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1.
一氧化氮与雄性生殖系统   总被引:1,自引:0,他引:1  
一氧化氮是近年来发现的一种重要的生物信号分子和效应分子 ,在生物体内 ,L 精氨酸在一氧化氮合酶的作用下生成一氧化氮后 ,以自分泌或旁分泌形式作用于自身或邻近的细胞 ,发挥信号传导和细胞毒性等多种生理功能。近年来的研究表明 ,一氧化氮对雄性生殖系统上至下丘脑 ,下到性腺、附性器官都具有十分重要的生理调节作用。  相似文献   

2.
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   

3.
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   

4.
植物谷胱甘肽代谢与环境胁迫   总被引:18,自引:5,他引:13  
谷胱甘肽是植物体内普遍存在的小分子抗氧化物质,它在还原态硫的储存和转运、蛋白质和核酸的合成、酶活性的调节、组织抗氧化特性的维持以及对氧化还原敏感的信号传导的调节中起着重要作用。谷胱甘肽库的大小及其氧化还原状态也与植物对多种生物异源物质及生物与非生物环境胁迫的忍耐密切相关。本文简要综述了近年来人们在植物谷胱甘肽生物合成与代谢、转运、信号传导以及胁迫响应中所取得的研究进展。  相似文献   

5.
丛枝菌根真菌诱导植物信号物质研究进展   总被引:6,自引:1,他引:5  
丛枝菌根(AM)真菌侵染植物根系形成菌根共生体过程中能诱导植物合成多种信号物质,如水杨酸(SA)、茉莉酸(JA)、类黄酮、一氧化氮(NO)和过氧化氢(H2O2)等。这些信号分子的传导途径和作用机制备受关注。本文从AM真菌诱导植物信号物质的种类和数量入手,探讨这些信号分子在植物体内的传导途径、生理效应和可能的作用机制,旨在为研究AM真菌与植物之间的共生关系、功能与进化等提供依据。  相似文献   

6.
茉莉酸及其信号传导研究进展   总被引:11,自引:3,他引:8  
朱家红  彭世清 《西北植物学报》2006,26(10):2166-2172
茉莉酸及其衍生物茉莉酸甲酯等统称为茉莉酸盐,是广泛存在于植物中的一种生长调节物质,在植物细胞中起着非常重要的作用.茉莉酸作为信号分子广泛参与调节植物的生长发育和胁迫响应过程.本文主要就茉莉酸的生物合成、茉莉酸的信号传导途径和调控机制、茉莉酸的信号传导途径与乙烯、脱落酸、水杨酸和一氧化氮信号传导途径的相互关系进行了综述.  相似文献   

7.
硫化氢(H2S)是继一氧化氮(NO)和一氧化碳(CO)之后第3个气体信号分子, 在植物体内参与许多重要的生理活动, 能够促进植物光合作用和有机物的积累, 缓解各种生物和非生物胁迫并促进植物生长发育。该文综述了植物体内H2S的物理化学性质、产生机制、主要生理功能和作用机制以及与其它信号分子的互作关系, 并展望了H2S信号分子的研究前景。  相似文献   

8.
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   

9.
一氧化氮(NO)是一种小分子气体,是生物体内第一个被证实的气体信息分子。自1988年Carthwaite首次提出在神经系统中的传导作用后,NO在神经系统中的作用越来越受到重视。NO具有脂溶性、在体内易扩散、半衰期短(只有数秒钟)等生物学特征。体内的NO是由一氧化氮合酶(NOS)以左旋精氨酸为底物催化生成。  相似文献   

10.
植物锚蛋白研究进展   总被引:3,自引:0,他引:3  
锚蛋白重复序列模体是生物体内最普遍的蛋白质序列模体之一,在多种细胞活动中主要介导蛋白质-蛋白质的相互作用。综述了近年来有关锚蛋白参与植物信号传导的研究进展。  相似文献   

11.
Nitric oxide (NO) is now recognized as an important signaling molecule and there has been an increasing bulk of studies regarding the various functions of NO in plants exposed to environmental stimulus. There is also emerging evidence, although not extensive, that NO plays systemic signaling roles during the establishment of salt tolerance in many plant species. In this mini-review, we highlight several candidate mechanisms as being functional in this NO systemic signaling action. In addition, we outline data supporting that plants possess prime-like mechanisms that allow them to memorize previous NO exposure events and generate defense responses following salt stress.Key words: nitric oxide, nitrosative stress, priming, salinity, systemic signaling  相似文献   

12.
The hunt for plant nitric oxide synthase (NOS): Is one really needed?   总被引:1,自引:0,他引:1  
Fr?hlich A  Durner J 《Plant science》2011,181(4):401-404
Nitric oxide (NO) production is associated with many physiological situations in plants, and NO is a key signaling molecule throughout the lifespan of a plant. The complexity of the underlying signaling events are just starting to be unraveled. The basis for nitric oxide signaling, the production of the signaling molecule itself, is far from understood in plants. While in animals, three homologous NO synthases (NOS) isoforms have been identified, yet in higher plants no corresponding enzymes are known so far. More than half a dozen NO productive reactions have been observed in plants but only few of them have been thoroughly investigated. It remains to be elucidated how these parts act together to form the sophisticated NO signaling network observed in plants.  相似文献   

13.
Nitric oxide (NO) is a widespread signaling molecule, and numerous targets of its action exist in plants. Whereas the activity of NO in erythrocytes, microorganisms, and invertebrates has been shown to be regulated by several hemoglobins, the function of plant hemoglobins in NO detoxification has not yet been elucidated. Here, we show that Arabidopsis thaliana nonsymbiotic hemoglobin AHb1 scavenges NO through production of S-nitrosohemoglobin and reduces NO emission under hypoxic stress, indicating its role in NO detoxification. However, AHb1 does not affect NO-mediated hypersensitive cell death in response to avirulent Pseudomonas syringae, suggesting that it is not involved in the removal of NO bursts originated from acute responses when NO mediates crucial defense signaling functions.  相似文献   

14.
Apoplastic synthesis of nitric oxide by plant tissues   总被引:30,自引:0,他引:30       下载免费PDF全文
Nitric oxide (NO) is an important signaling molecule in animals and plants. In mammals, NO is produced from Arg by the enzyme NO synthase. In plants, NO synthesis from Arg using an NO synthase-type enzyme and from nitrite using nitrate reductase has been demonstrated previously. The data presented in this report strongly support the hypothesis that plant tissues also synthesize NO via the nonenzymatic reduction of apoplastic nitrite. As measured by mass spectrometry or an NO-reactive fluorescent probe, Hordeum vulgare (barley) aleurone layers produce NO rapidly when nitrite is added to the medium in which they are incubated. NO production requires an acid apoplast and is accompanied by a loss of nitrite from the medium. Phenolic compounds in the medium can increase the rate of NO production. The possible significance of apoplastic NO production for germinating grain and for plant roots is discussed.  相似文献   

15.
植物细胞一氧化氮信号转导研究进展   总被引:5,自引:0,他引:5  
一氧化氮(nitric oxide, NO)作为重要的信号分子, 调控植物的种子萌发、根形态建成和花器官发生等许多生长发育过程, 并参与气孔运动的调节以及植物对多种非生物胁迫和病原体侵染的应答过程。已经知道, 精氨酸依赖的NOS途径和亚硝酸盐依赖的NR途径是植物细胞NO产生的主要酶促合成途径。NO及其衍生物能够直接修饰底物蛋白的金属基团、半胱氨酸和酪氨酸残基, 通过金属亚硝基化、巯基亚硝基化和Tyr-硝基化等化学修饰方式, 调节靶蛋白的活性, 并影响cGMP和Ca2+信使系统等下游信号途径, 调控相应的生理过程。最新的一些研究结果也显示, MAPK级联系统与NO信号转导途径之间存在复杂的交叉调控。此外, 作为活跃的小分子信号, NO和活性氧相互依赖并相互影响, 共同介导了植物的胁迫应答和激素响应过程。文章综述了植物NO信号转导研究领域中一些新的研究进展, 对NO与活性氧信号途径间的交叉作用等也作了简要介绍。  相似文献   

16.
Nitric oxide (NO) is now recognized as a key regulator of plant physiological processes. Understanding the mechanisms by which NO exerts its biological functions has been the subject of extensive research. Several components of the signaling pathways relaying NO effects in plants, including second messengers, protein kinases, phytohormones, and target genes, have been characterized. In addition, there is now compelling experimental evidence that NO partly operates through posttranslational modification of proteins, notably via S-nitrosylation and tyrosine nitration. Recently, proteome-wide scale analyses led to the identification of numerous protein candidates for S-nitrosylation in plants. Subsequent biochemical and in silico structural studies revealed certain mechanisms through which S-nitrosylation impacts their functions. Furthermore, first insights into the physiological relevance of S-nitrosylation, particularly in controlling plant immune responses, have been recently reported. Collectively, these discoveries greatly extend our knowledge of NO functions and of the molecular processes inherent to signal transduction in plants.  相似文献   

17.
周坤  张今今 《遗传》2014,36(7):661-668
一氧化氮(NO)是具有生物活性的重要信号分子, 在植物生长发育的许多过程中发挥调节作用。越来越多的研究证据表明, NO在植物花发育过程中具有重要作用, 然而迄今尚未见关于NO调控植物花发育方面的系统报道。文章介绍了植物NO合成途径的最新研究进展, 综述了NO抑制植物开花转换可能的作用机理和NO在花粉萌发与花粉管延伸过程中的调节作用, 以期为植物内源NO的生物合成及NO对花发育的调节研究提供参考。  相似文献   

18.
Nitric oxide (NO) plays a key role in plant growth and defense. Since NO is a small molecule, devoid of charge and relatively lipophilic, it easily crosses cell membranes, acting as an important signaling messenger. Recently, several papers described the beneficial effects due to application of small molecular weight NO donors in plants. Exogenous NO donors break seed dormancy, stimulate plant germination and greening, control iron homeostasis in plants, and improve plant tolerance to salinity, metal toxicity, temperature and drought stress. However, these NO donors are thermally and photochemically unstable. A promising strategy that has been successfully used in biomedical applications is the combination of NO donors with nanomaterials. The encapsulation of NO donors in nanoparticles/nanotubes is able to control the release of therapeutic amounts of NO, thus improving its beneficial effects. Although nanomaterials have been used successfully to carry agrochemicals in plants, the delivery of NO is still to be studied. In this context, the present review highlights the advantages of applications of NO donors in plants, the uses of nanotechnology in agriculture, and the necessity to develop new strategies based on the combination of NO and nanomaterials in agriculture. Therefore, this review hopes to open up new perspectives in the area of nanobiotechnology, NO and agriculture.  相似文献   

19.
一氧化氮(nitric oxide,NO)作为重要的信号分子,调控植物的种子萌发、根形态建成和花器官发生等许多生长发育过程,并参与气孔运动的调节以及植物对多种非生物胁迫和病原体侵染的应答过程。已经知道,精氨酸依赖的NOS途径和亚硝酸盐依赖的NR途径是植物细胞NO产生的主要酶促合成途径。NO及其衍生物能够直接修饰底物蛋白的金属基团、半胱氨酸和酪氨酸残基,通过金属亚硝基化、巯基亚硝基化和Tyr.硝基化等化学修饰方式,调节靶蛋白的活性,并影响cGMP和Ca2+信使系统等下游信号途径,调控相应的生理过程。最新的一些研究结果也显示,MAPK级联系统与NO信号转导途径之间存在复杂的交叉调控。此外,作为活跃的小分子信号,NO和活性氧相互依赖并相互影响,共同介导了植物的胁迫应答和激素响应过程。文章综述了植物NO信号转导研究领域中一些新的研究进展,对NO与活性氧信号途径间的交叉作用等也作了简要介绍。  相似文献   

20.
New insights into nitric oxide metabolism and regulatory functions   总被引:1,自引:0,他引:1  
Nitric oxide (NO) has been intensively studied to elucidate the role of this enigmatic signaling molecule in plant development, metabolism and disease responses. Many studies using pharmacological and biochemical tools have demonstrated that NO functions in hormone responses, programmed cell death, defense gene induction and signal transduction pathways. NO originates from two sources in plants: nitrite and arginine. Recent studies using mutants and transgenic plants have confirmed these key findings and have gone further to identify (i) a new mechanism to modulate NO bioactivity involving hemoglobin, (ii) a gene involved in arginine-dependent NO synthesis, and (iii) a novel function for NO signaling in flowering. These findings continue to elucidate the expanding role of NO in plant biology.  相似文献   

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