College of Life Science, Henan Agricultural University, Zhengzhou, PR China.
PLoS One. 2013 Jul 24;8(7):e69787. doi: 10.1371/journal.pone.0069787. Print 2013.
ATPase associated with various cellular activities (AAA) proteins are important regulators involved in diverse cellular functions. To date, the molecular mechanisms of AAA proteins involved in response to salt and drought stresses in plants are largely unknown. In this study, a putative SKD1 (suppressor of K(+) transport growth defect 1) ortholog from Zea mays (ZmSKD1), which encodes a putative AAA protein, was isolated. The transcript levels of ZmSKD1 were higher in aerial tissues and were markedly up-regulated by salt or drought stress. Over-expression of ZmSKD1 in tobacco plants enhanced their tolerances not only to salt but to drought. Moreover, reactive oxygen species accumulations in ZmSKD1 transgenic lines were relative less than those in wild-type plants during salt or PEG-induced water stress. The interaction between ZmSKD1 and NtLIP5 (Lyst-Interacting Protein 5 homolog from Nicotiana tabacum) was confirmed by both yeast two-hybrid and immuno-precipitation assays; moreover, the α-helix-rich domain in the C-terminus of ZmSKD1 was identified to be required for its interaction with NtLIP5 using truncation mutations. Collectively, these data demonstrate that ZmSKD1could be involved in salt and drought stress responses and its over-expression enhances salt or drought stress tolerance possibly through interacting with LIP5 in tobacco. This study may facilitate our understandings of the biological roles of SKD1-mediated ESCRT pathway under stress conditions in higher plants and accelerate genetic improvement of crop plants tolerant to environmental stresses.
ATP 酶相关的各种细胞活动 (AAA) 蛋白是参与多种细胞功能的重要调节剂。迄今为止,植物中参与盐和干旱胁迫反应的 AAA 蛋白的分子机制在很大程度上尚不清楚。在这项研究中,从玉米 (ZmSKD1) 中分离出一个假定的 SKD1(K+转运生长缺陷 1 的抑制因子)同源物,它编码一个假定的 AAA 蛋白。ZmSKD1 的转录水平在气生组织中较高,并明显受到盐或干旱胁迫的上调。在烟草植物中过表达 ZmSKD1 不仅增强了它们对盐的耐受性,而且增强了它们对干旱的耐受性。此外,在盐或 PEG 诱导的水分胁迫下,ZmSKD1 转基因系中的活性氧积累相对少于野生型植物。ZmSKD1 与 NtLIP5(来自烟草的 Lyst-Interacting Protein 5 同源物)之间的相互作用通过酵母双杂交和免疫沉淀实验得到证实;此外,使用截短突变鉴定出 ZmSKD1 中 C 末端富含 α-螺旋的结构域是其与 NtLIP5 相互作用所必需的。总的来说,这些数据表明 ZmSKD1 可能参与盐和干旱胁迫反应,其过表达增强盐或干旱胁迫耐受性可能是通过与烟草中的 LIP5 相互作用。这项研究可能有助于我们理解 SKD1 介导的 ESCRT 途径在高等植物胁迫条件下的生物学作用,并加速对环境胁迫具有耐受性的作物植物的遗传改良。