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Alternative Pathway is Involved in Nitric Oxide-Enhanced Tolerance to Cadmium Stress in Barley Roots

机译:大麦根系对一氧化氮的耐受性与耐氧化氮的途径有关

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摘要

Alternative pathway (AP) has been widely accepted to be involved in enhancing tolerance to various environmental stresses. In this study, the role of AP in response to cadmium (Cd) stress in two barley varieties, highland barley (Kunlun14) and barley (Ganpi6), was investigated. Results showed that the malondialdehyde (MDA) content and electrolyte leakage (EL) level under Cd stress increased in two barley varieties. The expressions of alternative oxidase ( ) genes (mainly ), AP capacity (V ), and AOX protein amount were clearly induced more in Kunlun14 under Cd stress, and these parameters were further enhanced by applying sodium nitroprussid (SNP, a NO donor). Moreover, H O and O contents were raised in the Cd-treated roots of two barley varieties, but they were markedly relieved by exogenous SNP. However, this mitigating effect was aggravated by salicylhydroxamic acid (SHAM, an AOX inhibitor), suggesting that AP contributes to NO-enhanced Cd stress tolerance. Further study demonstrated that the effect of SHAM application on reactive oxygen species (ROS)-related scavenging enzymes and antioxidants was minimal. These observations showed that AP exerts an indispensable function in NO-enhanced Cd stress tolerance in two barley varieties. AP was mainly responsible for regulating the ROS accumulation to maintain the homeostasis of redox state.
机译:替代途径(AP)已被广泛接受,涉及增强对各种环境压力的耐受性。在这项研究中,研究了AP对两种大麦品种(高地大麦(Kunlun14)和大麦(Ganpi6))对镉(Cd)胁迫的响应作用。结果表明,两个大麦品种在镉胁迫下丙二醛(MDA)含量和电解质泄漏(EL)水平均升高。在Cd胁迫下,Kunlun14明显诱导了交替氧化酶()基因(主要是)基因的表达,AP容量(V)和AOX蛋白的表达,并通过施用亚硝普钠(NO)进一步增强了这些参数。此外,两个大麦品种经Cd处理的根中的H O和O含量均升高,但外源SNP显着减轻了它们的含量。但是,水杨基异羟肟酸(SHAM,一种AOX抑制剂)会加剧这种缓解作用,表明AP有助于NO增强Cd胁迫耐受性。进一步的研究表明,SHAM施用对活性氧(ROS)相关的清除酶和抗氧化剂的影响极小。这些观察结果表明,AP在两个大麦品种的NO增强Cd胁迫耐性中发挥不可或缺的功能。 AP主要负责调节ROS的积累以维持氧化还原状态的稳态。

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