Literature DB >> 33010101

Chromosome-level genome assembly of Paralithodes platypus provides insights into evolution and adaptation of king crabs.

Boping Tang1, Zhongkai Wang2, Qiuning Liu1, Zhengfei Wang1, Yandong Ren2, Huayun Guo1, Tingting Qi1, Yuetian Li1, Huabin Zhang1, Senhao Jiang1, Baoming Ge1, Fujun Xuan1, Yue Sun1, Shusheng She3, Tin Yam Chan4, Zhongli Sha5, Hui Jiang6,7, Haorong Li2, Wei Jiang5, Yanli Qin2, Kun Wang2, Qiang Qiu2, Wen Wang2, Xinzheng Li5, Ngan Kee Ng8, Daizhen Zhang1, Yongxin Li2.   

Abstract

The blue king crab, Paralithodes platypus, which belongs to the family Lithodidae, is a commercially and ecologically important species. However, a high-quality reference genome for the king crab has not yet been reported. Here, we assembled the first chromosome-level blue king crab genome, which contains 104 chromosomes and an N50 length of 51.15 Mb. Furthermore, we determined that the large genome size can be attributed to the insertion of long interspersed nuclear elements and long tandem repeats. Genome assembly assessment showed that 96.54% of the assembled transcripts could be aligned to the assembled genome. Phylogenetic analysis showed the blue king crab to have a close relationship with the Eubrachyura crabs, from which it diverged 272.5 million years ago. Population history analyses indicated that the effective population of the blue king crab declined sharply and then gradually increased from the Cretaceous and Neogene periods, respectively. Furthermore, gene families related to developmental pathways, steroid and thyroid hormone synthesis, and inflammatory regulation were expanded in the genome, suggesting that these genes contributed substantially to the environmental adaptation and unique body plan evolution of the blue king crab. The high-quality reference genome reported here provides a solid molecular basis for further study of the blue king crab's development and environmental adaptation.
© 2020 The Authors. Molecular Ecology Resources published by John Wiley & Sons Ltd.

Entities:  

Keywords:  adaptation; blue king crab; evolution; genome

Year:  2020        PMID: 33010101      PMCID: PMC7821229          DOI: 10.1111/1755-0998.13266

Source DB:  PubMed          Journal:  Mol Ecol Resour        ISSN: 1755-098X            Impact factor:   7.090


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3.  Chromosome-level genome assembly of Paralithodes platypus provides insights into evolution and adaptation of king crabs.

Authors:  Boping Tang; Zhongkai Wang; Qiuning Liu; Zhengfei Wang; Yandong Ren; Huayun Guo; Tingting Qi; Yuetian Li; Huabin Zhang; Senhao Jiang; Baoming Ge; Fujun Xuan; Yue Sun; Shusheng She; Tin Yam Chan; Zhongli Sha; Hui Jiang; Haorong Li; Wei Jiang; Yanli Qin; Kun Wang; Qiang Qiu; Wen Wang; Xinzheng Li; Ngan Kee Ng; Daizhen Zhang; Yongxin Li
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