Dynamic DNA methylation modifications in the cold stress response of cassava
Cassava, a crucial tropical crop, faces challenges from cold stress, necessitating an exploration of its molecular response. Here, we investigated the role of DNA methylation in moderating the response to moderate cold stress (10 °C) in cassava. Using whole-genome bisulfite sequencing, we examined D...
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Veröffentlicht in: | Genomics (San Diego, Calif.) Calif.), 2024-07, Vol.116 (4), p.110871, Article 110871 |
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Zusammenfassung: | Cassava, a crucial tropical crop, faces challenges from cold stress, necessitating an exploration of its molecular response. Here, we investigated the role of DNA methylation in moderating the response to moderate cold stress (10 °C) in cassava. Using whole-genome bisulfite sequencing, we examined DNA methylation patterns in leaf blades and petioles under control conditions, 5 h, and 48 h of cold stress. Tissue-specific responses were observed, with leaf blades exhibiting subtle changes, while petioles displayed a pronounced decrease in methylation levels under cold stress. We identified cold stress-induced differentially methylated regions (DMRs) that demonstrated both tissue and treatment specificity. Importantly, these DMRs were enriched in genes with altered expression, implying functional relevance. The cold-response transcription factor ERF105 associated with DMRs emerged as a significant and conserved regulator across tissues and treatments. Furthermore, we investigated DNA methylation dynamics in transposable elements, emphasizing the sensitivity of MITEs with bHLH binding motifs to cold stress. These findings provide insights into the epigenetic regulation of response to cold stress in cassava, contributing to an understanding of the molecular mechanisms underlying stress adaptation in this tropical plant.
•Cassava displayed tissue-specific DNA methylation responses to cold stress.•Integration of DNA methylation and gene expression data revealed intricate correlations.•The transcription factor ERF105 is a significant and conserved regulator across tissues and treatments under cold stress.•Transposable elements, particularly MITEs with bHLH binding motifs, showed sensitivity to cold stress. |
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ISSN: | 0888-7543 1089-8646 1089-8646 |
DOI: | 10.1016/j.ygeno.2024.110871 |