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DNA Hypomethylation Activates the RpMYB2‐Centred Gene Network to Enhance Regeneration of Adventitious Roots

DNA甲基化 生物 表观遗传学 再生(生物学) 亚硫酸氢盐测序 甲基化 转录组 细胞生物学 基因 遗传学 分子生物学 基因表达
作者
Syed Sarfaraz Hussain,Yapeng Li,Jie Liu,Manzar Abbas,Quanzi Li,Houyin Deng,Sammar Abbas,Kunjin Han,Juan Han,Yuhan Sun,Yun Li
出处
期刊:Plant Cell and Environment [Wiley]
被引量:1
标识
DOI:10.1111/pce.15236
摘要

ABSTRACT Plants, being immobile, are exposed to environmental adversities such as wind, snow and animals that damage their structure, making regeneration essential for their survival. The adventitious roots (ARs) primarily emerge from a detached explant to uptake nutrients; therefore, the molecular network involved in their regeneration needs to be explored. DNA methylation, a key epigenetic mark, influences molecular pathways, and recent studies suggested its role in regeneration. In our research, the application of 5‐azacytidine (5‐azaC), an inhibitor of DNA methylation, caused the earlier initiation and development of root primordia and consequently enhanced the AR regeneration rate in Robinia psuedoacacia L (black locust). The whole‐genome bisulfite sequencing (WGBS) revealed a decrease in global methylation and an increase in hypomethylated cytosine sites and regions across all contexts including CHH, CHG and mergedCG caused transcriptional variations in 5‐azaC‐treated sample. The yeast two‐hybrid (Y2H) assay revealed a RpMYB2 ‐centred network of transcriptionally activated transcription factors (TFs) including RpWRKY23 , RpGATA23 , RpSPL16 and other genes like RpSDP , RpSS1 , RpBEN1 , RpGULL05 and RpCUV with nuclear localization suggesting their potential co‐localization. Additionally, yeast one‐hybrid (Y1H) assay showed the interaction of RpMYB2 interactors, RpGATA23 and RpWRKY23, with promoters of RpSK6 and RpCDC48 , and luciferase reporting assay (LRA) validated their binding with RpSK6 . Our results revealed that hypomethylation‐mediated transcriptomic modifications activated the RpMYB2 ‐centred gene network to enhance AR regeneration in black locust hypocotyl cuttings. These findings pave the way for genetic modification to improve plant regeneration ability and increase wood production while withstanding environmental damage.
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