4.8 Article

Noncoding Variation and Transcriptional Plasticity Promote Thermal Adaptation in Oysters by Altering Energy Metabolism

期刊

MOLECULAR BIOLOGY AND EVOLUTION
卷 38, 期 11, 页码 5144-5155

出版社

OXFORD UNIV PRESS
DOI: 10.1093/molbev/msab241

关键词

thermal adaptation; plasticity; noncoding variation; lipid synthesis; ATP consumption; oyster

资金

  1. National Key R&D Program of China [2018YFD0900304]
  2. Strategic Priority Research Program of the Chinese Academy of Sciences [XDA23050402]
  3. Distinguished Young Scientists Research Fund of Key Laboratory of Experimental Marine Biology, Chinese Academy of Sciences [KLEMB-DYS04]
  4. China Postdoctoral Science Foundation [2019TQ0324]
  5. Key Deployment Project of Centre for Ocean Mega-Research of Science, Chinese Academy of Sciences [COMS2019Q06]
  6. National Natural Science Foundation of China [31572620]
  7. Technology and Modern AgroIndustry Technology Research System [CARS-49]

向作者/读者索取更多资源

The study reveals that oysters from different habitats have evolved different levels of transcriptional plasticity, with southern species showing higher plasticity for adaptation to warm climates and northern species exhibiting adaptation to cold climates. Noncoding variation and transcriptional plasticity play vital roles in shaping energy metabolism for thermal adaptation in oysters.
Genetic variation and phenotypic plasticity are both important to adaptive evolution. However, how they act together on particular traits remains poorly understood. Here, we integrated phenotypic, genomic, and transcriptomic data from two allopatric but closely related congeneric oyster species, Crassostrea angulata from southern/warm environments and Crassostrea gigas from northern/cold environments, to investigate the roles of genetic divergence and plasticity in thermal adaptation. Reciprocal transplantation experiments showed that both species had higher fitness in their native habitats than in nonnative environments, indicating strong adaptive divergence. The southern species evolved higher transcriptional plasticity, and the plasticity was adaptive, suggesting that increased plasticity is important for thermal adaptation to warm climates. Genome-wide comparisons between the two species revealed that genes under selection tended to respond to environmental changes and showed higher sequence divergence in noncoding regions. All genes under selection and related to energy metabolism exhibited habitat-specific expression with genes involved in ATP production and lipid catabolism highly expressed in warm/southern habitats, and genes involved in ATP consumption and lipid synthesis were highly expressed in cold/northern habitats. The gene for acyl-CoA desaturase, a key enzyme for lipid synthesis, showed strong selective sweep in the upstream noncoding region and lower transcription in the southern species. These results were further supported by the lower free fatty acid (FFA) but higher ATP content in southern species and habitat, pointing to significance of ATP/FFA trade-off. Our findings provide evidence that noncoding variation and transcriptional plasticity play important roles in shaping energy metabolism for thermal adaptation in oysters.

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