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Genomic insights into the seawater adaptation in Cyprinidae. | LitMetric

Genomic insights into the seawater adaptation in Cyprinidae.

BMC Biol

State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.

Published: April 2024

AI Article Synopsis

  • Cyprinidae is the largest fish family, consisting of around 367 genera and 3006 species, but the Far Eastern daces are among the few that have adapted to seawater, making them an important model for studying seawater adaptation.
  • Researchers sequenced the genomes of two Far Eastern daces and found that their population dynamics and adaptations to seawater are linked to historical glacial cycles and changes in sea level.
  • The study identified specific genetic changes in Pseudaspius that facilitate seawater adaptation, including significant gene variations and increased promoter activity in response to higher osmolarity, enhancing our understanding of how marine ecosystems can be preserved and managed.

Article Abstract

Background: Cyprinidae, the largest fish family, encompasses approximately 367 genera and 3006 species. While they exhibit remarkable adaptability to diverse aquatic environments, it is exceptionally rare to find them in seawater, with the Far Eastern daces being of few exceptions. Therefore, the Far Eastern daces serve as a valuable model for studying the genetic mechanisms underlying seawater adaptation in Cyprinidae.

Results: Here, we sequenced the chromosome-level genomes of two Far Eastern daces (Pseudaspius brandtii and P. hakonensis), the two known cyprinid fishes found in seawater, and performed comparative genomic analyses to investigate their genetic mechanism of seawater adaptation. Demographic history reconstruction of the two species reveals that their population dynamics are correlated with the glacial-interglacial cycles and sea level changes. Genomic analyses identified Pseudaspius-specific genetic innovations related to seawater adaptation, including positively selected genes, rapidly evolving genes, and conserved non-coding elements (CNEs). Functional assays of Pseudaspius-specific variants of the prolactin (prl) gene showed enhanced cell adaptation to greater osmolarity. Functional assays of Pseudaspius specific CNEs near atg7 and usp45 genes suggest that they exhibit higher promoter activity and significantly induced at high osmolarity.

Conclusions: Our results reveal the genome-wide evidence for the evolutionary adaptation of cyprinid fishes to seawater, offering valuable insights into the molecular mechanisms supporting the survival of migratory fish in marine environments. These findings are significant as they contribute to our understanding of how cyprinid fishes navigate and thrive in diverse aquatic habitats, providing useful implications for the conservation and management of marine ecosystems.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11027309PMC
http://dx.doi.org/10.1186/s12915-024-01885-2DOI Listing

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