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1.
植物的先天免疫主要包括模式识别受体对保守的微生物病原相关分子模式的识别和抗病蛋白对效应蛋白的识别。植物与病原体互作过程中存在广泛的信号交流,信号分子在植物与病原体的互作攻防中发挥了重要的调控作用,决定了二者的竞争关系。当前,大量植物与病原体互作中的信号分子被定位和克隆,其作用方式被揭示。本文总结了这些信号分子及其在植物免疫过程中的作用机制,主要包括植物细胞表面的模式识别受体分子对病原相关分子模式的识别与应答,植物抗病蛋白对病原体效应蛋白的识别与应答,以及免疫反应下游相关信号分子及其在植物抗病中的作用。此外,本文对未来相关研究提出了展望。  相似文献   

2.
微生物与植物之间存在错综复杂的双向交流和串扰,植物与病原微生物互作直接影响寄主植物的生存状况,而植物和益生微生物互作则有利于宿主的生长和健康,共生微生物也会从中受益。不管是病原微生物还是有益微生物进入植物体内,植物miRNA都会迅速做出响应,同时微生物也可以产生miRNA样RNA(miRNA-likeRNA,milRNA)影响植物健康,可见miRNA(或milRNA)是植物与微生物互作过程中迅速响应的重要媒介分子,其内在机制研究近年来取得了许多进展。文中概述了植物-病原微生物、植物-益生微生物互作中miRNA的调控作用,重点阐述了植物miRNA在植物-病原微生物互作过程中对寄主植物抗病性的调控作用和植物-益生微生物互作过程中对宿主植物生长发育及代谢的调控,以及真菌milRNA对寄主植物的跨界调控作用。  相似文献   

3.
植物病害是威胁农业生产的重要因素之一,会造成严重的粮食安全问题以及经济损失.植物对病原微生物的抵抗依赖于自身的先天免疫系统(plant innate immunity),主要包括分子模式触发免疫(pattern-triggered immunity, PTI)和效应因子触发免疫(effector-triggered immunity, ETI)两个层次.研究表明,微丝骨架在植物免疫中扮演重要角色,其通过自身动态重排来应对病原微生物的侵染,破坏宿主微丝会显著降低植物的抗病能力.本文重点介绍了植菌互作过程中的微丝骨架动态、参与调控植物免疫的微丝结合蛋白、调控微丝骨架的上游免疫信号以及微丝骨架动态在植物免疫中的生物学功能等的相关研究,并对微丝调控植物免疫的未来研究方向提出了展望.  相似文献   

4.
种子休眠与萌发是截然不同而又紧密联系的两个生理过程,也是植物生命周期中的关键阶段,对自然状态下的植物物种繁殖与地理分布以及农业生产均具有重要意义,且两个过程受不同内源激素和环境信号之间的精确互作调控。大量研究表明,蛋白质磷酸化修饰作为一种重要的翻译后修饰方式,参与调控种子休眠与萌发以及植物逆境胁迫响应等过程并发挥重要作...  相似文献   

5.
植物抗病蛋白研究进展   总被引:1,自引:1,他引:0  
闫佳  刘雅琼  侯岁稳 《植物学报》2018,53(2):250-263
为了应对外界复杂的环境变化, 植物进化出一套复杂而精细的免疫应答调控机制。植物抗病蛋白能够特异地识别病原微生物分泌的效应蛋白, 触发免疫响应以对抗病原微生物的侵扰。该文综述了植物抗病蛋白的结构与功能及对病原菌的识别方式、在免疫响应过程中抗病蛋白的动态平衡机制及其介导的防御反应信号转导。开展植物抗病蛋白研究可为定向培育抗病作物奠定理论基础。  相似文献   

6.
自然界植物与环境微生物之间的相互关系除了胁迫以外,同时也有互利互惠的共生互作关系。无论是能对植物造成胁迫伤害的植物-病原菌互作体系,还是能够为植物提供营养的植物-微生物共生互作体系,其细胞信号转导通路中Ca~(2+)信号的分子调控对两种互作体系都有着非常重要的作用。该文对近年来国内外有关植物-病原菌和植物-微生物互作体系在细胞信号转导过程中Ca~(2+)信号上游的分子调控机制分别进行了综述。  相似文献   

7.
植物与病原微生物互作分子基础的研究进展   总被引:4,自引:0,他引:4  
Cheng X  Tian CJ  Li AN  Qiu JL 《遗传》2012,34(2):134-144
植物在与病原微生物共同进化过程中形成了复杂的免疫防卫体系。植物的先天免疫系统可大致分为两个层面。第一个层面的免疫基于细胞表面的模式识别受体对病原物相关分子模式的识别,该免疫过程被称为病原物相关分子模式触发的免疫(PAMP-triggered immunity,PTI),能帮助植物抵抗大部分病原微生物;第二个层面的免疫起始于细胞内部,主要依靠抗病基因编码的蛋白产物直接或间接识别病原微生物分泌的效应子并且激发防卫反应,来抵抗那些能够利用效应子抑制第一层面免疫的病原微生物,这一过程被称为效应子触发的免疫(Effector-triggered immunity,ETI)。这两个层面的免疫都是基于植物对"自我"及"非我"的识别,依靠MAPK级联等信号网络,将识别结果传递到细胞核内,调控相应基因的表达,做出适当的免疫应答。本文着重阐述了植物与病原微生物互作过程中不同层面的免疫反应所发生主要事件的分子基础及研究进展。  相似文献   

8.
程曦  田彩娟  李爱宁  邱金龙 《遗传》2012,34(2):134-144
植物在与病原微生物共同进化过程中形成了复杂的免疫防卫体系。植物的先天免疫系统可大致分为两个层面。第一个层面的免疫基于细胞表面的模式识别受体对病原物相关分子模式的识别, 该免疫过程被称为病原物相关分子模式触发的免疫(PAMP-triggered immunity, PTI), 能帮助植物抵抗大部分病原微生物; 第二个层面的免疫起始于细胞内部, 主要依靠抗病基因编码的蛋白产物直接或间接识别病原微生物分泌的效应子并且激发防卫反应, 来抵抗那些能够利用效应子抑制第一层面免疫的病原微生物, 这一过程被称为效应子触发的免疫(Effector-triggered immunity, ETI)。这两个层面的免疫都是基于植物对“自我”及“非我”的识别, 依靠MAPK级联等信号网络, 将识别结果传递到细胞核内, 调控相应基因的表达, 做出适当的免疫应答。本文着重阐述了植物与病原微生物互作过程中不同层面的免疫反应所发生主要事件的分子基础及研究进展。  相似文献   

9.
植物14-3-3蛋白研究进展   总被引:1,自引:0,他引:1  
14-3-3蛋白是真核生物中许多信号传导级联反应的主要调节分子,易于与具有磷酸化的丝氨酸和苏氨酸残基的靶蛋白互作进而调节碳氮代谢、三羧酸循环、莽草酸合成等多种生理过程中的多种酶活性。该文根据近年来国内外对14-3-3蛋白的研究进展,对植物中14-3-3蛋白的发现、基因鉴定、结构和功能以及14-3-3蛋白与其靶蛋白的互作机制进行综述,并对14-3-3蛋白的研究提出了进一步的展望。  相似文献   

10.
生物源蛋白激发子的研究进展   总被引:1,自引:0,他引:1  
生物源蛋白激发子是一类能诱导植物产生防卫反应的特殊化合物,主要来源于病原微生物、其他微生物及寄主植物或由寄主-病原物互作后产生。病原微生物或其他微生物产生的激发子包括真菌的β-葡聚糖、糖蛋白、脂类物质和其他细胞壁组分;由寄主植物产生的激发子主要是细胞壁组分中的寡糖物质,如寡聚半乳糖醛酸和木聚糖片段;寄主-病原物互作后产生的激发子主要是互作过程中酶对寄主和病原物细胞组分修饰后产生的。生物源蛋白激发子与寄主植物作用后,通过一系列信号传导,诱导寄主植物产生乙烯、植保素、水杨酸、茉莉酸、病程相关蛋白等,导致植物中多种防卫反应的发生,从而可以控制病害的发展和传播,在农业生产上能够起到减少病虫危害达到增产的目的。近年来,人们对激发子的研究非常广泛,生物源蛋白激发子在生物防治中的作用也日益受到学者们的重视。该文就生物源蛋白激发子的种类:Harpin蛋白、Nep1-like蛋白家族、RXLR蛋白家族、Elicitins及其各类型激发子的功能、信号传导和作用机制的研究进展情况和在农业中的应用进行了综述,并提出了生物源蛋白激发子将来在农业生产中对病害防治方面的展望。  相似文献   

11.
Recent studies have revealed an important role for hormones in plant immunity. We are now beginning to understand the contribution of crosstalk among different hormone signaling networks to the outcome of plant-pathogen interactions. Cytokinins are plant hormones that regulate development and responses to the environment. Cytokinin signaling involves a phosphorelay circuitry similar to two-component systems used by bacteria and fungi to perceive and react to various environmental stimuli. In this study, we asked whether cytokinin and components of cytokinin signaling contribute to plant immunity. We demonstrate that cytokinin levels in Arabidopsis are important in determining the amplitude of immune responses, ultimately influencing the outcome of plant-pathogen interactions. We show that high concentrations of cytokinin lead to increased defense responses to a virulent oomycete pathogen, through a process that is dependent on salicylic acid (SA) accumulation and activation of defense gene expression. Surprisingly, treatment with lower concentrations of cytokinin results in increased susceptibility. These functions for cytokinin in plant immunity require a host phosphorelay system and are mediated in part by type-A response regulators, which act as negative regulators of basal and pathogen-induced SA-dependent gene expression. Our results support a model in which cytokinin up-regulates plant immunity via an elevation of SA-dependent defense responses and in which SA in turn feedback-inhibits cytokinin signaling. The crosstalk between cytokinin and SA signaling networks may help plants fine-tune defense responses against pathogens.  相似文献   

12.
Signal transmission in the plant immune response   总被引:14,自引:0,他引:14  
Genetic and biochemical dissection of signaling pathways regulating plant pathogen defense has revealed remarkable similarities with the innate immune system of mammals and Drosophila. Numerous plant proteins resembling eukaryotic receptors have been implicated in the perception of pathogen-derived signal molecules. Receptor-mediated changes in levels of free calcium in the cytoplasm and production of reactive oxygen species and nitric oxide constitute early events generally observed in plant-pathogen interactions. Positive and negative regulation of plant pathogen defense responses has been attributed to mitogen-activated protein kinase cascades. In addition, salicylic acid, jasmonic acid and ethylene are components of signaling networks that provide the molecular basis for specificity of plant defense responses. This article reviews recent advances in our understanding of early signaling events involved in the establishment of plant disease resistance.  相似文献   

13.
As a common protein modification, ubiquitination is used for regulating the fate of protein targets, notably in terms of stability. In recent years, it has emerged to play key roles in the regulation of plant defense responses. Given its flexibility and critical roles in signaling, primarily in the control of protein turnover, ubiquitination is probably targeting many major immune regulators for modification or degradation. In this review, we summarize the latest findings on how different components of the ubiquitination pathway are involved in NB-LRR R protein-mediated immunity.  相似文献   

14.
Recent findings indicate that lipid signaling is essential for plant resistance to pathogens. Besides oxylipins and unsaturated fatty acids known to play important signaling functions during plant-pathogen interactions, the very long chain fatty acid (VLCFA) biosynthesis pathway has been recently associated to plant defense through different aspects. VLCFAs are indeed required for the biosynthesis of the plant cuticle and the generation of sphingolipids. Elucidation of the roles of these lipids in biotic stress responses is the result of the use of genetic approaches together with the identification of the genes/proteins involved in their biosynthesis. This review focuses on recent observations which revealed the complex function of the cuticle and cuticle-derived signals, and the key role of sphingolipids as bioactive molecules involved in signal transduction and cell death regulation during plant-pathogen interactions.Key words: very long chain fatty acids (VLCFAs), plant-pathogen interactions, lipid signaling, sphingolipids, epicuticular waxes, lipid rafts, cuticle, plant defense  相似文献   

15.
Nitric oxide as a signal in plants.   总被引:44,自引:0,他引:44  
Molecular, genetic and biochemical studies have identified key players in the signaling pathways regulating growth and development, as well as defense responses in plants. Recently, nitric oxide (NO) - the versatile and powerful effector of animal redox-regulated signaling and immune responses - was shown to mediate plant defense responses against pathogens. Interestingly, several key components involved in NO-mediated signaling in animals also appear to be operative in plants.  相似文献   

16.
Plant immunity must be tightly controlled to avoid activation of defense mechanisms in the absence of pathogen attack. Protein phosphorylation is a common mechanism regulating immune signaling. In Arabidopsis thaliana, nine members of the type one protein phosphatase (TOPP) family (also known as protein phosphatase 1, PP1) have been identified. Here, we characterized the autoimmune phenotype of topp4‐1, a previously identified dominant‐negative mutant of TOPP4. Epistasis analysis showed that defense activation in topp4‐1 depended on NON‐RACE‐SPECIFIC DISEASE RESISTANCE1, PHYTOALEXIN DEFICIENT4, and the salicylic acid pathway. We generated topp1/4/5/6/7/8/9 septuple mutants to investigate the function of TOPPs in plant immunity. Elevated defense gene expression and enhanced resistance to Pseudomonas syringae pv. tomato (Pst) DC3000 in the septuple mutant indicate that TOPPs function in plant defense responses. Furthermore, TOPPs physically interacted with mitogen‐activated protein kinases (MAPKs) and affected the MAPK‐mediated downstream defense pathway. Thus, our study reveals that TOPPs are important regulators of plant immunity.  相似文献   

17.
18.
Epidermal growth factor receptor (EGFR) has been shown to play important roles in regulating diverse biological processes, including cell growth, differentiation, apoptosis, adhesion, and migration. Its role in regulating human Toll-like receptors (TLRs), key host defense receptors that recognize invading bacterial pathogens, however, remains unknown. Here we show for the first time that EGFR acts as a negative regulator for TLR2 induction by the bacterium nontypeable Haemophilus influenzae (NTHi) in vitro and in vivo. The negative regulation of TLR2 induction by EGFR is mediated via an Src-MKK3/6-p38 alpha/beta MAP kinase-dependent mechanism. Moreover, direct activation of EGFR signaling by the bacterium NTHi-derived EGF-like factor appears to be responsible for triggering the downstream Src-MKK3/6-p38 MAPK signaling, which in turn leads to the negative regulation of TLR2 induction. Finally, exogenous EGF increases NTHi invasion of host epithelial cells, thereby demonstrating the biological significance of TLR2 regulation by EGFR signaling. The evidence we provided in the present study may suggest a novel strategy utilized by bacteria to attenuate host defensive and immune response by negatively regulating the expression of host defense receptor TLR2. These studies may bring new insight for fully understanding the important role of EGFR signaling in regulating host defense and immune response by tightly controlling TLR2 induction during bacterial infections.  相似文献   

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