Department of Plant Sciences, School of Life Sciences, University of Hyderabad, Hyderabad, 500046, Telangana, India.
Department of Plant Sciences, School of Life Sciences, University of Hyderabad, Hyderabad, 500046, Telangana, India; Agri Biotech Foundation, P.J.T.S.Agricultural University Campus, Rajendranagar, Hyderabad, 500030, Telangana, India.
Plant Sci. 2021 Jan;302:110718. doi: 10.1016/j.plantsci.2020.110718. Epub 2020 Oct 17.
Our previous study demonstrated that the expression of GhNAC4, a NAC transcription factor from cotton, was induced by abiotic stresses and abscisic acid (ABA). In the present study, we investigated the molecular mechanisms underlying ABA and stress response of GhNAC4. Overexpression of GhNAC4 in transgenic tobacco conferred tolerance to salinity and drought treatments with associated enhanced expression of several stress-responsive marker genes. GhNAC4 is a protein that is translocated to the nucleus where it exhibits transcriptional activation property and also forms homo-dimers. In this study, we also investigated the domains essential for the biochemical functions of GhNAC4. We developed transgenic tobacco plants overexpressing the GhNAC4 NAC-domain and the transcriptional regulatory (TR) domain separately. NAC-domain transgenics showed hypersensitivity to exogenous ABA while TR-domain transgenics exhibited reduced sensitivity. Abiotic stress assays indicated that transgenic plants expressing both the domains separately were more tolerant than wild type plants with the NAC-domain transgenics showing increased tolerance as compared to TR-domain transgenics. Expression analysis revealed that various stress-responsive genes were upregulated in both NAC-domain and TR-domain transgenics under salinity and drought treatments. These results suggest that the stress tolerance ability of GhNAC4 is associated with both the component domains while the ABA responsiveness is largely associated with N-terminal NAC-domain.
我们之前的研究表明,棉花 NAC 转录因子 GhNAC4 的表达受非生物胁迫和脱落酸(ABA)诱导。在本研究中,我们研究了 GhNAC4 对 ABA 和胁迫反应的分子机制。GhNAC4 在转基因烟草中的过表达赋予了对盐和干旱处理的耐受性,同时伴随几个胁迫响应标记基因的增强表达。GhNAC4 是一种可转移到核内的蛋白质,在核内具有转录激活特性,并形成同源二聚体。在这项研究中,我们还研究了 GhNAC4 生化功能所必需的结构域。我们开发了分别过表达 GhNAC4 NAC 结构域和转录调控(TR)结构域的转基因烟草植物。NAC 结构域转基因植物对外源 ABA 表现出超敏反应,而 TR 结构域转基因植物则表现出敏感性降低。非生物胁迫试验表明,分别表达两个结构域的转基因植物比野生型植物更耐受,NAC 结构域转基因植物的耐受性比 TR 结构域转基因植物更高。表达分析显示,在盐和干旱处理下,NAC 结构域和 TR 结构域转基因植物中的各种胁迫响应基因都被上调。这些结果表明,GhNAC4 的胁迫耐受能力与两个结构域都有关,而 ABA 响应性主要与 N 端 NAC 结构域有关。