A haplotype-resolved genome assembly of the Nile rat facilitates exploration of the genetic basis of diabetes
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Published:2022-11-08
Issue:1
Volume:20
Page:
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ISSN:1741-7007
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Container-title:BMC Biology
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language:en
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Short-container-title:BMC Biol
Author:
Toh Huishi, Yang Chentao, Formenti Giulio, Raja Kalpana, Yan Lily, Tracey Alan, Chow William, Howe Kerstin, Bergeron Lucie A., Zhang Guojie, Haase Bettina, Mountcastle Jacquelyn, Fedrigo Olivier, Fogg John, Kirilenko Bogdan, Munegowda Chetan, Hiller Michael, Jain Aashish, Kihara Daisuke, Rhie Arang, Phillippy Adam M., Swanson Scott A., Jiang Peng, Clegg Dennis O., Jarvis Erich D., Thomson James A., Stewart Ron, Chaisson Mark J. P., Bukhman Yury V.ORCID
Abstract
Abstract
Background
The Nile rat (Avicanthis niloticus) is an important animal model because of its robust diurnal rhythm, a cone-rich retina, and a propensity to develop diet-induced diabetes without chemical or genetic modifications. A closer similarity to humans in these aspects, compared to the widely used Mus musculus and Rattus norvegicus models, holds the promise of better translation of research findings to the clinic.
Results
We report a 2.5 Gb, chromosome-level reference genome assembly with fully resolved parental haplotypes, generated with the Vertebrate Genomes Project (VGP). The assembly is highly contiguous, with contig N50 of 11.1 Mb, scaffold N50 of 83 Mb, and 95.2% of the sequence assigned to chromosomes. We used a novel workflow to identify 3613 segmental duplications and quantify duplicated genes. Comparative analyses revealed unique genomic features of the Nile rat, including some that affect genes associated with type 2 diabetes and metabolic dysfunctions. We discuss 14 genes that are heterozygous in the Nile rat or highly diverged from the house mouse.
Conclusions
Our findings reflect the exceptional level of genomic resolution present in this assembly, which will greatly expand the potential of the Nile rat as a model organism.
Funder
William K. Bowes, Jr. Foundation Marv Conney National Science Foundation Hessisches Ministerium für Wissenschaft und Kunst National Human Genome Research Institute Howard Hughes Medical Institute Rockefeller University
Publisher
Springer Science and Business Media LLC
Subject
Cell Biology,Developmental Biology,Plant Science,General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology,Physiology,Ecology, Evolution, Behavior and Systematics,Structural Biology,Biotechnology
Reference118 articles.
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