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1.
一氧化氮在植物抗病反应中的信号作用   总被引:4,自引:0,他引:4  
近年来的研究发现,一氧化氮(nitic oxide,NO)在植物抗病反应中具有重要作用,本文概述了植物中NO的来源,NO在植物抗病反应中的信号传导作用,NO与植物中其它信号分子之间的相互作用以及NO的研究进展。  相似文献   

2.
一氧化氮在植物对病原物反应中的信号作用   总被引:5,自引:1,他引:4  
一氧化氮(NO)作为一种新型的细胞间和细胞内信息传递的信使分子,在人体与动物的神经、心血管和免疫等系统中的作用已引起人们的普遍关注,它广泛存在于生物界包括植物和微生物中[1]。已证明植物中也存在与哺乳动物类似的一氧化氮合成酶(ni-tric oxide synthase,NOS)[2,3],它摧化合成的NO可影响叶和根的生长、植保素的形成[3,4],在植物生长、发育和抗病反应中起作用。Durner等[2]和Delledonne等[3]最近证明,NO在植物抗病的过敏反应(hypersensi-tive response)中也可作为信号物与活性氧协同作用,激活植物抗病基因表达,参与植物的抗病反应,是过敏反应所必须的。但植物中NO的作用研究还刚开始,前景诱人。本文简要介绍NO在植物抗病反应中的作用及其模式。1 NO作为气体信号分子的作用1.1 NO生物学活性的发现 19世纪医学上就开始用NO的生成剂有机硝酸酯和硝酸甘油治疗心脏缺血,但一直未认识到其本质就是NO在起作用,更未意识到内源NO的存在所起的重要的生物学意义。70年代由于对亚硝胺的致癌作用的研究,人们发现巨噬细胞能被L-精氨酸及NO所激活,而增强巨噬细胞的杀菌和杀肿瘤作用。80年代,Furchgott等发现促进血管扩张的内皮衍生因子就是NO,硝酸甘油的扩血管作用是源于这一功能的活性代谢产物NO。随后,Garth-waite等发现NO在中枢神经系统中起作用,并证实脑细胞中存在一氧化氮合成酶[1,4]。80年代以来,人们通过对血管内皮衍生因子化学本质(即NO的揭示),以及NO在巨噬  相似文献   

3.
一氧化氮在植物体内的来源和功能   总被引:10,自引:0,他引:10  
一氧化氮(nitric oxide,NO)是生物体内重要的活性分子。NO参与了动物体内血管松弛、神经传递及免疫防御反应等一系列生理功能而被认为是可扩散的多功能第二信使。在植物体内NO也是一种广泛存在的信号分子,参与调节了许多重要的生理过程如生长、发育、抗病防御反应、细胞程序性死亡和抗逆反应。对NO在植物体内的来源、信号转导、调节植物生长发育和对胁迫的响应方面所发挥的作用进行了综述,并讨论了其潜在的一些功能。  相似文献   

4.
NO在植物中的调控作用   总被引:13,自引:0,他引:13  
一氧化氮(NO)是一种易扩散的生物活性分子,是生物体内重要的信号分子.植物细胞通过NO合酶、硝酸还原酶、或非生化反应途径产生NO.NO参与植物生长发育调控和对生物与非生物环境胁迫的应答反应,大量证据表明NO是植物防御反应中的关键信使,其信号转导机制也受到越来越多的关注.本文主要通过讨论NO的产生、对植物生长周期的影响、在植物代谢中的信号调节以及参与细胞凋亡来阐述NO在植物中的作用.  相似文献   

5.
一氧化氮(NO)是一种易扩散的生物活性分子,是生物体内重要的信号分子。植物细胞通过NO合酶、硝酸还原酶、或非生化反应途径产生NO。NO参与植物生长发育调控和对生物与非生物环境胁迫的应答反应,大量证据表明NO是植物防御反应中的关键信使,其信号转导机制也受到越来越多的关注。本文主要通过讨论NO的产生、对植物生长周期的影响、在植物代谢中的信号调节以及参与细胞凋亡来阐述NO在植物中的作用。  相似文献   

6.
No是一种易扩散的生物活性分子,是生物体内重要的信号分子。植物细胞通过NO合酶,硝酸还原酶,或非生化反应途径产生NO。NO参与植物生长发育调控和对生物和非生物胁迫的应答反应。主要通过讨论No的产生,对植物生长发育的影响及在抗逆反应中的信号调节来阐述No在植物中的作用。  相似文献   

7.
活性氧与植物抗病反应   总被引:39,自引:0,他引:39  
活性氧的产生是植物抗病最早期的反应之一,称为氧化跃变。本文介绍了植物抗病反应中氧化跃变的生理作用、可能的产生机制、信号传导途径以及与胞外碱性化的关系。  相似文献   

8.
植物抗病反应的信号传导网络   总被引:7,自引:0,他引:7  
植物由抗病基因介导的防卫过程存在一系列生理生化和分子生物学反应,这些反应从病原菌侵染点开始的超敏反应(HR)并延伸到远处组织的系统抗性或获得性抗性(SAR),受制于一种信号传导网络的调控。这个信号系统由抗病蛋白和病原菌非毒性蛋白在一种配体-受体的互作模式下激发,并由信号分子H2O2,NO和系统信号分子SA,JA和乙烯和通过关键调控基因传递和放大,最终诱导一系列防卫反应基因的表达和代谢的变化而产生抗性。植物防卫信号的产生有类似于动物免疫系统因子的介导,并可由非寄主病原菌或诱导子诱发。这些信号途径所产生的广谱抗性为植物抗病基因工程的应用奠定了基础。  相似文献   

9.
一氧化氮(NO)作为一种重要的信号分子,不仅参与植物的种子休眠和萌发以及根的形态建成等生长发育过程,还参与调节植物细胞的气孔运动以及植物抗逆应答反应。该文结合最新研究成果,总结了植物NO信号调控机理的研究进展,主要包括NO合成途径、信号转导途径及其与其它信号分子之间的交叉反应和对植物抗逆的调控作用等。  相似文献   

10.
植物抗病反应的信号传导网络   总被引:4,自引:0,他引:4  
植物由抗病基因介导的防卫过程存在一系列生理生化和分子生物学反应,这些反应从病原菌侵染点开始的超敏反应(HR)并延伸到远处组织的系统抗性或获得性抗性(SAR),受制于一种信号传导网络的调控,这个信号系统由抗病蛋白和病原菌非毒性蛋白在一种配体-受体的互作模式下激发,并由信号分子H2O2,NO和系统信号分子SA,JA和乙烯和通过关键调控基因传递和放大,最终诱导一系列防卫反应基因的表达和代谢的变化而产生抗性。植物防卫信号的产生有类似于动物免疫系统因子的介导,并可由非寄主病原菌或诱导子诱发,这些信号途径所产生的广谱抗性为植物抗病基因工程的应用奠定了基础。  相似文献   

11.
Nitric oxide (NO) is an important signal molecule in stress responses. Accumulation of secondary metabolites often occurs in plants subjected to stresses including various elicitors or signal molecules. NO has been reported to play important roles in elicitor-induced secondary metabolite production in tissue and cell cultures of medicinal plants. Better understanding of NO role in the biosynthesis of such metabolites is very important for optimizing the commercial production of those pharmaceutically significant secondary metabolites. This paper summarizes progress made on several aspects of NO signal leading to the production of plant secondary metabolites, including various abiotic and biotic elicitors that induce NO production, elicitor-triggered NO generation cascades, the impact of NO on growth development and programmed cell death in medicinal plants, and NO-mediated regulation of the biosynthetic pathways of such metabolites. Cross-talks among NO signaling and reactive oxygen species, salicylic acid, and jasmonic acid are discussed. Some perspectives on the application of NO donors for induction of the secondary metabolite accumulation in plant cultures are also presented.  相似文献   

12.
NO在植物生长发育和环境胁迫响应中的作用   总被引:1,自引:0,他引:1  
一氧化氮(NO)是具有生物活性和信号转导作用的气体活性分子,它不仅对植物的许多生命活动如种子萌发、生长和衰老等具有直接的生理调节功能,而且作为防御反应中的关键信使,参与了植物对外界环境胁迫的响应,如干旱胁迫、热胁迫、盐胁迫、UV-B辐射、臭氧胁迫、重金属胁迫、机械损伤以及植物抗病反应。NO与各种激素如乙烯、脱落酸、水杨酸、生长素和细胞分裂素等,在调节植物的生理活动与信号转导方面有明显的协同作用,通过激素起作用可能是植物内源NO作用的机理之一。探明在正常生长状况下植物内源NO对植物生长发育的调控机制及其参与信号转导的生理机制是目前研究的重点。  相似文献   

13.
Nitric oxide (NO) is an important molecule that acts in many tissues to regulate a diverse range of physiological processes. It is becoming apparent that NO is a ubiquitous signal in plants. Since the discovery of NO emission by plants in the 1970s, this gaseous compound has emerged as a major signalling molecule involved in multiple physiological functions. Research on NO in plants has gained significant awareness in recent years and there is increasing indication on the role of this molecule as a key-signalling molecule in plants. The investigations about NO in plants have been concentrated on three main fields: The search of NO or any source of NO generation, effects of exogenous NO treatments, NO transduction pathways. However we have limited information about signal transduction procedures by which NO interaction with cells results in altered cellular activities. This article reviews recent advances in NO synthesis and its signalling functions in plants. First, different sources and biosynthesis of NO in plants, then biological processes involving NO signalling are reviewed. NO signalling relation with cGMP, protein kinases and programmed cell death are also discussed. Besides, NO signalling in plant defense response is also examined. Especially NO signalling between animal and plant systems is compared.  相似文献   

14.
王玮  赵方贵  侯丽霞  车永梅  刘新 《生态学报》2013,33(23):7583-7589
以烟草(Nicotiana tabacum,品种CF90NF)为材料,利用分光光度法和荧光显微技术结合药理学实验,探讨在AM真菌摩西球囊霉(Glomus mosseae,G.m)与烟草共生过程中一氧化氮(nitric oxide, NO)的作用。结果表明,烟草侧根中含有一定水平的内源NO,苗期接种G.m 10天后,烟草根系NO含量显著增加,侧根中的NO荧光强度也在接种后10天达到最强;一定浓度的NO供体硝普钠(sodium nitroprusside,SNP)能促进G.m对烟草的侵染,而NO的清除剂2-4,4,5,5-苯-四甲基咪唑-1-氧-3-氧化物( 2-(4-carboxyphenyl)-4,4,5,5-tetramethylimidazoline-1-oxyl-3-oxidepotassium salt,cPTIO)可明显减弱侧根和菌丝中的NO的荧光强度,降低AM真菌的侵染率,表明NO参与G.m与烟草的共生过程;在G.m与烟草的共生过程中,烟草根系硝酸还原酶(nitrate reductase,NR)活性与Nia-1的表达量明显升高,且NR的抑制剂钨酸钠(sodium tungstate,Na2WO4)可以降低烟草侧根中的荧光强度,但对菌丝中的NO的荧光强度无明显影响。由此推测,来自根系NR途径的NO参与AM真菌与烟草的共生过程,菌丝中可能存在其他来源的NO。  相似文献   

15.
Nitric oxide (NO), first characterized as an endothelium-derived relaxation factor, is involved in diverse cellular processes including neuronal signaling, blood pressure homeostasis, and immune response. Recent studies have also revealed a role for NO as a signaling molecule in plants. As a developmental regulator, NO promotes germination, leaf extension and root growth, and delays leaf senescence and fruit maturation. Moreover, NO acts as a key signal in plant resistance to incompatible pathogens by triggering resistance-associated hypersensitive cell death. In addition, NO activates the expression of several defense genes (e.g. pathogenesis-related genes, phenylalanine ammonialyase, chalcone synthase) and could play a role in pathways leading to systemic acquired resistance.  相似文献   

16.
In the recent times, plants are facing certain types of environmental stresses, which give rise to formation of reactive oxygen species (ROS) such as hydroxyl radicals, hydrogen peroxides, superoxide anions and so on. These are required by the plants at low concentrations for signal transduction and at high concentrations, they repress plant root growth. Apart from the ROS activities, hydrogen sulfide (H2S) and nitric oxide (NO) have major contributions in regulating growth and developmental processes in plants, as they also play key roles as signaling molecules and act as chief plant immune defense mechanisms against various biotic as well as abiotic stresses. H2S and NO are the two pivotal gaseous messengers involved in growth, germination and improved tolerance in plants under stressed and non-stress conditions. H2S and NO mediate cell signaling in plants as a response to several abiotic stresses like temperature, heavy metal exposure, water and salinity. They alter gene expression levels to induce the synthesis of antioxidant enzymes, osmolytes and also trigger their interactions with each other. However, research has been limited to only cross adaptations and signal transductions. Understanding the change and mechanism of H2S and NO mediated cell signaling will broaden our knowledge on the various biochemical changes that occur in plant cells related to different stresses. A clear understanding of these molecules in various environmental stresses would help to confer biotechnological applications to protect plants against abiotic stresses and to improve crop productivity.  相似文献   

17.
Nitric oxide (NO) has received much attention in the recent two decades, equally from human, animal and plant biologists. It was found to play a crucial role in human and animal physiology, immunological reactions and signal transduction. Its ubiquity and versatile properties caught the attention of plant physiologists and biochemists. This work presents an extensive review on the NO presence and action in plants. Various modes of NO synthesis are discussed and the most novel approaches to the elucidation of plant nitric oxide synthase (NOS) structure are presented. This review focuses on the physiological role of NO in regulation of plant growth and development, as well as in the process of gene expression. Special attention is given to the action of NO during abiotic stress and the antioxidant properties of the molecule.  相似文献   

18.
Secondary metabolites not only play important ecological roles in plants but also are important pharmaceutical and source compounds for derivative synthesis. Production of plant secondary metabolites is believed to be controlled by the endogenous signal network of plants. However, the molecular basis is still largely unknown. Here we show that matrine production of Sophora flavescens Ait. cells treated with low levels of jasmonic acid (JA) and nitric oxide (NO) is significantly increased although treatment with low concentrations of JA or NO alone has no effects on matrine production, showing that JA and NO may act synergistically in triggering matrine production. Moreover, treatment with NO triggers lipoxygenase (LOX) activity and enhances JA levels of the cells, showing that NO may activate the endogenous JA biosynthesis of S. flavescens cells. External application of JA induces nitric oxide synthase-like activities and stimulates NO generation of S. flavescens cells, which suggests that JA may trigger NO generation of the cells. Thus, the results reveal a mutually amplifying reaction between JA and NO in S. flavescens cells. Furthermore, JA and NO inhibitors suppress not only the mutually amplifying reaction between JA and NO but also the synergistic effects of NO and JA on matrine production. Therefore, the data demonstrate that the synergistic action of JA and NO in inducing matrine production might be due to the mutually amplifying reaction between JA and NO in the cells.  相似文献   

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