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硅:一种双重协同作用,可调节作物在非生物胁迫条件下的生长和激素信号转导。

Silicon: a duo synergy for regulating crop growth and hormonal signaling under abiotic stress conditions.

机构信息

a School of Applied Biosciences, Kyungpook National University , Daegu , Republic of Korea.

b Division of Plant Sciences and National Center for Soybean Biotechnology , University of Missouri-Columbia , MO , USA , and.

出版信息

Crit Rev Biotechnol. 2016 Dec;36(6):1099-1109. doi: 10.3109/07388551.2015.1084265. Epub 2015 Sep 18.

Abstract

Abiotic stresses, such as salinity, heavy metals and drought, are some of the most devastating factors hindering sustainable crop production today. Plants use their own defensive strategies to cope with the adverse effects of these stresses, via the regulation of the expression of essential phytohormones, such as gibberellins (GA), salicylic acid (SA), jasmonates (JA), abscisic acid (ABA) and ethylene (ET). However, the efficacy of the endogenous defensive arsenals of plants often falls short if the stress persists over an extended period. Various strategies are developed to improve stress tolerance in plants. For example, silicon (Si) is widely considered to possess significant potential as a substance which ameliorate the negative effects of abiotic stresses, and improves plant growth and biomass accumulation. This review aims to explain how Si application influences the signaling of the endogenous hormones GA, SA, ABA, JA and ET during salinity, wounding, drought and metal stresses in crop plants. Phytohormonal cross talk plays an important role in the regulation of induced defences against stress. However, detailed molecular and proteomic research into these interactions is needed in order to identify the underlying mechanisms of stress tolerance that is imparted by Si application and uptake.

摘要

非生物胁迫,如盐度、重金属和干旱,是当今阻碍可持续作物生产的最具破坏性因素之一。植物通过调节必需植物激素(如赤霉素(GA)、水杨酸(SA)、茉莉酸(JA)、脱落酸(ABA)和乙烯(ET))的表达,利用自身的防御策略来应对这些胁迫的不利影响。然而,如果胁迫持续时间过长,植物自身的防御机制的效果往往会不尽如人意。人们开发了各种策略来提高植物的抗胁迫能力。例如,硅(Si)被广泛认为具有很大的潜力,可以减轻非生物胁迫的负面影响,并提高植物的生长和生物量积累。本综述旨在解释 Si 应用如何影响作物在盐胁迫、创伤、干旱和金属胁迫下内源激素 GA、SA、ABA、JA 和 ET 的信号转导。植物激素的交叉对话在诱导防御对胁迫的调控中起着重要作用。然而,需要对这些相互作用进行详细的分子和蛋白质组学研究,以确定 Si 应用和吸收赋予的胁迫耐受性的潜在机制。

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