4.7 Article

The new chimeric chiron genes evolved essential roles in zebrafish embryonic development by regulating NAD+ levels

Journal

SCIENCE CHINA-LIFE SCIENCES
Volume 64, Issue 11, Pages 1929-1948

Publisher

SCIENCE PRESS
DOI: 10.1007/s11427-020-1851-0

Keywords

new chimeric genes; essential function; NAD plus rate-limiting enzyme; coevolution

Categories

Funding

  1. Pilot projects of the Chinese Academy of Sciences [XDB13020100]
  2. Strategic Priority Research Program of the Chinese Academy of Sciences [XDB31000000]
  3. National Natural Science Foundation of China (NSFC) [31601859]

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Research identified a novel chimeric gene family, the chiron family, and explored its genetic basis and functional evolution in Danioninae fish adaptive evolution. The new chiron genes may play a crucial role in zebrafish embryonic development and energy metabolism by integrating and impacting the NAD(+) biosynthetic pathway.
The origination of new genes is important for generating genetic novelties for adaptive evolution and biological diversity. However, their potential roles in embryonic development, evolutionary processes into ancient networks, and contributions to adaptive evolution remain poorly investigated. Here, we identified a novel chimeric gene family, the chiron family, and explored its genetic basis and functional evolution underlying the adaptive evolution of Danioninae fishes. The ancestral chiron gene originated through retroposition of nampt in Danioninae 48-54 million years ago (Mya) and expanded into five duplicates (chiron1-5) in zebrafish 1-4 Mya. The chiron genes (chirons) likely originated in embryonic development and gradually extended their expression in the testis. Functional experiments showed that chirons were essential for zebrafish embryo development. By integrating into the NAD(+) synthesis pathway, chirons could directly catalyze the NAD(+) rate-limiting reaction and probably impact two energy metabolism genes (nmnat1 and naprt) to be under positive selection in Danioninae fishes. Together, these results mainly demonstrated that the origin of new chimeric chiron genes may be involved in adaptive evolution by integrating and impacting the NAD(+) biosynthetic pathway. This coevolution may contribute to the physiological adaptation of Danioninae fishes to widespread and varied biomes in Southeast Asian.

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