A high-quality chromosome-level genome assembly of the bivalve mollusk Mactra veneriformis

Author:

Sun Yongxin1ORCID,Liu Xiangfeng1,Xie Xi1ORCID,Bai Yongan2,Wang Shuo1,Teng Weiming1,Li Dacheng1,Li Hualin1,Yu Zuoan1,Zhang Ming1,Zhou Zunchun1,Liu Xu2,Nie Hongtao3ORCID,Du Shaojun4,Li Xiaodong5,Li Qi6ORCID,Wang Qingzhi1ORCID

Affiliation:

1. Dalian Key Laboratory of Genetic Resources for Marine Shellfish, Liaoning Ocean and Fisheries Science Research Institute , Dalian 116023, China

2. Panjin Guanghe Crab Industry Co., LTD , Panjin 124299, China

3. College of Fisheries and Life Science, Dalian Ocean University , Dalian 116023, China

4. Department of Biochemistry and Molecular Biology, Institute of Marine and Environmental Technology, University of Maryland School of Medicine , Baltimore, MD 21202, USA

5. Key Laboratory of Zoonosis, Aquaculture Department, College of Animal Science and Veterinary Medicine, Shenyang Agricultural University , Shenyang 110866, China

6. Key Laboratory of Mariculture, Ministry of Education, Ocean University of China , Qingdao 266003, China

Abstract

Abstract Mactra veneriformis (Bivalvia: Mactridae) is a bivalve mollusk of major economic importance in China. Decreased natural yields of M. veneriformis have led to an urgent need for genomic resources. To address this problem and the currently limited knowledge of molecular evolution in this genus, we here report a high-quality chromosome-level genome assembly of M. veneriformis. Our approach yielded a 939.32 Mb assembled genome with an N50 contig length of 7,977.84 kb. Hi-C scaffolding of the genome resulted in assembly of 19 pseudochromosomes. Repetitive elements made up ∼51.79% of the genome assembly. A total of 29,315 protein-coding genes (PCGs) were predicted in M. veneriformis. Construction of a genome-level phylogenetic tree demonstrated that M. veneriformis and Ruditapes philippinarum diverged around 231 million years ago (MYA). Inter-species comparisons revealed that 493 gene families have undergone expansion and 449 have undergone contraction in the M. veneriformis genome. Chromosome-based macrosynteny analysis revealed a high degree of synteny between the 19 chromosomes of M. veneriformis and those of Patinopecten yessoensis. These results suggested that M. veneriformis has a similar karyotype to that of P. yessoensis, and that a highly conserved 19-chromosome karyotype was formed in the early differentiation stages of bivalves. In summary, the genomic resources generated in this work serve as a valuable reference for investigating the molecular mechanisms underlying biological functions in M. veneriformis and will facilitate future genetic improvement and disease treatment in this economically important species. Furthermore, the assembled genome greatly improves our understanding of early genomic evolution of the Bivalvia.

Funder

Ocean Economic Development Grants of Liaoning Province

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology

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