The sterlet sturgeon genome sequence and the mechanisms of segmental rediploidization

Author:

Du Kang,Stöck MatthiasORCID,Kneitz Susanne,Klopp ChristopheORCID,Woltering Joost M.,Adolfi Mateus Contar,Feron RomainORCID,Prokopov DmitryORCID,Makunin AlexeyORCID,Kichigin Ilya,Schmidt Cornelia,Fischer Petra,Kuhl Heiner,Wuertz Sven,Gessner Jörn,Kloas Werner,Cabau Cédric,Iampietro Carole,Parrinello Hugues,Tomlinson Chad,Journot Laurent,Postlethwait John H.,Braasch Ingo,Trifonov Vladimir,Warren Wesley C.,Meyer AxelORCID,Guiguen YannORCID,Schartl ManfredORCID

Abstract

AbstractSturgeons seem to be frozen in time. The archaic characteristics of this ancient fish lineage place it in a key phylogenetic position at the base of the ~30,000 modern teleost fish species. Moreover, sturgeons are notoriously polyploid, providing unique opportunities to investigate the evolution of polyploid genomes. We assembled a high-quality chromosome-level reference genome for the sterlet, Acipenser ruthenus. Our analysis revealed a very low protein evolution rate that is at least as slow as in other deep branches of the vertebrate tree, such as that of the coelacanth. We uncovered a whole-genome duplication that occurred in the Jurassic, early in the evolution of the entire sturgeon lineage. Following this polyploidization, the rediploidization of the genome included the loss of whole chromosomes in a segmental deduplication process. While known adaptive processes helped conserve a high degree of structural and functional tetraploidy over more than 180 million years, the reduction of redundancy of the polyploid genome seems to have been remarkably random.

Funder

Deutsche Forschungsgemeinschaft

Russian Science Foundation

Agence Nationale de la Recherche

Publisher

Springer Science and Business Media LLC

Subject

Ecology,Ecology, Evolution, Behavior and Systematics

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