Zhang Hui-Na, Wang Zhi-Qiang, Cui Guo-Jin, Lin Tong-Bao
Ministry of Education Key Laboratory for Crop Growth and Development Regulation, College of Agronomy, Henan Agricultural University, Zhengzhou 450002, China.
Ying Yong Sheng Tai Xue Bao. 2009 Oct;20(10):2406-10.
Taking wheat cultivars drought-resistant Luohan-6 and drought-sensitive Zhoumai-18 as test objects, their seedlings ammonium assimilation enzyme activities and related parameters were determined under osmotic stress. The plant biomass had an obvious decrease under osmotic stress, with a larger decrement for Zhoumai-18 than Luohan-6. Osmotic stress increased the plant ammonium content, especially for Zhoumai-18. The glutamine synthetase (GS) activity varied with wheat cultivars. For Luohan-6, the GS activity increased significantly under low osmotic stress but decreased under high osmotic stress; while for Zhoumai-18, the GS activity decreased with increasing osmotic stress. The NADH-dependent glutamate dehydrogenase (NADH-GDH) increased with increasing osmotic stress, with a marked increment under low osmotic stress for Zhoumai-18, and under high osmotic stress for Luohan-6. The NAD(+)-dependent glutamate dehydrogenase (NAD(+)-GDH) and NADP-dependent isocitrate dehydrogenase (NADP-ICDH) activities also increased with increasing osmotic stress, with a greater increment of NAD(+)-GDH activity for Zhoumai-18, and of NADP-ICDH activity for Luohan-6. It was suggested that the increased drought resistance of wheat plants could be related to the increased ammonium assimilation resulted from the enhanced GS and NADH-GDH activities under low and high osmotic stress, respectively.
以抗旱小麦品种漯旱6号和干旱敏感型小麦品种周麦18号为试验对象,测定了渗透胁迫下其幼苗铵同化酶活性及相关参数。渗透胁迫下植株生物量明显下降,周麦18号的下降幅度大于漯旱6号。渗透胁迫增加了植株铵含量,尤其是周麦18号。谷氨酰胺合成酶(GS)活性因小麦品种而异。对于漯旱6号,低渗透胁迫下GS活性显著增加,高渗透胁迫下则下降;而对于周麦18号,GS活性随渗透胁迫增强而下降。依赖NADH的谷氨酸脱氢酶(NADH-GDH)随渗透胁迫增强而增加,周麦18号在低渗透胁迫下、漯旱6号在高渗透胁迫下增加显著。依赖NAD(+)的谷氨酸脱氢酶(NAD(+)-GDH)和依赖NADP的异柠檬酸脱氢酶(NADP-ICDH)活性也随渗透胁迫增强而增加,周麦18号的NAD(+)-GDH活性增加幅度更大,漯旱6号的NADP-ICDH活性增加幅度更大。研究表明,小麦植株抗旱性增强可能分别与低渗透胁迫和高渗透胁迫下GS和NADH-GDH活性增强导致铵同化增加有关。