Divergent allele advantage at MHC-DRB through direct and maternal genotypic effects and its consequences for allele pool composition and mating
- PMID: 23677346
- PMCID: PMC3673058
- DOI: 10.1098/rspb.2013.0714
Divergent allele advantage at MHC-DRB through direct and maternal genotypic effects and its consequences for allele pool composition and mating
Abstract
It is still debated whether main individual fitness differences in natural populations can be attributed to genome-wide effects or to particular loci of outstanding functional importance such as the major histocompatibility complex (MHC). In a long-term monitoring project on Galápagos sea lions (Zalophus wollebaeki), we collected comprehensive fitness and mating data for a total of 506 individuals. Controlling for genome-wide inbreeding, we find strong associations between the MHC locus and nearly all fitness traits. The effect was mainly attributable to MHC sequence divergence and could be decomposed into contributions of own and maternal genotypes. In consequence, the population seems to have evolved a pool of highly divergent alleles conveying near-optimal MHC divergence even by random mating. Our results demonstrate that a single locus can significantly contribute to fitness in the wild and provide conclusive evidence for the 'divergent allele advantage' hypothesis, a special form of balancing selection with interesting evolutionary implications.
Keywords: Galápagos sea lion; major histocompatibility complex; overdominance; reproductive success; sequence divergence; survival.
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References
-
- Ellegren H, Sheldon BC. 2008. Genetic basis of fitness differences in natural populations. Nature 452, 169–17510.1038/nature06737 (doi:10.1038/nature06737) - DOI - DOI - PubMed
-
- Charlesworth D, Willis JH. 2009. The genetics of inbreeding depression. Nat. Rev. Genet. 10, 783–79610.1038/nrg2664 (doi:10.1038/nrg2664) - DOI - DOI - PubMed
-
- Haldane JBS. 1992. Disease and evolution (Reprinted From La Ricerca Scientifica Supplemento, vol. 19, pp. 1–11, 1949). Curr. Sci. 63, 599–604
-
- Bernatchez L, Landry C. 2003. MHC studies in nonmodel vertebrates: what have we learned about natural selection in 15 years. J. Evol. Biol. 16, 363–37710.1046/j.1420-9101.2003.00531.x (doi:10.1046/j.1420-9101.2003.00531.x) - DOI - DOI - PubMed
-
- Sommer S. 2005. The importance of immune gene variability (MHC) in evolutionary ecology and conservation. Front. Zool. 2, 16.10.1186/1742-9994-2-16 (doi:10.1186/1742-9994-2-16) - DOI - DOI - PMC - PubMed
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