AI Article Synopsis

  • DNA methylation in plants influences transposon silencing and gene regulation, impacting phenotypic diversity and potentially local adaptation to environments.
  • A study of valley oak (Quercus lobata) used reduced-representation bisulphite sequencing (RRBS) to explore the relationship between climate and DNA methylation variation across different populations.
  • The analysis identified 43 specific single-methylation variants (SMVs) associated with climate factors, primarily related to temperature, suggesting that DNA methylation plays a role in adaptive evolution and environmental response in plants.

Article Abstract

DNA methylation in plants affects transposon silencing, transcriptional regulation and thus phenotypic variation. One unanswered question is whether DNA methylation could be involved in local adaptation of plant populations to their environments. If methylation alters phenotypes to improve plant response to the environment, then methylation sites or the genes that affect them could be a target of natural selection. Using reduced-representation bisulphite sequencing (RRBS) data, we assessed whether climate is associated with variation in DNA methylation levels among 58 naturally occurring, and species-wide samples of valley oak (Quercus lobata) collected across climate gradients. We identified the genomic context of these variants referencing a new draft valley oak genome sequence. Methylation data were obtained for 341 107 cytosines, of which we deemed 57 488 as single-methylation variants (SMVs), found in the CG, CHG and CHH sequence contexts. Environmental association analyses revealed 43 specific SMVs that are significantly associated with any of four climate variables, the majority of which are associated with mean maximum temperature. The 43 climate-associated SMVs tend to occur in or near genes, several of which have known involvement in plant response to environment. Multivariate analyses show that climate and spatial variables explain more overall variance in CG-SMVs among individuals than in SNPs, CHG-SMVs or CHH-SMVs. Together, these results from natural oak populations provide initial evidence for a role of CG methylation in locally adaptive evolution or plasticity in plant response.

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Source
http://dx.doi.org/10.1111/mec.13563DOI Listing

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