State Key Laboratory of Crop Genetics and Germplasm Enhancement, Hybrid Cotton R & D Engineering Research Center, MOE, Nanjing Agricultural University, Nanjing, 210095, Jiangsu Province, People's Republic of China.
Plant Mol Biol. 2015 Jan;87(1-2):47-67. doi: 10.1007/s11103-014-0260-3. Epub 2014 Oct 21.
Plant annexins are members of a diverse, multigene protein family that has been associated with a variety of cellular processes and responses to abiotic stresses. GhAnn1, which encodes a putative annexin protein, was isolated from a cotton (Gossypium hirsutum L. acc 7235) cDNA library. Tissue-specific expression showed that GhAnn1 is expressed at differential levels in all tissues examined and strongly induced by various phytohormones and abiotic stress. In vivo and in vitro subcellular localization suggested that GhAnn1 is located in the plasma membrane. In response to drought and salt stress, transgenic cotton plants overexpressing GhAnn1 showed significantly higher germination rates, longer roots, and more vigorous growth than wild-type plants. In addition, plants overexpressing GhAnn1 had higher total chlorophyll content, lower lipid peroxidation levels, increased peroxidase activities, and higher levels of proline and soluble sugars, all of which contributed to increased salt and drought stress tolerance. However, transgenic cotton plants in which the expression of GhAnn1 was suppressed showed the opposite results compared to the overexpressing plants. These findings demonstrated that GhAnn1 plays an important role in the abiotic stress response, and that overexpression of GhAnn1 in transgenic cotton improves salt and drought tolerance.
植物 annexins 是一个多样化的、多基因蛋白家族的成员,与多种细胞过程和对非生物胁迫的反应有关。GhAnn1 是从棉花(Gossypium hirsutum L. acc 7235)cDNA 文库中分离出来的,它编码一种假定的 annexin 蛋白。组织特异性表达表明,GhAnn1 在所有检测到的组织中以不同水平表达,并被各种植物激素和非生物胁迫强烈诱导。体内和体外亚细胞定位表明,GhAnn1 位于质膜上。在干旱和盐胁迫下,过表达 GhAnn1 的转基因棉花植物表现出明显更高的发芽率、更长的根和更旺盛的生长,而野生型植物则相反。此外,过表达 GhAnn1 的植物具有更高的总叶绿素含量、更低的脂质过氧化水平、更高的过氧化物酶活性和更高的脯氨酸和可溶性糖水平,所有这些都有助于提高盐和干旱胁迫耐受性。然而,与过表达植物相比,抑制 GhAnn1 表达的转基因棉花植物表现出相反的结果。这些发现表明,GhAnn1 在非生物胁迫反应中发挥重要作用,过表达 GhAnn1 可提高转基因棉花的耐盐性和耐旱性。