Tang Yuehui, Wang Xiaohui, Wang Yaoyao, Xie Jiatong, Zhang Ruoyu, Liu Tengfei, Jia Sainan, Bao Xinxin
College of Life Science and Agronomy, Zhoukou Normal University, Zhoukou, Henan, China.
State Key Laboratary of Crop Stress Adaptation and Improvement, Henan University, Zhengzhou, Henan, China.
BMC Genomics. 2025 Apr 11;26(1):366. doi: 10.1186/s12864-025-11566-1.
The HD-Zip family of plant-specific transcription factors coordinates developmental processes and abiotic stress adaptation, including drought tolerance in bioenergy crops such as physic nut. Although HD-Zip proteins are known regulators of stress responses, the functional roles of physic nut HD-Zip genes in drought adaptation remain uncharacterized.
In this study, we functionally characterized JcHDZ25, a drought-inducible HD-Zip I gene from physic nut, which is predominantly expressed in roots and upregulated by ABA and drought. Subcellular localization and transcriptional activity assays confirmed that JcHDZ25 localized to the nucleus and exhibited intrinsic transcriptional activation. Transgenic rice overexpressing JcHDZ25 displayed enhanced drought tolerance and ABA sensitivity compared to wild-type plants. Under drought stress, JcHDZ25-overexpressing lines showed significantly higher proline content, elevated SOD and CAT activities, and reduced electrolyte leakage and MDA accumulation relative to wild-type controls. Furthermore, transgenic plants showed higher expression of abiotic stress-responsive genes (OsAPX2, OsCATA, OsLEA3, OsP5 CS, OsDREB2 A, OsADC1) and ABA pathway-related genes (OsNCED3, OsRD29 A) under drought stress compared to wild-type plants.
JcHDZ25 positively regulates drought tolerance in rice possibly through an ABA-dependent transcriptional regulation, providing mechanistic insights into physic nut's drought adaptation and highlighting its potential as a genetic resource for engineering stress-resilient crops.
植物特有的转录因子HD-Zip家族协调发育过程和非生物胁迫适应性,包括麻疯树等能源作物的耐旱性。尽管HD-Zip蛋白是已知的胁迫反应调节因子,但麻疯树HD-Zip基因在干旱适应中的功能作用仍未明确。
在本研究中,我们对麻疯树中一个干旱诱导的HD-Zip I基因JcHDZ25进行了功能鉴定,该基因主要在根中表达,并受脱落酸(ABA)和干旱上调。亚细胞定位和转录活性分析证实JcHDZ25定位于细胞核并具有内在的转录激活活性。与野生型植株相比,过表达JcHDZ25的转基因水稻表现出增强的耐旱性和ABA敏感性。在干旱胁迫下,与野生型对照相比,过表达JcHDZ25的株系脯氨酸含量显著更高,超氧化物歧化酶(SOD)和过氧化氢酶(CAT)活性升高,电解质渗漏和丙二醛(MDA)积累减少。此外,与野生型植株相比,转基因植株在干旱胁迫下非生物胁迫响应基因(OsAPX2、OsCATA、OsLEA3、OsP5CS、OsDREB2A、OsADC1)和ABA途径相关基因(OsNCED3、OsRD29A)的表达更高。
JcHDZ25可能通过ABA依赖的转录调控正向调节水稻的耐旱性,为麻疯树的干旱适应提供了机制性见解,并突出了其作为培育抗逆作物的遗传资源的潜力。