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[渗透胁迫下不同抗旱性小麦品种幼苗铵同化的差异]

[Difference in seedlings ammonium assimilation of wheat cultivars with different drought resistance under osmotic stress].

作者信息

Zhang Hui-Na, Wang Zhi-Qiang, Cui Guo-Jin, Lin Tong-Bao

机构信息

Ministry of Education Key Laboratory for Crop Growth and Development Regulation, College of Agronomy, Henan Agricultural University, Zhengzhou 450002, China.

出版信息

Ying Yong Sheng Tai Xue Bao. 2009 Oct;20(10):2406-10.

Abstract

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.

摘要

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。

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