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1.
在长期的进化过程中,植物与真菌之间形成了复杂而又紧密的联系,其中最主要的就是侵染与防御的关系。植物的抗病性由于涉及农作物、林木的生长与产量,逐渐成为研究热点。在植物免疫系统中,对病原真菌的识别是一个重要环节。目前认为在这一过程中,LysM结构域起到了极为关键的作用。植物细胞膜上有含LysM结构域的识别受体,该受体可以结合真菌细胞壁上的几丁质,并将信号传递到胞内,从而启动免疫反应。在真菌中,同样具有含LysM结构域的基因,主要是一类效应因子。它们可能参与真菌在侵染过程中的"伪装",以逃避植物的识别。该文以LysM结构域在植物-真菌相互作用中扮演的角色为着眼点,讨论有关研究的意义与趋势,并对如何利用LysM结构域的相关研究进行有效的抗病育种提出了新的设想。  相似文献   

2.
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   

3.
自然界中植物的生长发育受到各种环境变化的影响。为了响应外界各种环境条件,植物演化出一系列识别和传递环境信号的蛋白分子,其中比较典型的是植物细胞质膜上的类受体蛋白激酶(RLKs)。凝集素类受体蛋白激酶(LecRLKs)是类受体蛋白激酶家族中的一个亚族,它主要包含3个结构域:细胞外凝集素结构域、跨膜结构域和细胞内激酶结构域。根据细胞外凝集素结构域的不同,LecRLKs可分为3种不同类型:L、G和C型。近年来,研究表明LecRLKs在植物生物/非生物胁迫和发育调控中发挥非常重要的作用。该文综述了植物凝集素类受体蛋白激酶的研究历史、结构特点、分类以及生物学功能,并重点阐述凝集素类受体蛋白激酶在植物生物/非生物胁迫响应和调控发育方面的功能。对不同类型和不同功能的植物凝集素类受体蛋白激酶进行阐述将有利于对该类蛋白开展功能研究,并为作物改良提供有益借鉴。  相似文献   

4.
自然界中植物的生长发育受到各种环境变化的影响。为了响应外界各种环境条件,植物演化出一系列识别和传递环境信号的蛋白分子,其中比较典型的是植物细胞质膜上的类受体蛋白激酶(RLKs)。凝集素类受体蛋白激酶(LecRLKs)是类受体蛋白激酶家族中的一个亚族,它主要包含3个结构域:细胞外凝集素结构域、跨膜结构域和细胞内激酶结构域。根据细胞外凝集素结构域的不同, LecRLKs可分为3种不同类型:L、G和C型。近年来,研究表明LecRLKs在植物生物/非生物胁迫和发育调控中发挥非常重要的作用。该文综述了植物凝集素类受体蛋白激酶的研究历史、结构特点、分类以及生物学功能,并重点阐述凝集素类受体蛋白激酶在植物生物/非生物胁迫响应和调控发育方面的功能。对不同类型和不同功能的植物凝集素类受体蛋白激酶进行阐述将有利于对该类蛋白开展功能研究,并为作物改良提供有益借鉴。  相似文献   

5.
植物与病原菌互作的蛋白质组学研究进展   总被引:6,自引:0,他引:6  
深入认识植物与病原菌的识别方式、亲和性或非亲和性的互作模式,对于揭示植物-病原菌互作机制研究具有重要意义.利用蛋白质组学方法研究病原菌侵染植物过程,分析相关的基因和蛋白,有助于从分子水平上探究植物-病原菌相互作用机制.本文概述了植物-病原菌的互作机制,系统介绍了差异蛋白质组学分析方法在植物-病原真菌、植物-病原细菌两类互作系统中的应用,分析了植物与病原菌互作过程中可能涉及的差异表达功能蛋白,并对当前蛋白质组学技术在植物与病原菌互作研究中存在的诸多问题进行了探讨.  相似文献   

6.
丛枝菌根(AM)对根瘤菌趋化作用研究   总被引:1,自引:0,他引:1  
贾永  宋福强 《微生物学报》2008,35(5):0743-0747
对紫穗槐非接种(AM-+Rh-)、单接种根瘤菌(Rh+)、单接种AM真菌(AM+)和双接种(AM++Rh+)处理, 研究AM真菌、根瘤菌对宿主植物紫穗槐侵染情况, 并采用经过改良的根部微生物趋化试验手段研究AM真菌侵染根系后分泌物对根瘤菌的趋化性。实验结果表明:在接种AM++ Rh+情况下, 使宿主先于AM+、Rh+处理形成根瘤, 且双接种能够显著提高菌根侵染率; 在共生体形成期间, AM真菌与根瘤菌之间存在着识别互动反应和一定的信号物质, 接种AM真菌对根瘤菌有正趋化作用; 同时, 外界温度对AM真菌-宿主植物---根瘤菌三者共生体初始信号识别也起到一定的调控作用。  相似文献   

7.
丛枝菌根(AM)对根瘤菌趋化作用研究   总被引:2,自引:0,他引:2  
贾永  宋福强 《微生物学通报》2008,35(5):0743-0747
对紫穗槐非接种(AM- Rh-)、单接种根瘤菌(Rh )、单接种AM真菌(AM )和双接种(AM Rh )处理,研究AM真菌、根瘤茵对宿主植物紫穗槐侵染情况,并采用经过改良的根部微生物趋化试验手段研究AM真菌侵染根系后分泌物对根瘤茵的趋化性.实验结果表明:在接种AM Rh 情况下,使宿主先于AM ,Rh '处理形成根瘤,且双接种能够显著提高菌根侵染率;在共生体形成期间,AM真菌与根瘤菌之间存在着识别互动反应和一定的信号物质,接种AM真菌对根瘤菌有正趋化作用;同时,外界温度对AM真菌.宿主植物一根瘤茵三者共生体初始信号识别也起到一定的调控作用.  相似文献   

8.
植物病原真菌的自噬   总被引:1,自引:0,他引:1  
刘伟  杜春梅 《微生物学报》2021,61(11):3363-3376
作为真核生物中普遍存在的现象,自噬不但实现了对细胞内物质的降解和回收利用,而且与植物病原真菌早期侵染阶段的附着胞发育、膨压升高、菌丝体形成、完成侵染等一系列过程密切相关,并且发挥了重要的作用。本文归纳了植物病原真菌自噬的相关基因和自噬过程;总结了自噬对病原真菌生长发育、致病力的调控和影响;概括了病原真菌自噬所涉及的信号通路;阐明了自噬影响植物病原真菌侵染过程的主要分子机制。为今后以自噬相关基因或蛋白作为靶点来筛选抑制病原真菌侵染的新型药物提供新的策略和思路。  相似文献   

9.
食线虫真菌作为重要的植物寄生线虫的生物防治资源,深入了解它们的侵染方式、毒力因子是了解食线虫真菌侵染的分子机理和开发高效、稳定的生物杀线虫制剂的关键。目前的研究表明,食线虫真菌能分泌具有降解线虫体壁或线虫卵壳的胞外酶,它们在食线虫真菌侵染线虫的过程中起着非常重要的作用。对这些侵染性胞外水解酶的深入研究将促进人们对食线虫真菌的侵染过程和侵染机制的了解以及高效生防制剂的开发。综述了近年来食线虫真菌侵染性胞外酶的研究概况,对食线虫真菌胞外丝氨酸蛋白酶进行同源性分析,对以后食线虫真菌侵染性胞外酶的研究和高效生防制剂开发进行了评述。  相似文献   

10.
植物病原真菌的MAPK基因及其功能   总被引:10,自引:0,他引:10  
叙述在植物病原真菌中促分裂原活化蛋白激酶 (Mitogenactivatedproteinkinase,MAPK)基因的种类和特征 ,概括了MAPK基因在植物病原真菌生长发育、胁迫反应和侵染、致病过程中的作用及其研究现状 ,讨论了进行植物病原真菌MAPK基因研究的意义及重点研究的课题 ,并根据最新研究进展 ,提出了植物病原真菌MAPK基因研究的发展前景。  相似文献   

11.
The LysM domain is a highly conserved carbohydrate-binding module that recognizes polysaccharides containing N-acetylglucosamine residues. LysM domains are found in a wide variety of extracellular proteins and receptors from viruses, bacteria, fungi, plants and animals. LysM proteins are also present in many species of mammalian fungal pathogens, although a limited number of studies have focused on the expression and determination of their putative roles in the infection process. This review summarizes the current knowledge and recent studies on LysM proteins in the main morphological groups of fungal pathogens that cause infections in humans and other mammals. Recent advances towards understanding the biological functions of LysM proteins in infections of mammalian hosts and their use as potential targets in antifungal strategies are also discussed.  相似文献   

12.
The arbuscular mycorrhizal (AM) and the rhizobia-legume (RL) root endosymbioses are established as a result of signal exchange in which there is mutual recognition of diffusible signals produced by plant and microbial partners. It was discovered 20 years ago that the key symbiotic signals produced by rhizobial bacteria are lipo-chitooligosaccharides (LCO), called Nod factors. These LCO are perceived via lysin-motif (LysM) receptors and activate a signaling pathway called the common symbiotic pathway (CSP), which controls both the RL and the AM symbioses. Recent work has established that an AM fungus, Glomus intraradices, also produces LCO that activate the CSP, leading to induction of gene expression and root branching in Medicago truncatula. These Myc-LCO also stimulate mycorrhization in diverse plants. In addition, work on the nonlegume Parasponia andersonii has shown that a LysM receptor is required for both successful mycorrhization and nodulation. Together these studies show that structurally related signals and the LysM receptor family are key components of both nodulation and mycorrhization. LysM receptors are also involved in the perception of chitooligosaccharides (CO), which are derived from fungal cell walls and elicit defense responses and resistance to pathogens in diverse plants. The discovery of Myc-LCO and a LysM receptor required for the AM symbiosis, therefore, not only raises questions of how legume plants discriminate fungal and bacterial endosymbionts but also, more generally, of how plants discriminate endosymbionts from pathogenic microorganisms using structurally related LCO and CO signals and of how these perception mechanisms have evolved.  相似文献   

13.
The lysin motif (LysM) domain is an ancient and ubiquitous protein module that binds peptidoglycan and structurally related molecules. A genomic survey in a large number of species spanning all kingdoms reveals that the combination of LysM and receptor kinase domains is present exclusively in plants. However, the particular biological functions and molecular evolution of this gene family remain largely unknown. We show that LysM domains in plant LysM proteins are highly diversified and that a minimum of six distinct types of LysM motifs exist in plant LysM kinase proteins and five additional types of LysM motifs exist in nonkinase plant LysM proteins. Further, motif similarities suggest that plant LysM motifs are ancient. Although phylogenetic signals are not sufficient to resolve the earliest relationships, plant LysM motifs may have arisen through common ancestry with LysM motifs in other kingdoms. Within plants, the gene family has evolved through local and segmental duplications. The family has undergone further duplication and diversification in legumes, where some LysM kinase genes function as receptors for bacterial nodulation factor. Two pairs of homeologous regions were identified in soybean (Glycine max) based on microsynteny and fluorescence in situ hybridization. Expression data show that most plant LysM kinase genes are expressed predominantly in the root and that orthologous LysM kinase genes share similar tissue expression patterns. We also examined synteny around plant LysM kinase genes to help reconstruct scenarios for the evolution of this important gene family.  相似文献   

14.
Onaga S  Taira T 《Glycobiology》2008,18(5):414-423
Chitinase-A (PrChi-A), of molecular mass 42 kDa, was purified from the leaves of a fern (P. ryukyuensis) using several column chromatographies. The N-terminal amino acid sequence of PrChi-A was similar to the lysin motif (LysM). A cDNA encoding PrChi-A was cloned by rapid amplification of cDNA ends and polymerase chain reaction. It consisted of 1459 nucleotides and encoded an open-reading frame of 423-amino-acid residues. The deduced amino acid sequence indicated that PrChi-A is composed of two N-terminal LysM domains and a C-terminal catalytic domain, belonging to the group of plant class IIIb chitinases, linked by proline, serine, and threonine-rich regions. Wild-type PrChi-A had chitin-binding and antifungal activities, but a mutant without LysM domains had lost both activities. These results suggest that the LysM domains contribute significantly to the antifungal activity of PrChi-A through their binding activity to chitin in the cell wall of fungi. This is the first report of the presence in plants of a family-18 chitinase containing LysM domains.  相似文献   

15.
Chitin‐binding lysin motif (LysM) effectors contribute to the virulence of various plant‐pathogenic fungi that are causal agents of foliar diseases. Here, we report the LysM effectors of the soil‐borne fungal vascular wilt pathogen Verticillium dahliae. Comparative genomics revealed three core LysM effectors that are conserved in a collection of V. dahliae strains. Remarkably, and in contrast with the previously studied LysM effectors of other plant pathogens, no expression of core LysM effectors was monitored in planta in a taxonomically diverse panel of host plants. Moreover, targeted deletion of the individual LysM effector genes in V. dahliae strain JR2 did not compromise virulence in infections on Arabidopsis, tomato or Nicotiana benthamiana. Interestingly, an additional lineage‐specific LysM effector is encoded in the genome of V. dahliae strain VdLs17, but not in any other V. dahliae strain sequenced to date. Remarkably, this lineage‐specific effector is expressed in planta and contributes to the virulence of V. dahliae strain VdLs17 on tomato, but not on Arabidopsis or N. benthamiana. Functional analysis revealed that this LysM effector binds chitin, is able to suppress chitin‐induced immune responses and protects fungal hyphae against hydrolysis by plant hydrolytic enzymes. Thus, in contrast with the core LysM effectors of V. dahliae, this lineage‐specific LysM effector of strain VdLs17 contributes to virulence in planta.  相似文献   

16.
17.
Chitin, a polymer of N-acetyl-d-glucosamine, is found in fungal cell walls but not in plants. Plant cells can perceive chitin fragments (chitooligosaccharides) leading to gene induction and defense responses. We identified a LysM receptor-like protein (LysM RLK1) required for chitin signaling in Arabidopsis thaliana. The mutation in this gene blocked the induction of almost all chitooligosaccharide-responsive genes and led to more susceptibility to fungal pathogens but had no effect on infection by a bacterial pathogen. Additionally, exogenously applied chitooligosaccharides enhanced resistance against both fungal and bacterial pathogens in the wild-type plants but not in the mutant. Together, our data indicate that LysM RLK1 is essential for chitin signaling in plants (likely as part of the receptor complex) and is involved in chitin-mediated plant innate immunity. The LysM RLK1-mediated chitin signaling pathway is unique, but it may share a conserved downstream pathway with the FLS2/flagellin- and EFR/EF-Tu-mediated signaling pathways. Additionally, our work suggests a possible evolutionary relationship between the chitin and Nod factor perception mechanisms due to the similarities between their potential receptors and between the signal molecules perceived by them.  相似文献   

18.
19.
LysM, a widely distributed protein motif for binding to (peptido)glycans   总被引:4,自引:0,他引:4  
Bacteria retain certain proteins at their cell envelopes by attaching them in a non-covalent manner to peptidoglycan, using specific protein domains, such as the prominent LysM (Lysin Motif) domain. More than 4000 (Pfam PF01476) proteins of both prokaryotes and eukaryotes have been found to contain one or more Lysin Motifs. Notably, this collection contains not only truly secreted proteins, but also (outer-)membrane proteins, lipoproteins or proteins bound to the cell wall in a (non-)covalent manner. The motif typically ranges in length from 44 to 65 amino acid residues and binds to various types of peptidoglycan and chitin, most likely recognizing the N-acetylglucosamine moiety. Most bacterial LysM-containing proteins are peptidoglycan hydrolases with various cleavage specificities. Binding of certain LysM proteins to cells of Gram-positive bacteria has been shown to occur at specific sites, as binding elsewhere is hindered by the presence of other cell wall components such as lipoteichoic acids. Interestingly, LysM domains of certain plant kinases enable the plant to recognize its symbiotic bacteria or sense and induce resistance against fungi. This interaction is triggered by chitin-like compounds that are secreted by the symbiotic bacteria or released from fungi, demonstrating an important sensing function of LysMs.  相似文献   

20.
《Fungal Biology Reviews》2018,32(2):86-103
Blue light plays an important role in the growth and development of fungi. Environmental cues enable plant pathogenic fungi to synchronise essential metabolic pathways to that of their hosts to gain a competitive advantage. Phylogenetic analysis of the LOV domain present in blue light receptors across all three kingdoms suggests that these receptors in fungal lineages have undergone convergent evolution to use the same domain for control and regulation of similar cellular and metabolic processes. In this review, the genetic basis of blue light photoperception in fungi, and the functions it regulates, will be discussed. Furthermore, the evolution of the light sensing domain and its role in pathogenesis is hypothesised concluding with how knowledge of conserved LOV domains may be exploited for fungal disease control in crop plants.  相似文献   

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