油菜素甾醇
生物
叶柄(昆虫解剖学)
耐旱性
MYB公司
油菜素内酯
转基因作物
交易激励
脱落酸
植物
转基因
非生物胁迫
萎蔫
细胞生物学
转录因子
拟南芥
基因
生物化学
突变体
植物生长
膜翅目
作者
Limiao Chen,Hongli Yang,Yisheng Fang,Wei Guo,Haifeng Chen,Xiaojuan Zhang,Wenjun Dai,Shuilian Chen,Qingnan Hao,Songli Yuan,Chanjuan Zhang,Yi Huang,Zhihui Shan,Zengling Yang,Dezhen Qiu,Xiaorong Liu,Lam‐Son Phan Tran,Xinan Zhou,Dong Cao
摘要
MYB transcription factors (TFs) have been reported to regulate the biosynthesis of secondary metabolites, as well as to mediate plant adaption to abiotic stresses, including drought. However, the roles of MYB TFs in regulating plant architecture and yield potential remain poorly understood. Here, we studied the roles of the dehydration-inducible GmMYB14 gene in regulating plant architecture, high-density yield and drought tolerance through the brassinosteroid (BR) pathway in soybean. GmMYB14 was shown to localize to nucleus and has a transactivation activity. Stable GmMYB14-overexpressing (GmMYB14-OX) transgenic soybean plants displayed a semi-dwarfism and compact plant architecture associated with decreased cell size, resulting in a decrease in plant height, internode length, leaf area, leaf petiole length and leaf petiole angle, and improved yield in high density under field conditions. Results of the transcriptome sequencing suggested the involvement of BRs in regulating GmMYB14-OX plant architecture. Indeed, GmMYB14-OX plants showed reduced endogenous BR contents, while exogenous application of brassinolide could partly rescue the phenotype of GmMYB14-OX plants. Furthermore, GmMYB14 was shown to directly bind to the promoter of GmBEN1 and up-regulate its expression, leading to reduced BR content in GmMYB14-OX plants. GmMYB14-OX plants also displayed improved drought tolerance under field conditions. GmBEN1 expression was also up-regulated in the leaves of GmMYB14-OX plants under polyethylene glycol treatment, indicating that the GmBEN1-mediated reduction in BR level under stress also contributed to drought/osmotic stress tolerance of the transgenic plants. Our findings provided a strategy for stably increasing high-density yield and drought tolerance in soybean using a single TF-encoding gene.
科研通智能强力驱动
Strongly Powered by AbleSci AI