Zhang Jinfeng, Peng Manqing, Chen Peizhen, Yao Sheng, He Yuan, Wang Dengbao, Agassin Romaric Hippolyte, Ji Kongshu
State Key Laboratory of Tree Genetics and Breeding, Key Laboratory of Forestry Genetics & Biotechnology of Ministry of Education, Co-Innovation Center for Sustainable Forestry in Southern China, Nanjing Forestry University, Nanjing 210037, China.
Int J Mol Sci. 2024 Dec 31;26(1):277. doi: 10.3390/ijms26010277.
The basic helix-loop-helix (bHLH) family members are involved in plant growth and development, physiological metabolism, and various stress response processes. is a major turpentine-producing and wood-producing tree in seasonally dry areas of southern China. Its economic and ecological values are well known. The forestry industry holds it in exceptionally high regard. Drought severely limits the growth and productivity of , and the functional role of in drought stress is not clear. Therefore, was cloned from and its bioinformation was analyzed. Subcellular mapping of the gene was performed. The biological function of overexpression in × was studied. The results show that the drought tolerance of -overexpressed poplar was significantly improved, which may be due to the increase in water use efficiency and reactive oxygen species (ROS) accumulation under drought stress. In an ethylene-responsive manner, PmERF71 interacted with the PmbHLH58 protein, which was found by yeast two-hybridization. We further demonstrated that the drought-induced transcription factor increased the expression of key enzyme genes in ABA receptor family genes in -overexpressing poplar lines (OE). These findings provide new insights into transcriptional regulation mechanisms related to drought stress and will promote the progression of the genetic improvement and plantation development of .
基本螺旋-环-螺旋(bHLH)家族成员参与植物的生长发育、生理代谢以及各种胁迫响应过程。[具体树种名称]是中国南方季节性干旱地区主要的产松节油和木材的树种。其经济和生态价值众所周知。林业产业对其高度重视。干旱严重限制了[具体树种名称]的生长和生产力,且其在干旱胁迫中的功能作用尚不清楚。因此,从[具体树种名称]中克隆了[相关基因名称]并对其生物信息进行了分析。对该基因进行了亚细胞定位。研究了[相关基因名称]在[具体杂交杨树品种名称]×[具体杂交杨树品种名称]中过表达的生物学功能。结果表明,过表达[相关基因名称]的杨树耐旱性显著提高,这可能是由于干旱胁迫下水分利用效率的提高和活性氧(ROS)积累增加所致。通过酵母双杂交发现,PmERF71以乙烯响应方式与PmbHLH58蛋白相互作用。我们进一步证明,干旱诱导的[相关转录因子名称]转录因子增加了过表达[相关基因名称]的杨树品系(OE)中ABA受体家族基因关键酶基因的表达。这些发现为与干旱胁迫相关的转录调控机制提供了新的见解,并将促进[具体树种名称]的遗传改良和种植发展进程。