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ABA具有调节植物生长发育和对环境胁迫做出快速反应的重要功能, 植物内源ABA水平受到ABA合成、代谢及转运等途径的复杂调控。该文综述了近年来植物ABA从头合成、羟基化代谢、可逆糖基化代谢及ABA转运等领域的最新研究进展, 重点讨论ABA合成与代谢基因的表达调控机制, 并展望了今后的研究方向。  相似文献   

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李茜茜  汪晓峰 《广西植物》2009,29(3):353-359
脱落酸(ABA)在植物的生长发育和环境胁迫响应等过程中具有重要作用。ABA合成与分解代谢的动态平衡共同调控植物内源ABA水平。ABA8′位甲基羟基化途径是高等植物内源ABA代谢的主要途径;8′-羟化酶是该代谢途径的关键酶,属于P450酶系。生物化学和基因组学研究表明,拟南芥CYP707A家族基因编码8′-羟化酶,该基因家族广泛存在于高等植物中,调控植物内源ABA代谢,介导ABA相关的生理生化过程。本文综述了ABA分解代谢的基本途径,详细概述了ABA8′位甲基羟基化途径及该代谢途径的关键酶8′-羟化酶。同时介绍了8′-羟化酶编码基因-CYP707A家族基因的生物学特征和功能。  相似文献   

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ABA 与植物胁迫抗性   总被引:1,自引:0,他引:1  
吴耀荣  谢旗 《植物学报》2006,23(5):511-518
ABA是一种重要的植物激素, 受到生物胁迫和非生物胁迫的调控, 在植物对胁迫耐受性和抗性中发挥着重要作用。本文着重阐述了植物胁迫对ABA的生物合成和代谢的调控、ABA在调控气孔关闭和调控基因表达从而调控植物耐逆性方面的作用, 以及植物胁迫信号转导途径间的联系和交叉。  相似文献   

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MAPK级联途径参与ABA信号转导调节的植物生长发育过程   总被引:2,自引:0,他引:2  
植物激素ABA参与调控植物生长发育和生理代谢以及多种胁迫应答过程,促分裂原活化蛋白激酶(MAPK)级联途径应答于多种生物和非生物胁迫,广泛参与调控植物的生长发育。MAPK级联途径与ABA信号转导协同作用参与调控植物种子萌发、气孔运动和生长发育,本文主要归纳了植物中受ABA调控激活的MAPK级联途径成员,阐述了它们参与ABA信号转导调控植物生理反应和生长发育的过程,并对MAPK级联途径与ABA信号转导的研究方向作出了展望,指出对MAPK下游底物的筛选是完善MAPK级联途径的重要组成部分。  相似文献   

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本文检测了用基因芯片筛选出水稻种子被低能N+辐照后引起的差异表达的ABA代谢和信号途径相关基因。结果显示,与ABA合成相关的ZDS、Lyc-β、ZEP、NCED、SDR这五种酶的基因表达量均为上调;受ABA调控的的H+-ATPase、NR、Rubisco的基因表达变化显著;ABA依赖的逆境应答蛋白DREB和ASR的表达量上调;受ABA信号转导调控的蛋白LEA的表达量下调,GAD和P5CS的表达量上调。这些结果表明,6×1017N+·cm-2剂量的辐照可能促进了ABA的合成和幼苗气孔的开放,同时促进了ABA信号系统并激活或抑制了一些相关基因的表达。  相似文献   

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脱水素研究进展   总被引:15,自引:0,他引:15  
脱水素(dehydrin)是植物体内的一种LEA蛋白,能够在植物胚胎发育后期以及逆境下大量表达,广泛存在于植物界。它是具有高度热稳定性的亲水性蛋白,有三类非常保守的区域,即K,Y和S片段。依据这三类片段的组成情况,可将脱水素分为5个基本类别。脱水素可通过多种转运方式定位于植物细胞的不同部位,以行使其功能。其基因的表达存在依赖ABA和不依赖ABA两种途径,并且受到多种环境因素的影响,能稳定细胞膜和许多大分子的结构以避免脱水对细胞造成的伤害。近年来,脱水素的结构和组成、在细胞中的定位及转运、基因的表达与调控、功能与作用机理等方面的研究已取得了很大的进展。  相似文献   

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魏开发  陈娟  陈艳峰  吴凌娟  贾文锁 《遗传》2012,34(3):296-306
从逆境信号感知、ABA合成的触发到ABA水平的动态调控, 是细胞内重要的逆境信号传导途径, 相对于应答ABA的下游信号事件, 该领域研究滞后。研究显示, 根系中ZEP、限速酶NCED、AtRGS1等合成酶基因及ABA2基因响应胁迫反应上调ABA信号水平。而7′-, 8′-, 9′-hydroxylase和糖基转移酶基因受逆境诱导激活, 负调节ABA的积累。同时, 提高的内源ABA信号水平能激活合成酶基因和代谢酶基因的表达。此外, 基因表达和源库动力学分析显示, 叶片ABA动态库的维持依赖根源ABA的持续供应。值得一提的是, miRNA与ABA信号起源及动态水平维持有关。进一步的代谢动力学分析揭示, ABA信号水平受合成酶基因和代谢酶基因表达的协同控制, 多因素共同参与内源ABA信号水平的动态调控。  相似文献   

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Wei KF  Chen J  Chen YF  Wu LJ  Jia WS 《遗传》2012,34(3):296-306
从逆境信号感知、ABA合成的触发到ABA水平的动态调控,是细胞内重要的逆境信号传导途径,相对于应答ABA的下游信号事件,该领域研究滞后。研究显示,根系中ZEP、限速酶NCED、AtRGS1等合成酶基因及ABA2基因响应胁迫反应上调ABA信号水平。而7′-,8′-,9′-hydroxylase和糖基转移酶基因受逆境诱导激活,负调节ABA的积累。同时,提高的内源ABA信号水平能激活合成酶基因和代谢酶基因的表达。此外,基因表达和源库动力学分析显示,叶片ABA动态库的维持依赖根源ABA的持续供应。值得一提的是,miRNA与ABA信号起源及动态水平维持有关。进一步的代谢动力学分析揭示,ABA信号水平受合成酶基因和代谢酶基因表达的协同控制,多因素共同参与内源ABA信号水平的动态调控。  相似文献   

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保卫细胞的ABA信号转导   总被引:1,自引:0,他引:1  
植物激素脱落酸(ABA)调节植物体多种生理过程,尤其在一些逆境条件下,植物体中ABA大量合成,诱导气孔关闭,从而有效地调控植物体内的水分平衡.尽管人们对ABA诱导气孔关闭作用已得到共识,但有关信号转导的细节还很不清楚.该文简要介绍了研究气孔保卫细胞信号转导途径的相关技术以及与ABA信号转导直接相关的ABA受体、第二信使、蛋白质磷酸化和离子通道调节等方面的最新妍究进展.并在前人研究工作的基础上,勾画出气孔保卫细胞ABA、H2O2的信号转导模式图.  相似文献   

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Yang FW  XQ Feng 《Phyton》2015,84(2):444-453
Abscisic acid (ABA) plays a series of significant physiology roles in higher plants including but not limited to promote bud and seed dormancy, accelerate foliage fall, induce stomatal closure, inhibit growth and enhance resistance. Recently, it has been revealed that ABA also has an important regulator role in the growth, development and ripening of fruit. In higher plants ABA is produced from an indirect pathway from the cleavage products of carotenoids. The accumulation of endogenous ABA levels in plants is a dynamic balance controlled by the processes of biosynthesis and catabolism, through the regulation of key ABA biosynthetic gene and enzyme activities. It has been hypothesized that ABA levels could be part of the signal that trigger fruit ripening, and that ABA may play an important role in the regulation of ripening and senescence of both non-climacteric and climacteric fruit. The expensive costs of natural ABA and labile active ABA for its chemical synthesis limit its application in scientific research and agricultural production. These findings that ABA has various of important roles in the regulation of growth and development, quality formation, coloring and softening, ripening and senescence of fruit, are providing opportunities and challenges for Horticultural Science. This is to elucidate the specific mechanism of response and biosynthesis, signal transduction, and receptor recognition of ABA in fruit, employing comprehensive research methods, such as molecular biology, plant physiology and molecular genetics. Further and more in-depth research about ABA has a great, realistic significance for knowing the mechanisms behind the process of fruit ripening.  相似文献   

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Mutant plants deficient in the phytohormone abscisic acid (ABA) are typically unable to control their stomatal behavior appropriately in response to water stress, leading to a “wilty” phenotype. In plant species showing strong seed dormancy, ABA deficiency of the seed results in a second clearly recognizable phenotype, that is, early germination. Mutants selected by means of this latter character are often collectively termed “viviparous.” These two broad classes include mutants that are defective in their ability to synthesize ABA. A number of these genetic lesions have been assigned to specific steps in ABA biosynthesis and have been invaluable in elucidating many important features of the pathway. Most of the genes encoding ABA biosynthetic enzymes have now been cloned and their expression has been studied and manipulated. Genetically modified plants constitutively overexpressing ABA biosynthesis genes have been produced and analyzed over the last 6 years. In some cases these plants have been found to have elevated ABA concentrations, leading to altered stomatal behavior and increased seed dormancy. Genetic manipulation of ABA synthesis in photosynthetic tissues has been most effectively achieved through overexpression of the key rate-limiting biosynthetic enzyme 9-cis-epoxycarotenoid dioxygenase, and downregulation of the major catabolic enzyme ABA 8′-hydroxylase. However in non-photosynthetic tissue manipulation of ABA synthesis is a more complex task because of the limiting supply of xanthophyll precursors. The recent cloning of genes encoding enzymes controlling important pathways of ABA catabolism has been reviewed elsewhere, and so only information relevant to the regulation and manipulation of ABA synthesis, including supply of xanthophyll precursors, is discussed in this review.  相似文献   

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ABA信号转运调节的基因表达与源库动力学分析   总被引:1,自引:0,他引:1  
通过对拟南芥NCED3、AA03及SDR1蛋白亚细胞定位分析及根系和叶片ABA池的动态库变化研究,结果表明气孔运动的有效ABA信号来自于保卫细胞之外,SDR与ABA前体加工和运输有关。胁迫处理后根系合成酶基因转录水平显著高于叶片,但叶片ABA水平是根系的10倍以上,离体叶片和附体叶片ABA含量测定表明,叶片ABA池的形成主要决定于根源ABA的输入。氟啶酮药剂阻断和遮荫实验说明根系ABA池受叶源类胡萝素前体供应影响。叶片ABA水平受根源ABA和叶源类胡萝素前体库双向转运调节,维管束组织系统可能协同和整合了这一复杂调节机制。该结论为逆境ABA信号转递机制研究和操纵内源ABA含量增强植物抗逆性的应用提供相关资料。  相似文献   

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To further our understanding of the greater susceptibility of apical kernels in maize inflorescences to water stress, abscisic acid (ABA) catabolism activity was evaluated in developing kernels with chirally separated (+)-[(3)H]ABA. The predominant pathway of ABA catabolism was via 8'-hydroxylase to form phaseic acid, while conjugation to glucose was minor. In response to water deficit imposed on whole plants during kernel development, ABA accumulated to higher concentrations in apical than basal kernels, while both returned to control levels after rewatering. ABA catabolism activity per gram fresh weight increased about three-fold in response to water stress, but was about the same in apical and basal kernels on a fresh weight basis. ABA catabolism activity was three to four-fold higher in placenta than endosperm, and activity was higher in apical than basal kernels. In vitro incubation tests indicated that glucose did not affect ABA catabolism. We conclude that placenta tissue plays an important role in ABA catabolism, and together with ABA influx and compartmentation, determine the rate of ABA transport into endosperms.  相似文献   

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