ZmRL6正调控玉米抗旱性的分子机制分析。

Pengyu Zhang, Tongchao Wang, Liru Cao, Zhixin Jiao, Lixia Ku, Dandan Dou, Zhixue Liu, Jiaxu Fu, Xiaowen Xie, Yingfang Zhu, Leelyn Chong, Li Wei
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引用次数: 0

摘要

MYB相关基因是MYB转录因子家族的一个亚类,在影响植物生长发育的次生代谢和胁迫反应等生物过程中发挥重要作用。然而,myb相关基因在玉米干旱胁迫响应中的调控作用尚不清楚。在这项研究中,我们发现1R-MYB基因ZmRL6编码一个96个氨基酸的蛋白,并且是高度干旱诱导的。我们还发现它在大麦(Hordeum vulgare L.)和Aegilops tauschii中都有保存。此外,我们观察到ZmRL6的过表达可以增强耐旱性,而通过CRISPR-Cas9敲除ZmRL6会导致干旱过敏。DAP-seq分析还发现,ZmRL6靶基因的启动子中主要含有ACCGTT、TTACCAAAC和AGCCCGAG基序。通过结合RNA-seq和DAP-seq结果,我们随后确定了8个新的ZmRL6靶基因,这些基因参与玉米激素信号转导、糖代谢、木质素合成和氧化还原信号/氧化应激。总的来说,我们的数据为ZmRL6在玉米干旱响应中的作用提供了见解。
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Molecular mechanism analysis of ZmRL6 positively regulating drought stress tolerance in maize.

MYB-related genes, a subclass of MYB transcription factor family, have been documented to play important roles in biological processes such as secondary metabolism and stress responses that affect plant growth and development. However, the regulatory roles of MYB-related genes in drought stress response remain unclear in maize. In this study, we discovered that a 1R-MYB gene, ZmRL6, encodes a 96-amino acid protein and is highly drought-inducible. We also found that it is conserved in both barley (Hordeum vulgare L.) and Aegilops tauschii. Furthermore, we observed that overexpression of ZmRL6 can enhance drought tolerance while knock-out of ZmRL6 by CRISPR-Cas9 results in drought hypersensitivity. DAP-seq analyses additionally revealed the ZmRL6 target genes mainly contain ACCGTT, TTACCAAAC and AGCCCGAG motifs in their promoters. By combining RNA-seq and DAP-seq results together, we subsequently identified eight novel target genes of ZmRL6 that are involved in maize's hormone signal transduction, sugar metabolism, lignin synthesis, and redox signaling/oxidative stress. Collectively, our data provided insights into the roles of ZmRL6 in maize's drought response.

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