR/IL-1R Signalling. Nature 2010, 465, 885–890. [Google Scholar] [CrossRef] [Scilit]
- Kollewe, C.; Mackensen, A.C.; Neumann, D.; Knop, J.; Cao, P.; Li, S.; Wesche, H.; Martin, M.U. Sequential Autophosphorylation Steps in the Interleukin-1 Receptor-Associated Kinase-1 Regulate Its Availability as an Adapter in Interleukin-1signaling. J. Biol. Chem. 2004, 279, 5227–5236. [Google Scholar] [CrossRef] [Scilit]
- Zanoni, I.; Ostuni, R.; Marek, L.R.; Barresi, S.; Barbalat, R.; Barton, G.M.; Granucci, F.; Kagan, J.C. CD14 Controls the LPS-induced Endocytosis of Toll-like Receptor 4. Cell 2011, 147, 868–880. [Google Scholar] [CrossRef] [Scilit]
- Baumann, C.L.; Aspalter, I.M.; Sharif, O.; Pichlmair, A.; Bluml, S.; Grebien, F.; Bruckner, M.; Pasierbek, P.; Aumayr, K.; Planyavsky, M.; et al. CD14 Is a Coreceptor of Toll-like Receptors 7 and 9. J. Exp. Med. 2010, 207, 2689–2701. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bernard, N.J.; O’Neill, L.A. Mal, more than a bridge to MyD88. IUBMB Life 2013, 65, 777–786. [Google Scholar] [CrossRef] [Scilit]
- Belhaouane, I.; Hoffmann, E.; Chamaillard, M.; Brodin, P.; Machelart, A. Paradoxical Roles of the MAL/Tirap Adaptor in Pathologies. Front. Immunol. 2020, 11, 569127. [Google Scholar] [CrossRef] [Scilit]
- Sweeney, T.E.; Suliman, H.B.; Hollingsworth, J.W.; Welty-Wolf, K.E.; Piantadosi, C.A. A Toll-Like Receptor 2 Pathway Regulates the Ppargc1a/b Metabolic Co-Activators in Mice with Staphylococcal aureus Sepsis. PLoS ONE 2011, 6, e25249. [Google Scholar] [CrossRef] [Scilit]
- Popli, S.; Chakravarty, S.; Fan, S.; Glanz, A.; Aras, S.; Nagy, L.E.; Sen, G.C.; Chakravarti, R.; Chattopadhyay, S. IRF3 Inhibits Nuclear Translocation of NF-κB to Prevent Viral Inflammation. Proc. Natl. Acad. Sci. USA 2022, 119, e2121385119. [Google Scholar] [CrossRef] [Scilit]
- Bhaladhare, A.; Sharma, D.; Kumar, A.; Sonwane, A. Single Nucleotide Polymorphisms in Toll-like Receptor Genes and Case-Control Association Studies with Bovine Tuberculosis. Vet. World 2016, 9, 458–464. [Google Scholar] [CrossRef] [Scilit]
- Scanga, C.; Bafica, A.; Feng, C.; Cheever, A.; Hieny, S.; Sher, A. Myd88-Deficient Mice Display a Profound Loss in Resistance to Mycobacterium tuberculosis Associated with Partially Impaired Th1 Cytokine and Nitric Oxide Synthase 2 Expression. Infect. Immun. 2004, 72, 2400–2404. [Google Scholar] [CrossRef] [Scilit]
- Garnier, T.; Eiglmeier, K.; Camus, J.; Medina, N.; Mansoor, H.; Pryor, M.; Duthoy, S.; Grondin, S.; Lacroix, C.; Mousempe, C.; et al. The Complete Sequence of Mycobacterium bovis. Proc. Natl. Acad. Sci. USA 2003, 100, 7877–7882. [Google Scholar] [CrossRef] [Scilit]
- Kong, L.J.; Cao, Y.H.; He, Y.A.; Zhang, Y.H. Role and Molecular Mechanism of NOD2 in Chronic Non-Communicable Diseases. J. Mol. Med. 2024, 102, 787–799. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Doherty, T.; Arditi, M. TB, or not TB: That Is the Question—Does TLR Signaling Hold the Answer? J. Clin. Investig. 2004, 114, 1699–1703. [Google Scholar] [CrossRef]
- Sharma, B.S.; Leyva, I.; Schenkel, F.; Karrow, N.A. Association of Toll-like Receptor 4. J. Dairy Sci. 2006, 89, 3626–3635. [Google Scholar] [CrossRef] [Scilit]
- Zhang, L.P.; Gan, Q.F.; Ma, T.H.; Li, H.D.; Wang, X.P.; Li, J.Y.; Gao, X.; Chen, J.B.; Ren, H.Y.; Xu, S.Z. Toll-like receptor 2 gene polymorphism and its relationship with SCS in dairy cattle. Anim. Biotech. 2009, 20, 87–95. [Google Scholar] [CrossRef] [Scilit]
- Bilgen, N.; Kul, B.C.; Offord, V.; Werling, D.; Ertugrul, O. Determination of Genetic Variations of Toll-like Receptor (TLR) 2, 4, and 6 with Next-Generation Sequencing in Native Cattle Breeds of Anatolia and Holstein Friesian. Diversity 2016, 8, 23. [Google Scholar] [CrossRef] [Scilit]
- Mucha, R.; Bhide, M.R.; Chakurkar, E.B.; Novak, M.; Mikula, I. Toll-like Receptors TLR1, TLR2 and TLR4 Gene Mutations and Natural Resistance to Mycobacterium avium ssp. paratuberculosis Infection in Cattle. Vet. Immunol. Immunopathol. 2009, 128, 381–388. [Google Scholar] [CrossRef] [Scilit]
- Carvalho, A.; Pasqualotto, A.C.; Pitzurra, L.; Romani, L.; Denning, D.W.; Rodrigues, F. Polymorphisms in Toll-Like Receptor Genes and Susceptibility to Pulmonary Aspergillosis. J. Inf. Dis. 2008, 197, 618–621. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Conejeros, I.; Gibson, A.J.; Werling, D.; Muñoz-Caro, T.; Hermosilla, C.; Taubert, A.; Burgos, R.A. Effect of the Synthetic Toll-like Receptor Ligands LPS, Am3csk4, HKLM and FSL-1 in the Function of Bovine Polymorphonuclear Neutrophils. Dev. Comp. Immunol. 2015, 52, 215–225. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Morris, K.M.; Hindle, M.M.; Boitard, S.; Burt, D.W.; Danner, A.F.; Eory, L.; Forrest, H.L.; Gourichon, D.; Gros, J.; Hillier, L.W.; et al. The Quail Genome: Insights into Social Behaviour, Seasonal Biology and Infectious Disease Response. BMC Biol. 2020, 18, 14. [Google Scholar] [CrossRef] [Scilit]
- Kannaki, T.R.; Shanmugam, M.; Verma, P.C. Toll-like Receptors and Their Role in Animal Reproduction. Anim. Reprod. Sci. 2011, 125, 1–12. [Google Scholar] [CrossRef] [Scilit]
- Wahid, H.H.; Dorian, C.L.; Chin, P.Y.; Hutchinson, M.R.; Rice, K.C.; Olson, D.M.; Moldenhauer, L.M.; Robertson, S.A. Toll-like Receptor 4 Is an Essential Upstream Regulator of On-time Parturition and Perinatal Viability in Mice. Endocrinology 2015, 156, 3828–3841. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Balding, D.J. A Tutorial on Statistical Methods for Population Association Studies. Nat. Rev. Genet. 2006, 7, 781–791. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kumar, S.; Kumar, S.; Singh, R.V.; Chauhan, A.; Kumar, A.; Sulabh, S.; Bharati, J.; Singh, S.V. Genetic Association of Polymorphisms in Bovine TLR2 and TLR4 Genes with Mycobacterium avium Subspecies paratuberculosis Infection in Indian Cattle Population. Vet. Res. Commun. 2019, 43, 105–114. [Google Scholar] [CrossRef] [Scilit]
- Detilleus, J.C. Genetic Factors Affecting Susceptibility to Udder Pathogens. Vet. Microbiol. 2009, 134, 157–164. [Google Scholar] [CrossRef] [Scilit]
- Boichard, D.; Ducrocq, V.; Fritz, S. Sustainable Dairy Cattle Selection in the Genomic Era. J. Anim. Breed. Genet. 2015, 132, 135–143. [Google Scholar] [CrossRef] [Scilit]
- Jann, O.C.; Werling, D.; Chang, J.S.; Haig, D.; Glass, E.J. Molecular Evolution of Bovine Toll-like Receptor 2 Suggests Substitutions of Functional Relevance. BMC Evol. Biol. 2008, 8, 288. [Google Scholar] [CrossRef] [Scilit]
- Seabury, C.M.; Seabury, P.M.; Decker, J.E.; Schnabel, R.D.; Taylor, J.F.; Womack, J.E. Diversity and Evolution of 11 Innate Immune Genes in Bos taurus taurus and Bos taurus indicus Cattle. Proc. Natl. Acad. Sci. USA 2010, 107, 151–156. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, Y.Y.; Yang, Y.; Li, C.Q.; Li, R.; Xiao, H.; Chen, S.Y. Genetic Diversity of TLR3 and TLR8 Genes among Five Chinese Native Cattle Breeds from Southwest China. Livest. Sci. 2020, 232, 103895. [Google Scholar] [CrossRef] [Scilit]
- Koets, A.; Santema, W.; Mertens, H.; Oostenrijk, D.; Keestra, M.; Overdijk, M.; Labouriau, R.; Franken, P.; Frijters, A.; Nielen, M.; et al. Susceptibility to Paratuberculosis Infection in Cattle Is Associated with Single Nucleotide Polymorphisms in Toll-like Receptor 2 Which Modulate Immune Responses Against Mycobacterium avium Subspecies paratuberculosis. Prev. Vet. Med. 2010, 93, 305–315. [Google Scholar] [CrossRef] [Scilit]
- Ruiz-Larrañaga, O.; Manzano, C.; Iriondo, M.; Garrido, J.M.; Molina, E.; Vazquez, P.; Juste, R.A.; Estonba, A. Genetic Variation of Toll-like Receptor Genes and Infection by Mycobacterium avium ssp. paratuberculosis in Holstein-Friesian Cattle. J. Dairy Sci. 2011, 94, 3635–3641. [Google Scholar] [CrossRef] [Scilit]
- Fisher, C.A.; Bhattarai, E.K.; Osterstock, J.B.; Dowd, S.E.; Seabury, P.M.; Vikram, M.; Whitlock, R.H.; Schukken, Y.H.; Schnabel, R.D.; Taylor, J.F.; et al. Evolution of the Bovine TLR Gene Family and Member Associations with Mycobacterium avium Subspecies paratuberculosis Infection. PLoS ONE 2011, 6, e27744, Erratum in PLoS ONE. 2012, 7. https://doi.org/10.1371/annotation/429afd9a-2892-47ac-a403-008496b2e8db. Erratum in PLoS ONE. 2012, 7, https://doi.org/10.1371/annotation/63a06de9-db62-4651-87f3-a5fd431dcd80. Erratum in PLoS ONE. 2012, 7, https://doi.org/10.1371/annotation/a84f0490-55cd-4b42-8b2e-72661fabfc22.. [Google Scholar] [CrossRef] [Scilit]
- Beecher, C.; Daly, M.; Childs, S.; Berry, D.P.; Magee, D.A.; Mccarthy, T.V.; Giblin, L. Polymorphisms in Bovine Immune Genes and Their Associations with Somatic Cell Count and Milk Production in Dairy Cattle. BMC Genet. 2010, 11, 99. [Google Scholar] [CrossRef] [Scilit]
- Opsal, M.A.; Lien, S.; Brenna-Hansen, S.; Olsen, H.G.; Våge, D.I. Association Analysis of the Constructed Linkage Maps Covering TLR2 and TLR4 with Clinical Mastitis in Norwegian Red Cattle. J. Anim. Breed. Genet. 2008, 125, 110–118. [Google Scholar] [CrossRef] [Scilit]
- Vázquez, P.; Ruiz-Larrañaga, O.; Garrido, J.M.; Iriondo, M.; Manzano, C.; Agirre, M.; Estonba, A.; Juste, R.A. Genetic Association Analysis of Paratuberculosis Forms in Holstein-Friesian Cattle. Vet. Med. Int. 2014, 2014, 321327. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Metcalfe, H.J.; La Ragione, R.M.; Smith, D.G.; Werling, D. Functional Characterisation of Bovine TLR5 Indicates Species-Specific Recognition of Flagellin. Vet. Immunol. Immunopathol. 2014, 157, 197–205. [Google Scholar] [CrossRef] [Scilit]
- Novák, K.; Bjelka, M.; Samake, K.; Valcíková, T. Potential of TLR-Gene Diversity in Czech Indigenous Cattle for Resistance Breeding as Revealed by Hybrid Sequencing. Arch. Anim. Breed. 2019, 62, 477–490. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Verma, S.; Sowdhamini, R. A Genome-Wide Search of Toll/Interleukin-1 Receptor (TIR) Domain-Containing Adapter Molecule (TICAM) and Their Evolutionary Divergence from Other TIR Domain Containing Proteins. Biol. Direct 2022, 17, 24. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Juste, R.A.; Vazquez, P.; Ruiz-Larrañaga, O.; Iriondo, M.; Manzano, C.; Agirre, M.; Estonba, A.; Geijo, M.V.; Molina, E.; Sevilla, I.A.; et al. Association between Combinations of Genetic Polymorphisms and Epidemiopathogenic Forms of Bovine Paratuberculosis. Heliyon 2018, 4, e00535. [Google Scholar] [CrossRef] [Scilit]
- Sun, L.; Song, Y.; Riaz, H.; Yang, H.; Hua, G.; Guo, A.; Yang, L. Polymorphisms in Toll-like Receptor 1 and 9 Genes and Their Association with Tuberculosis Susceptibility in Chinese Holstein Cattle. Vet. Immunol. Immunopathol. 2012, 147, 195–201. [Google Scholar] [CrossRef] [Scilit]
- von Bernuth, H.; Picard, C.; Puel, A.; Casanova, J.L. Experimental and Natural Infections in MyD88- and IRAK-4-Deficient Mice and Humans. Eur. J. Immunol. 2012, 42, 3126–3135. [Google Scholar] [CrossRef] [Scilit]
- Kohl, L.; Hayek, I.; Daniel, C.; Schulze-Lührmann, J.; Bodendorfer, B.; Lührmann, A.; Lang, R. MyD88 Is Required for Efficient Control of Coxiella burnetii Infection and Dissemination. Front. Immunol. 2019, 10, 165. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Muraille, E.; De Trez, C.; Brait, M.; De Baetselier, P.; Leo, O.; Carlier, Y. Genetically Resistant Mice Lacking MyD88-Adapter Protein Display a High Susceptibility to Leishmania Major Infection Associated with a Polarized Th2 Response. J. Immunol. 2003, 170, 4237–4241. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fremond, C.M.; Yeremeev, V.; Nicolle, D.M.; Jacobs, M.; Quesniaux, V.F.; Ryffel, B. Fatal Mycobacterium tuberculosis Infection despite Adaptive Immune Response in the Absence of MyD88. J. Clin. Investig. 2004, 114, 1790–1799. [Google Scholar] [CrossRef] [Scilit]
- Vallée, N.; Dugrenot, E.; Desruelle, A.V.; Richard, S.; Coupé, S.; Ramdani, C.; Guieu, R.; Risso, J.J.; Gaillard, S.; Guerrero, F. Highlighting of the interactions of MYD88 and NFKB1 SNPs in rats resistant to decompression sickness: Toward an autoimmune response. Front. Physiol. 2023, 14, 1253856. [Google Scholar] [CrossRef] [Scilit]
- George, J.; Motshwene, P.G.; Wang, H.; Kubarenko, A.V.; Rautanen, A.; Mills, T.C.; Hill, A.V.S.; Gay, N.J.; Weber, A.N.R. Two Human MYD88 Variants, S34Y and R98C, Interfere with MyD88-IRAK4-Myddosome Assembly. J. Biol. Chem. 2011, 286, 1341–1353. [Google Scholar] [CrossRef] [Scilit]
- Yamamoto, T.; Tsutsumi, N.; Tochio, H.; Ohnishi, H.; Kubota, K.; Kato, Z.; Shirakawa, M.; Kondo, N. Functional assessment of the mutational effects of human IRAK4 and MyD88 genes. Mol. Immunol. 2014, 58, 66–76. [Google Scholar] [CrossRef] [Scilit]
- Nagpal, K.; Plantinga, T.S.; Wong, J.; Monks, B.G.; Gay, N.J.; Netea, M.G.; Fitzgerald, K.A.; Golenbock, D.T. A TIR Domain Variant of MyD88 Adapter-like (Mal)/TIRAP Results in Loss of MyD88 Binding and Reduced TLR2/TLR4 Signaling. J. Biol. Chem. 2009, 284, 25742–25748. [Google Scholar] [CrossRef] [Scilit]
- von Bernuth, H.; Picard, C.; Jin, Z.; Pankla, R.; Xiao, H.; Ku, C.L.; Chrabieh, M.; Mustapha, I.B.; Ghandil, P.; Camcioglu, Y.; et al. Pyogenic bacterial infections in humans with MyD88 deficiency. Science 2008, 321, 691–696. [Google Scholar] [CrossRef] [Scilit]
- Aggelou, K.; Siapati, E.K.; Gerogianni, I.; Daniil, Z.; Gourgoulianis, K.; Ntanos, I.; Simantirakis, E.; Zintzaras, E.; Mollaki, V.; Vassilopoulos, G. The-938C>A Polymorphism in MYD88 Is Associated with Susceptibility to Tuberculosis: A Pilot Study. Dis. Markers 2016, 2016, 4961086. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- El-Hefnawy, S.M.; Mostafa, R.G.; Kasemy, Z.A.; Eid, H.A.; Elgizawy, E.I.; Omar, T.A.; EL Naidany, S.S. Association of TIRAP (rs8177374) and MyD88 (rs6853) genetic polymorphisms with susceptibility to pulmonary tuberculosis and treatment response. Gene Rep. 2020, 21, 100825. [Google Scholar] [CrossRef] [Scilit]
- Bockenstedt, L.K.; Liu, N.Y.; Schwartz, I.; Fish, D. MyD88 deficiency enhances acquisition and transmission of Borrelia burgdorferi by Ixodes scapularis ticks. Inf. Immun. 2006, 74, 2154–2160. [Google Scholar] [CrossRef] [Scilit]
- Werner, J.L.; Escolero, S.G.; Hewlett, J.T.; Mak, T.N.; Williams, B.P.; Eishi, Y.; Núñez, G. Induction of Pulmonary Granuloma Formation by Propionibacterium acnes Is Regulated by MyD88 and Nox2. Am. J. Respir. Cell Mol. Biol. 2017, 56, 121–130. [Google Scholar] [CrossRef] [Scilit]
- Ellis, M.K.; Elliott, K.S.; Rautanen, A.; Crook, D.W.; Hill, A.V.S.; Chapman, S.J. Rare Variants in MYD88, IRAK4 and IKBKG and Susceptibility to Invasive Pneumococcal Disease: A Population-Based Case-Control Study. PLoS ONE 2015, 10, e0123532. [Google Scholar] [CrossRef] [Scilit]
- Carrasco-Colom, J.; Jordan, I.; Alsina, L.; Garcia-Garcia, J.J.; Cambra-Lasaosa, F.J.; Martin-Mateos, M.A.; Juan, M.; Muñoz-Almagro, C. Association of Polymorphisms in IRAK1, IRAK4 and MyD88, and Severe Invasive Pneumococcal Disease. Pediatr. Inf. Dis. J. 2015, 34, 1008–1013. [Google Scholar] [CrossRef] [Scilit]
- Aloise, D.D.; Coura-Vital, W.; Carneiro, M.; Rodrigues, M.V.; Toscano, G.A.D.; da Silva, R.B.; Silva-Portela, R.D.B.; Fontes-Dantas, F.L.; Agnez-Lima, L.F.; Vitor, R.W.A.; et al. Association between ocular toxoplasmosis and APEX1 and MYD88 polymorphism. Acta Trop. 2021, 221, 106006. [Google Scholar] [CrossRef] [Scilit]
- Ammar, A.I.; El-Hefnawy, S.M.; Shehab-Eldeen, S.; Essa, A.; ELnaidany, S.S.; Mostafa, R.G.; Alsalman, M.H.; El-Refai, S.A. Plasmodium falciparum Malaria Susceptibility and Severity: Influence of MyD88-Adaptor-Like Gene (rs8177374) Polymorphism. Infect. Drug Resist. 2022, 15, 6815–6827. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rani, A.; Nawaz, S.K.; Arshad, M.; Arshad, N. Role of MyD88-Adaptor-Like (MAL) Gene Polymorphism rs8177374 and Cytokine (IFN-γ, TNF-α, IL-10, TGF-β) Levels in Diverse Malaria Manifestations upon P. falciparum and P. vivax Infections. Jpn. J. Infect. Dis. 2023, 76, 358–364. [Google Scholar] [CrossRef] [Scilit]
- Stokes, C.A.; Ismail, S.; Dick, E.P.; Bennett, J.A.; Johnston, S.L.; Edwards, M.R.; Sabroe, I.; Parker, L.C. Role of Interleukin-1 and MyD88-Dependent Signaling in Rhinovirus Infection. J. Virol. 2011, 85, 7912–7921. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ives, A.; Masina, S.; Castiglioni, P.; Prével, F.; Revaz-Breton, M.; Hartley, M.A.; Launois, P.; Fasel, N.; Ronet, C. MyD88 and TLR9 Dependent Immune Responses Mediate Resistance to Leishmania guyanensis Infections, Irrespective of Leishmania RNA Virus Burden. PLoS ONE 2014, 9, e96766. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Manzoor, S.; Khalil, S.; Malik, M.A.; Shafique, K.; Gul, S.; Javed, F. Induction of Profibrotic Microenvironment via TLR4 MyD88-Dependent and -Independent Inflammatory Signaling in Chronic Hepatitis C Virus Infection. Viral Immunol. 2020, 33, 585–593. [Google Scholar] [CrossRef] [Scilit]
- Wen, S.J.; Wu, F.Y.; Fang, L.; Liu, H.; Zheng, W.J.; Lin, Y.K. Associations of genetic polymorphisms of TLR5, TLR9 and transduction molecules in MyD88 signaling pathway with systemic lupus erythematosus in Zhuang and Han ethnics of Guangxi province, China. Int. J. Clin. Exp. Med. 2015, 8, 7872–7880. [Google Scholar] [PubMed]
- Chen, Z.Y.; Nakajima, T.; Inoue, Y.; Kudo, T.; Jibiki, M.; Iwai, T.; Kimura, A. A single nucleotide polymorphism in the 3′-untranslated region of MyD88 gene is associated with Buerger disease but not with Takayasu arteritis in Japanese. J. Hum. Genet. 2011, 56, 545–547. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- An, Y.; Ohnishi, H.; Matsui, E.; Funato, M.; Kato, Z.; Teramoto, T.; Kaneko, H.; Kimura, T.; Kubota, K.; Kasahara, K.; et al. Genetic Variations in MyD88 Adaptor-Like Are Associated with Atopic Dermatitis. Int. J. Mol. Med. 2011, 27, 795–805. [Google Scholar] [CrossRef] [Scilit]
- Holtick, U.; Middleton, P.G.; Harrold, J.L.; Holler, E.; Gluckman, E.; Hromadnikova, I.; Dickinson, A.M.; Collin, M.P. The MyD88 adapter-like (Mal) protein variant Leu 180, a candidate polymorphism for protection against graft versus host disease. Blood 2006, 108, 3243. [Google Scholar] [CrossRef] [Scilit]
- Jiménez-Sousa, M.A.; Fadrique, A.; Liu, P.; Fernández-Rodríguez, A.; Lorenzo-López, M.; Gómez-Sánchez, E.; Gómez-Sanz, A.; Heredia-Rodríguez, M.; Gómez-Pesquera, E.; Martínez, I.; et al. TNFAIP3, TNIP1, and MyD88 Polymorphisms Predict Septic-Shock-Related Death in Patients Who Underwent Major Surgery. J. Clin. Med. 2019, 8, 283. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gonzalez-Aguilar, A.; Idbaih, A.; Boisselier, B.; Habbita, N.; Rossetto, M.; Laurenge, A.; Bruno, A.; Jouvet, A.; Polivka, M.; Adam, C.; et al. Recurrent Mutations of MYD88 and TBL1XR1 in Primary Central Nervous System Lymphomas. Clin. Cancer Res. 2012, 18, 5203–5211. [Google Scholar] [CrossRef] [Scilit]
- Tadic, L.; Marjanovic, G.; Macukanovic-Golubovic, L.; Krstic, M.; Jevtovic-Stoimenov, T.; Kostov, M.; Smelcerovic, Z.; Stojanovic, M. The importance of Myd88 L265P mutation, clinical and immunohistochemical prognostic factors for the survival of patients with diffuse large B-cell non-Hodgkin lymphoma treated by immunochemotherapy in southeast Serbia. J. BUON 2016, 21, 1259–1267. [Google Scholar] [PubMed]
- Maleki, Y.; Alahbakhshi, Z.; Heidari, Z.; Moradi, M.T.; Rahimi, Z.; Yari, K.; Rahimi, Z.; Aznab, M.; Ahmadi-Khajevand, M.; Bahremand, F. NOTCH1, SF3B1, MDM2 and MYD88 mutations in patients with chronic lymphocytic leukemia. Oncol. Lett. 2019, 17, 4016–4023. [Google Scholar] [CrossRef] [Scilit]
- Narasimhan, S.; Joshi, M.; Parameswaran, S.; Rishi, P.; Khetan, V.; Ganesan, S.; Biswas, J.; Sundaram, N.; Sreenivasan, J.; Verma, S.; et al. MYD88 L265P mutation in intraocular lymphoma: A potential diagnostic marker. Indian J. Ophthalmol. 2020, 68, 2160–2165. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kennedy, C.L.; Najdovska, M.; Tye, H.; McLeod, L.; Yu, L.; Jarnicki, A.; Bhathal, P.S.; Putoczki, T.; Ernst, M.; Jenkins, B.J. Differential role of MyD88 and Mal/TIRAP in TLR2-mediated gastric tumourigenesis. Oncogene 2014, 33, 2540–2546. [Google Scholar] [CrossRef] [Scilit]
- Pattabiraman, G.; Panchal, R.; Medvedev, A.E. The R753Q polymorphism in Toll-like receptor 2 (TLR2) attenuates innate immune responses to mycobacteria and impairs MyD88 adapter recruitment to TLR2. J. Biol. Chem. 2017, 23, 10685–10695. [Google Scholar] [CrossRef] [Scilit]
- Figueroa, L.; Xiong, Y.B.; Song, C.; Piao, W.; Vogel, S.N.; Medvedev, A.E. The Asp299Gly Polymorphism Alters TLR4 Signaling by Interfering with Recruitment of MyD88 and TRIF. J. Immunol. 2012, 188, 4506–4515. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yang, Y.J.; Hu, Y.; Zhou, Y.L.; Liang, T.; Tang, H.H.; Ju, H.H.; Shi, Q.Q.; Fang, H. Lys694Arg polymorphism leads to blunted responses to LPS by interfering TLR4 with recruitment of MyD88. Innate Immun. 2021, 27, 483–492. [Google Scholar] [CrossRef] [Scilit]
- Capparelli, R.; De Chiara, F.; Nocerino, N.; Medaglia, C.; Di Costanzo, R.; Ramunno, L.; Capuano, F.; Casalinuovo, F.; Di Matteo, A.; Iannelli, D. Heterozygosity at the A625C Polymorphic Site of the MyD88 Gene Is Associated with Mycobacterium bovis Infection in Cattle. Inf. Immun. 2013, 81, 2139–2144. [Google Scholar] [CrossRef] [Scilit]
- Schaut, R.G.; McGill, J.L.; Neill, J.D.; Ridpath, J.F.; Sacco, R.E. Bovine viral diarrhea virus type 2 in vivo infection modulates TLR4 responsiveness in differentiated myeloid cells which is associated with decreased MyD88 expression. Virus Res. 2015, 208, 44–55. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Arcangeli, C.; Lucarelli, D.; Torricelli, M.; Sebastiani, C.; Ciullo, M.; Pellegrini, C.; Felici, A.; Costarelli, S.; Giammarioli, M.; Feliziani, F.; et al. First Survey of SNPs in TMEM154, TLR9, MYD88 and CCR5 Genes in Sheep Reared in Italy and Their Association with Resistance to SRLVs Infection. Viruses 2021, 13, 1290. [Google Scholar] [CrossRef] [Scilit]
- Li, X.Y.; Liu, H.Z.; Yang, S.L.; Tang, Z.L.; Ma, Y.H.; Chu, M.X.; Li, K. Characterization analysis and polymorphism detection of the porcine Myd88 gene. Genet. Mol. Biol. 2009, 32, 295–300. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Laghouaouta, H.; Fraile, L.; Suárez-Mesa, R.; Ros-Freixedes, R.; Estany, J.; Pena, R.N. A Genome-Wide Screen for Resilient Responses in Growing Pigs. Genet. Sel. Evol. 2022, 54, 50. [Google Scholar] [CrossRef] [Scilit]
- Chen, S.Y.; Zhang, W.X.; Zhang, G.W.; Peng, J.; Zhao, X.B.; Lai, S.J. Case-control study and mRNA expression analysis reveal the MyD88 gene is associated with digestive disorders in rabbit. Anim. Genet. 2013, 44, 703–710. [Google Scholar] [CrossRef] [Scilit]
- Necesankova, M.; Vychodilova, L.; Albrechtova, K.; Kennedy, L.J.; Hlavac, J.; Sedlak, K.; Modry, D.; Janova, E.; Vyskocil, M.; Horin, P. MYD88 and functionally related genes are associated with multiple infections in a model population of Kenyan village dogs. Mol. Biol. Rep. 2016, 43, 1451–1463. [Google Scholar] [CrossRef] [Scilit]
- Ren, P.; Liu, X.Q.; Yang, C.W.; Du, H.R.; Jiang, X.S.; Liu, Y.P. Association Analysis of SNPs in the 3?-UTR of the MyD88 Gene with Resistance to Salmonella pullorum Infection in Chickens. Pak. J. Zool. 2020, 52, 849–856. [Google Scholar] [CrossRef] [Scilit]
- Wei, L.M.; Jiao, P.R.; Yuan, R.Y.; Song, Y.F.; Cui, P.F.; Guo, X.C.; Zheng, B.F.; Jia, W.X.; Qi, W.B.; Ren, T.; et al. Goose Toll-like receptor 7 (TLR7), myeloid differentiation factor 88 (MyD88) and antiviral molecules involved in anti-H5N1 highly pathogenic avian influenza virus response. Vet. Immunol. Immunopathol. 2013, 153, 99–106. [Google Scholar] [CrossRef] [Scilit]
- Jault, C.; Pichon, L.; Chluba, J. Toll-like receptor gene family and TIR-domain adapters in Danio rerio. Mol. Immunol. 2004, 40, 759–771. [Google Scholar] [CrossRef] [Scilit]
- Meijer, A.H.; Krens, S.F.G.; Rodriguez, I.A.M.; He, S.; Bitter, W.; Snaar-Jagalska, B.E.; Spaink, H.P. Expression analysis of the Toll-like receptor and TIR domain adaptor families of zebrafish. Mol. Immunol. 2004, 40, 773–783. [Google Scholar] [CrossRef] [Scilit]
- Kongchum, P.; Hallerman, E.M.; Hulata, G.; David, L.; Palti, Y. Molecular cloning, characterization and expression analysis of TLR9, MyD88 and TRAF6 genes in common carp (Cyprinus carpio). Fish Shellfish Immunol. 2011, 30, 361–371. [Google Scholar] [CrossRef] [Scilit]
- Rebl, A.; Rebl, H.; Köbis, J.M.; Goldammer, T.; Seyfert, H.-M. ST2 from rainbow trout quenches TLR signalling, localises at the nuclear membrane and allows the nuclear translocation of MYD88. Dev. Comp. Immunol. 2017, 67, 139–152. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xiong, Y.B.; Song, C.; Medvedev, A. R753Q polymorphism compromises TLR2 signaling functions by altering TLR6-TLR2 hetero-dimerization, TLR2 tyrosine phosphorylation and MyD88 recruitment. J. Immunol. 2012, 188, 180.2. [Google Scholar] [CrossRef] [Scilit]
- Abdel-Shafy, H.; Bortfeldt, R.H.; Regens, J.; Brockmann, G.A. Single Nucleotide Polymorphism and Haplotype Effects Associated with Somatic Cell Score in German Holstein Cattle. Genet. Sel. Evol. 2014, 46, 35. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ebert, P.; Audano, P.A.; Zhu, Q.; Rodriguez-Martin, B.; Porubsky, D.; Bonder, M.J.; Sulovari, A.; Ebler, J.; Zhou, W.; Mari, R.S.; et al. Haplotype-Resolved Diverse Human Genomes and Integrated Analysis of Structural Variation. Science 2021, 372, eabf7117. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Low, W.Y.; Tearle, R.; Liu, R.; Koren, S.; Rhie, A.; Bickhart, D.M.; Rosen, B.D.; Kronenberg, Z.N.; Kingan, S.B.; Tseng, E.; et al. Haplotype-Resolved Genomes Provide Insights into Structural Variation and Gene Content in Angus and Brahman Cattle. Nat. Commun. 2020, 11, 2071. [Google Scholar] [CrossRef] [Scilit]
- Meuwissen, T.H.E.; Hayes, B.J.; Goddard, M.E. Prediction of Total Genetic Value using Genome-Wide Dense Marker Maps. Genetics 2001, 157, 1819–1829. [Google Scholar] [CrossRef] [Scilit]
- Meyer, K. WOMBAT—A Tool for Mixed Model Analyses in Quantitative Genetics by Restricted Maximum Likelihood (REML). J. Zhejiang Univ. Sci. B 2007, 8, 815–821. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mollaki, V.; Georgiadis, T.; Tassidou, A.; Ioannou, M.; Daniil, Z.; Koutsokera, A.; Papathanassiou, A.A.; Zintzaras, E.; Vassilopoulos, G. Polymorphisms and haplotypes in TLR9 and MYD88 are associated with the development of Hodgkin’s lymphoma: A candidate-gene association study. J. Human Genet. 2009, 54, 655–659. [Google Scholar] [CrossRef] [Scilit]
- Samaké, K.; Novák, K. Haplotype Disequilibrium in the TLR Genes of Czech Red Pied Cattle. Diversity 2023, 15, 811. [Google Scholar] [CrossRef] [Scilit]
- Capitan, A.; Michot, P.; Baur, A.; Saintilan, R.; Hoze, C.; Valour, D.; Guillaume, F.; Boichon, D.; Barbat, A.; Boichard, D.; et al. Genetic tools to improve reproduction traits in dairy cattle. Reprod. Fer. Dev. 2014, 27, 14–21. [Google Scholar] [CrossRef] [Scilit]
- Yao, X.P.; Ye, J.; Feng, T.; Jiang, F.C.; Zhou, P.; Wang, F.; Chen, J.G.; Wu, P.F. Adaptor Protein Myd88 Confers the Susceptibility to Stress via Amplifying Immune Danger Signals. Brain Behav. Immun. 2023, 108, 204–220. [Google Scholar] [CrossRef] [Scilit] [PubMed]




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Novák, K.; Samaké, K. Polymorphism in the TLR Adaptors of the Toll Signalling Pathway for Use in Livestock Breeding for Health Traits. Int. J. Mol. Sci. 2026, 27, 4264. https://doi.org/10.3390/ijms27104264
Novák K, Samaké K. Polymorphism in the TLR Adaptors of the Toll Signalling Pathway for Use in Livestock Breeding for Health Traits. International Journal of Molecular Sciences. 2026; 27(10):4264. https://doi.org/10.3390/ijms27104264
Chicago/Turabian StyleNovák, Karel, and Kalifa Samaké. 2026. "Polymorphism in the TLR Adaptors of the Toll Signalling Pathway for Use in Livestock Breeding for Health Traits" International Journal of Molecular Sciences 27, no. 10: 4264. https://doi.org/10.3390/ijms27104264
APA StyleNovák, K., & Samaké, K. (2026). Polymorphism in the TLR Adaptors of the Toll Signalling Pathway for Use in Livestock Breeding for Health Traits. International Journal of Molecular Sciences, 27(10), 4264. https://doi.org/10.3390/ijms27104264

