Zhou Shan, Han Yang-yang, Chen Yanhui, Kong Xiangzhu, Wang Wei
State Key Laboratory of Crop Biology, Shandong Key Laboratory of Crop Biology, College of Life Sciences, Shandong Agricultural University, Tai'an 271018, Shandong, PR China.
Plastic Surgery Institute, Weifang Medical University, Weifang 261053, Shandong, PR China.
J Plant Physiol. 2015 Jul 1;183:64-74. doi: 10.1016/j.jplph.2015.05.012. Epub 2015 Jun 3.
Expansins are cell wall proteins that are generally considered to be the key regulator of cell wall extension during plant growth. In this study, we used two different wheat (Triticum aestivum L.) cultivars to demonstrate that expansins are involved in wheat leaf growth and response to water stress, by regulating the expansin activity and cell wall susceptibility to expansins. Expansin activity was associated with the relative elongation rate of leaves during leaf development, suggesting their involvement in leaf elongation. Moreover, cell wall extension characteristics and expansin gene transcription were closely involved in the leaf cell elongation region. Water stress restrains leaf growth, but the growth rate of leaves was changed after rehydration, which is consistent with the response of expansin activity to water stress. Meanwhile, increased cell wall susceptibility to expansin by water deficit played an important role in maintaining cell wall extension. Furthermore, the expansin activity in drought-resistant cultivar HF9703 was always higher than that in drought-sensitive cultivar 921842 under water stress condition, which may be correlated with the higher expansin gene expression in HF9703 versus 921842. These data provide evidence for a role of expansins in the growth and response of wheat leaves to water stress.
扩展蛋白是细胞壁蛋白,通常被认为是植物生长过程中细胞壁伸展的关键调节因子。在本研究中,我们使用了两个不同的小麦(Triticum aestivum L.)品种来证明,扩展蛋白通过调节扩展蛋白活性和细胞壁对扩展蛋白的敏感性,参与小麦叶片生长和对水分胁迫的响应。扩展蛋白活性与叶片发育过程中叶片的相对伸长率相关,表明它们参与叶片伸长。此外,细胞壁伸展特性和扩展蛋白基因转录密切参与叶片细胞伸长区域。水分胁迫抑制叶片生长,但复水后叶片生长速率发生变化,这与扩展蛋白活性对水分胁迫的响应一致。同时,水分亏缺导致细胞壁对扩展蛋白的敏感性增加,在维持细胞壁伸展方面发挥了重要作用。此外,在水分胁迫条件下,抗旱品种HF9703的扩展蛋白活性始终高于干旱敏感品种921842,这可能与HF9703相对于921842中更高的扩展蛋白基因表达有关。这些数据为扩展蛋白在小麦叶片生长和对水分胁迫的响应中的作用提供了证据。