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Fate of MHCII in Salmonids Following 4WGD

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Journal Immunogenetics
Date 2020 Nov 23
PMID 33225379
Citations 1
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Abstract

Major histocompatibility complex (MHC) genes are key players in the adaptive immunity providing a defense against invading pathogens. Although the basic structures are similar when comparing mammalian and teleost MHC class II (MHCII) molecules, there are also clear-cut differences. Based on structural requirements, the teleosts non-classical MHCII molecules do not comply with a function similar to the human HLA-DM and HLA-DO, i.e., assisting in peptide loading and editing of classical MHCII molecules. We have previously studied the evolution of teleost class II genes identifying various lineages and tracing their phylogenetic occurrence back to ancient ray-finned fishes. We found no syntenic MHCII regions shared between cyprinids, salmonids, and neoteleosts, suggesting regional instabilities. Salmonids have experienced a unique whole genome duplication 94 million years ago, providing them with the opportunity to experiment with gene duplicates. Many salmonid genomes have recently become available, and here we set out to investigate how MHCII has evolved in salmonids using Northern pike as a diploid sister phyla, that split from the salmonid lineage prior to the fourth whole genome duplication (4WGD) event. We identified 120 MHCII genes in pike and salmonids, ranging from 11 to 20 genes per species analyzed where DB-group genes had the most expansions. Comparing the MHC of Northern pike with that of Atlantic salmon and other salmonids species provides a tale of gene loss, translocations, and genome rearrangements.

Citing Articles

Immunogenetics special issue 2021: Fish Immunology.

Dijkstra J, Dixon B Immunogenetics. 2021; 73(1):1-3.

PMID: 33394056 PMC: 7780219. DOI: 10.1007/s00251-020-01198-y.

References
1.
Kumar S, Stecher G, Li M, Knyaz C, Tamura K . MEGA X: Molecular Evolutionary Genetics Analysis across Computing Platforms. Mol Biol Evol. 2018; 35(6):1547-1549. PMC: 5967553. DOI: 10.1093/molbev/msy096. View

2.
Croisetiere S, Tarte P, Bernatchez L, Belhumeur P . Identification of MHC class IIbeta resistance/susceptibility alleles to Aeromonas salmonicida in brook charr (Salvelinus fontinalis). Mol Immunol. 2008; 45(11):3107-16. DOI: 10.1016/j.molimm.2008.03.007. View

3.
Berthelot C, Brunet F, Chalopin D, Juanchich A, Bernard M, Noel B . The rainbow trout genome provides novel insights into evolution after whole-genome duplication in vertebrates. Nat Commun. 2014; 5:3657. PMC: 4071752. DOI: 10.1038/ncomms4657. View

4.
Dubin A, Jorgensen T, Moum T, Johansen S, Jakt L . Complete loss of the MHC II pathway in an anglerfish, . Biol Lett. 2019; 15(10):20190594. PMC: 6832177. DOI: 10.1098/rsbl.2019.0594. View

5.
Star B, Nederbragt A, Jentoft S, Grimholt U, Malmstrom M, Gregers T . The genome sequence of Atlantic cod reveals a unique immune system. Nature. 2011; 477(7363):207-10. PMC: 3537168. DOI: 10.1038/nature10342. View