Volume 43 Issue 2
Feb.  2024
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Jiangyong Qu, Wanqi Yang, Xindong Teng, Li Xu, Dachuan Zhang, Zhikai Xing, Shuang Wang, Xiumei Liu, Lijun Wang, Xumin Wang. Gene characterization and phylogenetic analysis of four mitochondrial genomes in Caenogastropoda[J]. Acta Oceanologica Sinica, 2024, 43(2): 137-150. doi: 10.1007/s13131-023-2258-7
Citation: Jiangyong Qu, Wanqi Yang, Xindong Teng, Li Xu, Dachuan Zhang, Zhikai Xing, Shuang Wang, Xiumei Liu, Lijun Wang, Xumin Wang. Gene characterization and phylogenetic analysis of four mitochondrial genomes in Caenogastropoda[J]. Acta Oceanologica Sinica, 2024, 43(2): 137-150. doi: 10.1007/s13131-023-2258-7

Gene characterization and phylogenetic analysis of four mitochondrial genomes in Caenogastropoda

doi: 10.1007/s13131-023-2258-7
Funds:  Research and Development Program of Shandong Province, China (Major Science and Technology Innovation Project) under contract No. 2021CXGC011306; MNR Key Laboratory of Eco-Environmental Science and Technology, China under contract No. MEEST-2021-05; Natural Science Foundation of Shandong Province under contract No. ZR2020MD002; Doctoral Science Research Foundation of Yantai University under contract Nos SM15B01, SM19B70 and SM19B28; Double-Hundred Action of Yantai City under contract No. 2320004-SM20RC02.
More Information
  • Corresponding author: E-mail: wanglijun@ytu.edu.cn; wangxm@ytu.edu.cn; wangxm@ytu.edu.cn
  • Received Date: 2023-02-24
  • Accepted Date: 2023-07-17
  • Available Online: 2024-03-11
  • Publish Date: 2024-02-01
  • Caenogastropoda is a highly diverse group, containing ~60% of all existing gastropods. Species in this subclass predominantly inhabit marine environments and have a high ecological and economic value. Owing to the increase in relevant phylogenetic studies, our understanding of between species relatedness in Caenogastropoda has improved. However, the biodiversity, taxonomic status, and phylogenetic relationships of this group remain unclear. In the present study, we performed next-generation sequencing of four complete mitochondrial genomes from three families (Buccinidae, Columbellidae, and Cypraeidae) and the four mitogenomes were classical circular structures, with a length of 16 177 bp in Volutharpa ampullacea, 16 244 bp in Mitrella albuginosa, 16 926 bp in Mauritia arabica asiatica and 15 422 bp in Erronea errones. Base composition analysis indicated that whole sequences were biased toward A and T. Then compared them with 171 complete mitochondrial genomes of Caenogastropoda. The phylogenetic relationship of Caenogastropoda derived from Maximum Likelihood (ML) and Bayesian Inference (BI) trees constructed based on CDS sequences was consistent with the results of traditional morphological analysis, with all three families showing close relationships. This study supported Caenogastropoda at the molecular level as a separate clade of Mollusca. According to our divergence time estimations, Caenogastropoda was formed during the middle Triassic period (~247.2–237 Ma). Our novel mitochondrial genomes provide evidence for the speciation of Caenogastropoda in addition to elucidating the mitochondrial genomic evolution of this subclass.
  • The two authors contributed equally to this paper
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