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1.
植物蛋白激酶与作物非生物胁迫抗性的研究   总被引:3,自引:0,他引:3  
干旱、盐碱、高温等非生物逆境胁迫严重影响作物生长发育、产量和品质。在遭受非生物逆境的威胁时,植物通过信号受体,可感知、转导胁迫信号,启动一系列抗逆相关基因的表达,最终缓解或抵御非生物逆境胁迫对植物造成的危害。其中,蛋白激酶和蛋白磷酸酯酶的磷酸化/去磷酸化作用在植物感受外界胁迫信号的分子传递过程中起到开关的作用。正常情况下,蛋白激酶磷酸化开启信号转导途径,启动相应的抗逆基因表达反应;当信号消失后,蛋白激酶去磷酸化将信号转导途径关闭,达到调控植物正常生长的目的。因此,蛋白激酶在调控感受胁迫信号、启动各种非生物逆境胁迫响应中起到了极其重要的作用。近年来,对植物蛋白激酶参与非生物胁迫响应的研究倍受关注。本文阐述了不同类型蛋白激酶在改良作物非生物胁迫抗性上的应用,为进一步研究提供资料。  相似文献   

2.
植物在遭受外界逆境胁迫时,体内的信号传导系统能够感知、传递逆境胁迫信号,并引起各种生理生化反应以适应环境。植物蛋白激酶在信号感知、传导以及基因的表达调控中起重要的作用。蛋白激酶在信号传导过程的功能是磷酸化修饰目的蛋白,而磷酸化的实现需要蛋白质之间相互作用。本文从植物蛋白激酶的结构、分类、与激素信号传导之间的关系等方面进行了系统的阐述,对蛋白激酶介导的植物抗性与发育的最新研究进展进行了系统的总结,为解析蛋白激酶在植物生长发育中的抗逆机理提供依据。  相似文献   

3.
植物逆境胁迫相关蛋白激酶的研究进展   总被引:3,自引:0,他引:3       下载免费PDF全文
干旱、高盐、高温和低温等非生物胁迫及各种病虫害等生物胁迫严重影响植物的生长发育和作物产量.蛋白激酶主要通过激活不同的磷酸化途径介导外界环境信号的感知和传递,调控下游抗逆基因的转录表达,启动相应的生理生化等适应性反应来降低或消除危害.该文对近年来国内外有关与非生物胁迫和生物胁迫信号传导相关的受体蛋白激酶、促分裂原活化蛋白激酶、钙依赖而钙调素不依赖的蛋白激酶、蔗糖不发酵相关蛋白激酶和其它胁迫相关的植物蛋白激酶的研究进展进行综述,探索蛋白激酶介导的不同磷酸化途径应对逆境胁迫的信号传递网络,为进一步了解植物逆境分子应答机制提供依据.  相似文献   

4.
促分裂原活化蛋白激酶(MAPK)级联信号转导途径参与了生物体生长发育和抗逆胁迫生理。植物MAPK级联途径一般由三个丝氨酸/苏氨酸蛋白激酶组分构成:包括MAPKKK(MEKK、MAP3K)、MAPKK(MEK)和MAPK。植物在响应外界环境刺激时,MAPKKK首先被自磷酸化激活,依次通过磷酸化激活MAPKK和MAPK,进而将外界信号在细胞内传递从而调控目标基因的表达。MAPK级联途径参与植物激素、生物胁迫、非生物胁迫等过程的信号传递,本文就MAPK级联途径在植物抗病防卫反应中的研究进展进行综述。  相似文献   

5.
钙依赖的蛋白激酶与植物抗逆性   总被引:2,自引:0,他引:2  
植物钙依赖的蛋白激酶(Calcium-dependent protein kinases,CDPKs)是细胞Ca2 信号的受体,同时具有Ca2 受体蛋白和Ser/Thr蛋白激酶的功能。许多植物CDPKs基因受环境胁迫刺激发生表达水平的改变,这些基因在植物逆境胁迫的Ca2 信号转导中起着十分重要的作用,为植物CDPKs抗逆功能的研究和植物的抗逆遗传改良提供了理论基础和基因资源。  相似文献   

6.
植物在非生物胁迫下会产生一系列的形态、生理生化和分子水平上的适应性变化,尤其是非生物胁迫会引起植物体内的蛋白磷酸酶2C(PP2C)基因表达的改变,从而诱导植物合成相关的蛋白以适应胁迫。植物中有不同类型的PP2C亚群,各种PP2C亚群能够通过不同的信号途径参与胁迫应答,因此在植物响应非生物胁迫的过程中发挥重要作用。综述了植物PP2C在非生物胁迫信号通路中的作用机制。  相似文献   

7.
类受体激酶(receptor-like kinase,RLK)是植物体内普遍存在的一类蛋白激酶,是许多信号识别传递途径中的关键组分,作为识别信号的质膜受体,能够感受外界刺激,通过磷酸化作用参与胞内信号传递。富含半胱氨酸的类受体激酶(cysteine-rich receptor-like kinase,CRK)又被称为DUF26(domain of unknown function 26)类受体激酶,是RLK中的一大类。近几年,越来越多的研究发现CRK参与了植物的抗病防御反应。综述了植物CRK蛋白的结构特征,总结了目前已发现的CRK在生物胁迫、非生物胁迫及生长发育中的功能,并对CRK未来的研究进行了展望,旨为后续阐明CRK的功能和分子机制提供参考。  相似文献   

8.
植物蔗糖非发酵-1相关蛋白激酶家族研究进展   总被引:1,自引:0,他引:1  
蛋白质磷酸化与去磷酸化过程在细胞的信号转导网络中起关键的作用,是生物体中普遍存在的一种调节机制。植物中的蛋白激酶通过磷酸化和去磷酸化在调节ABA信号传导、能量缺失反应和非生物胁迫反应过程中有着重要的作用。其中,植物蔗糖非发酵-1相关蛋白激酶(sucrose non-fermenting-1-related protein kinase,SnRK)是植物蛋白激酶家族中一个重要家族,它们与酵母中的SNF1(sucrose non-fermenting-1,SNF1)和哺乳动物中的AMPK(AMP-activated protein kinase,AMPK)同源,具有与它们相似和自身独特的功能,根据其氨基酸序列的同源性和表达模式的差异可分为3个亚组:SnRK1、SnRK2和SnRK3。目前,在拟南芥、水稻、豆科植物、高粱以及苔藓植物等基因组中都发现了大量的SnRK蛋白激酶,它们广泛参与了植物的生长发育、病虫害防御、ABA和非生物胁迫等各种信号的应答反应。  相似文献   

9.
王梦龙  骆素微  李晓诗  彭小群 《广西植物》2023,43(11):2159-2169
植物在生长发育过程中会受到各种胁迫因子的影响,非生物胁迫是其中极其重要的一类。类受体激酶(receptor-like kinases, RLKs)是植物中广泛存在的一类蛋白,能够快速有效地对胁迫因子作出响应,最终引起一系列生物效应。凝集素类受体激酶(lectin receptor-like kinases, LecRLKs)是RLKs的一个亚族,其具有细胞外凝集素结构域、跨膜结构域和细胞内激酶结构域三个结构域。根据细胞外凝集素结构域的不同可分为L、G和C三种不同类型。近年来,大量的研究表明植物凝集素类受体激酶在非生物胁迫响应中发挥重要作用。LecRLKs通过识别非生物胁迫相关的信号分子,激活下游的信号通路,如MAPK通路、ROS通路、钙信号通路等,调节基因表达和蛋白质翻译以增强植物的抗逆性。该文概述了植物凝集素类受体激酶的结构特征及其分类,并系统综述了LecRLKs在盐胁迫、低温胁迫、干旱胁迫、机械损伤和植物激素等非生物胁迫响应中的功能和作用机制,同时也对LecRLKs的未来研究方向作出了展望。该文不仅为深入了解植物凝集素类受体激酶参与非生物胁迫响应的功能提供了参考,而且为利用LecRLKs进行作物抗逆育种改良提供了理论依据。  相似文献   

10.
植物具有固着生活的特点,高温、低温、干旱和盐等生境中常见的非生物胁迫会严重影响植物的生长发育。蛋白质磷酸化是植物应对非生物胁迫的重要机制,主要通过蛋白质的磷酸化和去磷酸化修饰来调控植物细胞对外界胁迫的应激反应,在植物细胞快速传递胁迫信号并激活对胁迫环境的形态、生理和分子水平适应机制的过程中起重要作用。该文主要介绍了植物磷酸化蛋白质的富集、检测和鉴定技术,并对近年来国内外有关植物响应高温、低温、干旱、淹水、盐、养分亏缺和元素毒害等非生物胁迫的磷酸化修饰蛋白组学研究进展进行综述。  相似文献   

11.
This paper reports on the isolation of a novel class of plant serine/threonine protein kinase genes, MsK-1 , MsK-2 and MsK-3 . They belong to the superfamily of cdc2 -like genes, but show highest identity to the Drosophila shaggy and rat GSK-3 proteins (66–70%). All of these kinases share a highly conserved catalytic protein kinase domain. Different amino-terminal extensions distinguish the different proteins. The different plant kinases do not originate from differential processing of the same gene as is found for shaggy , but are encoded by different members of a gene family. Similarly to the shaggy kinases, the plant kinases show different organ-specific and stage-specific developmental expression patterns. Since the shaggy kinases play an important role in intercellular communication in Drosophila development, the MsK kinases are expected to perform a similar function in plants.  相似文献   

12.
Protein tyrosine phosphorylation plays an important role in cell growth, development and oncogenesis. No classical protein tyrosine kinase has hitherto been cloned from plants. Does protein tyrosine kinase exist in plants? To address this, we have performed a genomic survey of protein tyrosine kinase motifs in plants using the delineated tyrosine phosphorylation motifs from the animal system. The Arabidopsis thaliana genome encodes 57 different protein kinases that have tyrosine kinase motifs. Animal non-receptor tyrosine kinases, SRC, ABL, LYN, FES, SEK, KIN and RAS have structural relationship with putative plant tyrosine kinases. In an extended analysis, animal receptor and non-receptor kinases, Raf and Ras kinases, mixed lineage kinases and plant serine/threonine/tyrosine (STY) protein kinases, form a well-supported group sharing a common origin within the superfamily of STY kinases. We report that plants lack bona fide tyrosine kinases, which raise an intriguing possibility that tyrosine phosphorylation is carried out by dual-specificity STY protein kinases in plants. The distribution pattern of STY protein kinase families on Arabidopsis chromosomes indicates that this gene family is partly a consequence of duplication and reshuffling of the Arabidopsis genome and of the generation of tandem repeats. Genome-wide analysis is supported by the functional expression and characterization of At2g24360 and phosphoproteomics of Arabidopsis. Evidence for tyrosine phosphorylated proteins is provided by alkaline hydrolysis, anti-phosphotyrosine immunoblotting, phosphoamino acid analysis and peptide mass fingerprinting. These results report the first comprehensive survey of genome-wide and tyrosine phosphoproteome analysis of plant STY protein kinases.  相似文献   

13.
Signaling through MAP kinase networks in plants   总被引:13,自引:0,他引:13  
Protein phosphorylation is the most important mechanism for controlling many fundamental cellular processes in all living organisms including plants. A specific class of serine/threonine protein kinases, the mitogen-activated protein kinases (MAP kinases) play a central role in the transduction of various extra- and intracellular signals and are conserved throughout eukaryotes. These generally function via a cascade of networks, where MAP kinase (MAPK) is phosphorylated and activated by MAPK kinase (MAPKK), which itself is activated by MAPKK kinase (MAPKKK). Signaling through MAP kinase cascade can lead to cellular responses including cell division, differentiation as well as response to various stresses. In plants, MAP kinases are represented by multigene families and are organized into a complex network for efficient transmission of specific stimuli. Putative plant MAP kinase cascades have been postulated based on experimental analysis of in vitro interactions between specific MAP kinase components. These cascades have been tested in planta following expression of epitope-tagged kinases in protoplasts. It is known that signaling for cell division and stress responses in plants are mediated through MAP kinases and even auxin, ABA and possibly ethylene and cytokinin also utilize a MAP kinase pathway. Most of the biotic (pathogens and pathogen-derived elicitors) including wounding and abiotic stresses (salinity, cold, drought, and oxidative) can induce defense responses in plants through MAP kinase pathways. In this article we have covered the historical background, biochemical assay, activation/inactivation, and targets of MAP kinases with emphasis on plant MAP kinases and the responses regulated by them. The cross-talk between plant MAP kinases is also discussed to bring out the complexity within this three-component module.  相似文献   

14.
MAP kinase cascades in elicitor signal transduction   总被引:3,自引:0,他引:3  
 Protein kinases play important roles in elicitor signal transduction. In this article, I describe the current view of the role of mitogen-activated protein kinase (MAPK) cascades in elicitor signal transduction of plant cells based on our own research and recent developments in this field. In the past several years, it has become apparent that MAPK cascades play important roles in elicitor signal transduction in plants. Our early studies demonstrated the identification of p47 MAPK in tobacco as an elicitor-responsive protein kinase and possible involvement of p47 MAPK in elicitor signal transduction to induce defense responses, including defense gene expression and hypersensitive cell death. However, the molecular identity of p47 MAPK is still unclear. Recent important studies suggest that tobacco MAPK cascades that include SIPK, and/or WIPK, and NtMEK2, an upstream kinase for both SIPK and WIPK, have a crucial function in induction of defense responses and hypersensitive cell death. The orthologs of these protein kinases in Arabidopsis and alfalfa are also suggested to have similar functions. Furthermore, the identification of loss-of-function mutation in Arabidopsis reveals a negative regulatory role for putative MAPK cascades in plant defense mechanisms. Received: February 7, 2002 / Accepted: February 25, 2002  相似文献   

15.
Phosphorylation by protein tyrosine kinases is crucial to the control of growth and development of multicellular eukaryotes, including humans, and it also seems to play an important role in multicellular prokaryotes. A plant tyrosine-specific kinase has not been identified yet; hence, plants have been suggested to share with unicellular eukaryote yeast a tyrosine phosphorylation system where a limited number of stress proteins are tyrosyl-phosphorylated only by a few dual-specificity (serine/threonine and tyrosine) kinases. However, preliminary evidence obtained so far suggests that tyrosine phosphorylation in plants depends on the developmental conditions. Since sequencing of the genome of the model flowering plant Arabidopsis thaliana has been recently completed, we have performed a bioinformatic screening of the whole Arabidopsis proteome to identify a model complement of bona fide protein tyrosine kinases. In silico analyses suggest that < 4% of Arabidopsis kinases are tyrosine-specific kinases, whose gene expression has been assessed by a preliminary polymerase chain reaction screening of an Arabidopsis cDNA library. Finally, immunological evidence confirms that the number of Arabidopsis proteins specifically phosphorylated on tyrosine residues is much higher than in yeast.  相似文献   

16.
季东超  宋凯  邢晶晶  陈彤 《植物学报》2015,50(5):628-636
溶解素基序(LysM)是一类普遍存在于大多数有机体中的蛋白质结构域。植物细胞中含有LysM结构域的蛋白能够识别不同种类含有N-乙酰葡糖胺结构的配体分子,从而启动植物对病原菌的特异防御反应。作为一种重要的模式识别受体,LysM结构域蛋白通过不同形式的寡聚化、受体类胞质激酶BIK1和MAPK级联反应向下游传递信号,而病原菌能够通过其分泌的效应蛋白特异性识别或修饰模式识别受体,规避植物细胞中病原体相关分子模式诱导的免疫反应。该文主要综述受体激酶/蛋白在病原菌激发子识别和防卫反应启动中的作用。  相似文献   

17.
LRR结构存在于细胞定位和功能上各不相同的多种蛋白质中,与蛋白质之间的相互作用和细胞内的信号传递过程密切相关。植物中含LRR的蛋白主要有类受体蛋白激酶、抗病基因编码的蛋白和多聚半乳糖醛酸酶抑制蛋白等,它们分别在细胞的生长发育、抗病反应等过程中发挥着重要作用,其相似的LRR结构为从分子水平上研究这些蛋白的作用机制提供了结构基础。  相似文献   

18.
Structure and function of the receptor-like protein kinases of higher plants   总被引:25,自引:0,他引:25  
Cell surface receptors located in the plasma membrane have a prominent role in the initiation of cellular signalling. Recent evidence strongly suggests that plant cells carry cell surface receptors with intrinsic protein kinase activity. The plant receptor-like protein kinases (RLKs) are structurally related to the polypeptide growth factor receptors of animals which consist of a large extracytoplasmic domain, a single membrane spanning segment and a cytoplasmic domain of the protein kinase gene family. Most of the animal growth factor receptor protein kinases are tyrosine kinases; however, the plant RLKs all appear to be serine/threonine protein kinases. Based on structural similarities in their extracellular domains the RLKs fall into three categories: the S-domain class, related to the self-incompatibility locus glycoproteins of Brassica; the leucine-rich repeat class, containing a tandemly repeated motif that has been found in numerous proteins from a variety of eukaryotes; and a third class that has epidermal growth factor-like repeats. Distinct members of these putative receptors have been found in both monocytyledonous plants such as maize and in members of the dicotyledonous Brassicaceae. The diversity among plant RLKs, reflected in their structural and functional properties, has opened up a broad new area of investigation into cellular signalling in plants with far-reaching implications for the mechanisms by which plant cells perceive and respond to extracellular signals.  相似文献   

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