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1.
细菌密度阈值感应现象的研究   总被引:1,自引:1,他引:1  
细菌通过复杂的信号传递系统进行着信息交流.细菌的密度阈值感应现象(quorum sensing,QS)是这一信号系统的重要组成部分.细菌通过释放,发现,接受信号分子而实现这一途径.这些信号分子被称为自体诱导分子(autoinducers,AI).通过自体诱导分子细菌可以分辨细胞密度的大小,并通过控制基因的表达而调节细菌的数量.这一过程被称为细菌的密度阈值感应现象.通过这一机制,细菌可以调控整个细菌菌落的基因表达.细菌的密度阈值感应现象使真核生物与原核生物之间的界限变得模糊,细菌可以像多细胞生物一样拥有许多作为个体细菌不可能拥有的特性.细菌的许多行为都受到密度阈值感应机制的调控,如共生现象,毒力因子的表达,耐药性的产生及生物膜的形成等等.研究表明正是通过这种密度阈值感应现象,无论是高度特异的密度阈值感应现象还是普遍存在的密度阈值感应现象,实现了细菌与细菌之间的交流.原核生物与真核生物都不可避免地受到密度阈值感应现象的影响.竞争细菌及易感的真核生物宿主可以通过分泌破坏自体诱导分子或产生自体诱导分子抗体来破坏细菌的密度阈值感应系统而对抗细菌的入侵.  相似文献   

2.
细菌群体感应信号分子与抑制剂研究进展   总被引:5,自引:0,他引:5  
郭嘉亮  陈卫民 《生命科学》2007,19(2):224-232
具有群体感应系统的细菌通过相互交换一种自动诱导(autoinducer)信号分子来实现彼此问的信息交流。当信号分子积累到一定浓度时会改变细菌特定基因的表达,如生物膜的形成、生物发光行为、毒性基因的表达、孢子的形成等。近年来,人们发现了多种天然或者人工合成的群体感应抑制剂,可以干扰群感系统的信息回路。本文系统地阐述了细菌群体感应信息系统的划分、自体诱导分子及其抑制剂的研究进展。  相似文献   

3.
华癸根瘤菌中自体诱导物的初步研究   总被引:9,自引:1,他引:8  
群体感应 (Quorumsensing)是细菌通过产生可扩散的小分子量自体诱导物信号分子感知细胞群体密度变化 ,进行基因表达调控的生理行为。将根癌土壤杆菌 (Agrobacteriumtumefaciens)构建为超量表达群体感应调节蛋白TraR的检测菌株JZA1,试验证明该检测菌株能检测纳摩尔浓度的自体诱导物 ,利用该菌株对 3株不同华癸根瘤菌(Mesorhizobiumhuakuii)进行自体诱导物活性检测 ,发现该 3株华癸根瘤菌均能产生自体诱导物 ,其表达量与菌体密度成正相关 ,但 3株菌在相同培养条件下自体诱导物的表达量存在差异 ,结果表明自体诱导物在种内水平上存在一定的多样性 ;同时发现高pH条件能大大降低自体诱导物的稳定性 ,为进一步研究群体感应调节在共生固氮上的作用提供理论及实践依据  相似文献   

4.
细菌中的群体感应   总被引:2,自引:1,他引:2  
群体感应(quorum sensing)是细菌根据细胞密度变化进行基因表达调控的一种生理行为。具有群体感应的细菌能产生并释放一种被称为自体诱导物(autoinducer)的信号分子,它随着细胞密度增加而同步增加。当自体诱导物积累到一定浓度时会改变细菌特定基因的表达。革兰氏阳性及阴性细菌通过群体感应与周围环境进行信息交流,从而改变细菌的一系列生理活性,这些细菌的生理特性包括共生、细菌毒性、竞争、接合、抗生素的产生、运动性、孢子及生物膜的形成。这种信号传递方式可能对低等的细胞进一步进化,并形成高等的生物体有重要作用。细菌中群体感应系统的进化可能是多细胞体形成的早期阶段。  相似文献   

5.
戴昕  周佳恒  朱亮  徐向阳   《生态学杂志》2014,25(4):1206-1212
群体感应是微生物利用信号分子感知环境条件并进行特定基因表达调控.近年来,随着群体感应在微生物信息交流中的作用日益凸显,其在生物聚集体(生物膜和颗粒)形成过程中的作用受到广泛关注.本文综述了自体诱导信号分子AI的分类和相应的群体感应调控方式,以及群体感应信号分子对生物聚集体形成和结构稳定的调控,并对群体感应研究新领域进行了展望.  相似文献   

6.
曲媛  杨梦华  郑会明  钟增涛  朱军 《微生物学报》2008,48(10):1314-1318
[目的]从中华根瘤菌Sinorhizobium sp.1128中克隆自体诱导物合成酶基因,从而研究该基因在Sinorhizobium sp.1128群体感应系统中的作用.[方法]利用基因序列同源性比对以及分子克隆的方法,从中华根瘤菌Sinorhizobium sp.1128中克隆自体诱导物合成酶基因;利用大肠杆菌异源表达、C18反相薄层层析(TLC)的方法研究该基因的特性;通过中间片段融合的方法缺失该基因,并通过结瘤实验研究该基因对Sinorhizobium sp.1128生理功能的影响.[结果]以草木樨中华根瘤菌Sinorhizobium medicae WSM419自体诱导物合成酶基因Smed_1560序列设计引物,通过PCR扩增在Sinorhizobium sp.1128中寻找到一新的自体诱导物合成基因,命名为traI2.该基因在大肠杆菌Escherichia coli DH5α中表达后能产生两种自体诱导物分子.在Sinorhizobium sp.1128中将该基因缺失,自体诱导物活性下降;回复突变后,自体诱导物活性得到恢复,结瘤实验结果表明该基因能影响根瘤菌的结瘤效率.[结论]中华根瘤菌Sinorhizobium sp.1128群体感应系统是一个复杂的交互系统,它对结瘤的生理功能具有一定的影响.  相似文献   

7.
通过携带有mariner转座子的质粒pJZ290随机插入诱变中华根瘤菌(Sinorhizobium meliloti)建立突变子文库,并从中筛选到自体诱导物(autoinducer,AI)部分缺失突变株YW1。Arbitrary PCR扩增、DNA测序得到YW1基因组DNA中mariner转座子两端侧翼序列,经DNA序列拼接在GenBank上进行同源性分析后获得一个621bp的完整的开放阅读框(ORF),该ORF编码的酶具有206个氨基酸,与草木樨中华根瘤菌(Sinorhizobium medicae)WSM419的LuxI类自体诱导物合成酶(autoinducer synthase)TraI的同源性高达99%。因此,也将该基因命名为traⅠ。将该基因克隆到广宿主范围表达载体pYC12并在大肠杆菌Escherichia coli DH5α中成功表达,C18反相薄层层析(TLC)在阳性重组子培养上清中检测到四种自体诱导物分子,其中的两种正是AI缺失突变株YW1所缺失的AI,这些结果表明该traⅠ基因在苜蓿中华根瘤菌负责合成两种自体诱导物分子,为进一步研究其群体感应系统奠定了理论基础。  相似文献   

8.
微生物的群体感应(quorum sensing,QS)也称为自诱导,是微生物间通过小分子分泌物(自诱导物)在细胞与细胞之间扩散以感知群体密度,并通过自诱导物的浓度及其与转录因子的相互作用调控整个群体细胞中一系列目标基因表达的一种自我感知系统.不同的细菌类型,其QS系统也有一定的差异.根据信号分子的不同,一般可以将细菌的QS系统分为3类,即以AHL为信号分子的革兰氏阴性细菌、以寡肽类物质为信号分子的革兰氏阳性细菌和以哈氏弧菌为代表的兼具上述两种类型QS系统特征的第三类QS系统.综述革兰氏阴性细菌、革兰氏阳性细菌和哈氏弧菌的3种不同QS系统及其在病原菌致病性方面的研究进展.  相似文献   

9.
根瘤菌与群体感应   总被引:2,自引:0,他引:2  
细菌在高细胞密度下可以产生群体感应信号分子,调控细菌相关基因的表达,这种信号分子被称为自体诱导物。酰基高丝氨酸内酯类化合物(acyl-HSLs)是在根瘤菌中广泛存在的一类自体诱导物,该群体感应系统与根瘤菌和植物的共生作用密切相关。本文概述了AHLs介导的群体感应系统的组成及调控机制和不同根瘤菌中群体感应调节对根瘤菌生理行为及共生固氮的影响。  相似文献   

10.
群体感应信号分子AI-2研究进展   总被引:9,自引:0,他引:9  
群体感应(QS)是细菌根据种群密度的变化调控基因表达,协调群体行为的机制。除具有种特异性的信号分子AI-1外,近年来发现一类新的信号分子AI-2在调控细菌基因表达中起重要作用。AI-2的结构和生物合成途径已被确定,其产生依赖于一种称为LuxS的蛋白。目前认为AI-2在细菌种间交流中起通用信号分子(universalsignal)的作用。了解细菌的QS调控过程以及种间细胞交流的新机制,有助于对细菌病害进行防治。  相似文献   

11.
The bioluminescence assay system using Vibrio harveyi reporter strains were used to examine quorum-sensing autoinducer (AI) activity from Mannheimia haemolytica A1 cell-free culture supernatant. We showed that M. haemolytica A1 cell-free culture supernatant contains molecules that can stimulate the quorum-sensing system that regulates the expression of the luciferase operon in V. harveyi. Specifically, M. haemolytica A1 can stimulate only the quorum system 2 but not system 1, suggesting that the culture supernatant only contains molecules similar to AI-2 of V. harveyi. The bioluminescence assay was also used to show that culture supernatants from related Pasteurellaceae organisms, Pasteurella multocida, Pasteurella trehalosi, Actinobacillus suis and Actinobacillus pleuropneumoniae, also contain AI-2-like molecules. This is consistent with the presence of a luxS homolog in the genomes of P. multocida and A. pleuropneumoniae. A luxS homolog was cloned by PCR from M. haemolytica A1 using sequencing data from the ongoing genome sequencing project. The cloned luxS(M.h.) was able to complement AI-2 production in the Escherichia coli DH5alpha luxS mutant. This is the first report of a quorum-sensing activity in M. haemolytica A1 and suggests that this bacterium utilizes this mechanism to regulate expression of genes under specific conditions.  相似文献   

12.
很多细菌在生长过程中会产生一些小分子量的自诱导分子,也称为信号分子,当其随着细胞数量增加而积累到一定阈值时能够调控细菌特定基因的表达,这个过程称为群体感应(Quorum sensing,QS)。多数自诱导分子具有物种特异性,但很多种属的细菌都会产生一种共同的自诱导分子AI-2,AI-2被认为是细菌种间交流的通用语言。定量检测AI-2对于研究与其相关的生理生化过程是非常必要的。然而,目前还没有一种标准的定量检测AI-2的方法。因此,本文就目前关于AI-2的检测方法进行综述,为后续研究者提供参考。  相似文献   

13.
In a process called quorum sensing, bacteria communicate with one another using secreted chemical signalling molecules termed autoinducers. A novel autoinducer called AI-2, originally discovered in the quorum-sensing bacterium Vibrio harveyi, is made by many species of Gram-negative and Gram-positive bacteria. In every case, production of AI-2 is dependent on the LuxS autoinducer synthase. The genes regulated by AI-2 in most of these luxS-containing species of bacteria are not known. Here, we describe the identification and characterization of AI-2-regulated genes in Salmonella typhimurium. We find that LuxS and AI-2 regulate the expression of a previously unidentified operon encoding an ATP binding cassette (ABC)-type transporter. We have named this operon the lsr (luxS regulated) operon. The Lsr transporter has homology to the ribose transporter of Escherichia coli and S. typhimurium. A gene encoding a DNA-binding protein that is located adjacent to the Lsr transporter structural operon is required to link AI-2 detection to operon expression. This gene, which we have named lsrR, encodes a protein that represses lsr operon expression in the absence of AI-2. Mutations in the lsr operon render S. typhimurium unable to eliminate AI-2 from the extracellular environment, suggesting that the role of the Lsr apparatus is to transport AI-2 into the cells. It is intriguing that an operon regulated by AI-2 encodes functions resembling the ribose transporter, given recent findings that AI-2 is derived from the ribosyl moiety of S-ribosylhomocysteine.  相似文献   

14.
Aims:  The aim of this study was to elucidate the potential quorum-sensing (QS) signal molecules of an emerging pathogen ( Edwardsiella tarda strain LTB-4) of cultured turbot ( Scophthalmus maximus ).
Methods and Results:  A sensitive and rapid double-layer plate method using biosensor strain Agrobacterium tumefaciens KYC55 was developed to detect the N-acylhomoserine lactone (AHL)-related compounds in bacteria. LTB-4 was found to have two QS systems, one was based on the AHLs and the other was based on the autoinducer-2 (AI-2). The AI-2 activity produced by LTB-4 was growth phase dependent and topped at OD600 of 1·0. The protocol to detect cholerae autoinducer 1 (CAI-1) activity in bacteria was modified, lowering the background luminescence of biosensor strain Vibrio harveyi JAF375. CAI-1 activity could not be detected in LTB-4.
Conclusion:  Edwardsiella tarda LTB-4 produced at least four kinds of AHLs during its whole growth phase. In comparison with the AHL-inducing QS, AI-2 may be the first predominant signal, functioning at early exponential phase. LTB-4 did not produce any CAI-1 activity.
Significance and Impact of the Study:  Different QS signal molecules of Edw. tarda LTB-4 were clarified by improved bioassays. In contrast to earlier studies detecting two types of AHLs, strain LTB-4 produced at least four kinds of AHLs, which seemed to be C4-HSL, C6-HSL, 3-oxo-C6-HSL and an uncharacterized AHL molecule.  相似文献   

15.
Presence of the quorum-sensing regulation system in Vibrio mimicus was investigated. The culture supernatants of V. mimicus strains were found to possess AI-2 autoinducer like activity, and the strains were found to harbor the genes which are homologous to luxS, luxO, and luxR of V. harveyi. These genes of V. harveyi have been shown to be important components of V. harveyi-like quorum-sensing system. The luxO gene homologue known to encode LuxO, the central component of the regulation system, was disrupted, and effects on protease and hemolysin activity were studied. Disruption of luxO gene resulted in the increased protease activity, but the hemolysin activity did not vary considerably.  相似文献   

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Autoinducers are important for cellular communication of bacteria. The luxS gene has a central role in the synthesis of autoinducer-2 (AI-2). The gene was identified in a shotgun library of Erwinia amylovora and primers designed for PCR amplification from bacterial DNA. Supernatants of several Erwinia amylovora strains were assayed for AI-2 activity with a Vibrio harveyi mutant and were positive. Many other plant-associated bacteria also showed AI-2 activity such as Erwinia pyrifoliae and Erwinia tasmaniensis. The luxS genes of several bacteria were cloned, sequenced, and complemented Escherichia coli strain DH5alpha and a Salmonella typhimurium mutant, both defective in luxS, for synthesis of AI-2. Assays to detect AI-2 activity in culture supernatants of several Pseudomonas syringae pathovars failed, which may indicate the absence of AI-2 or synthesis of another type. Several reporter strains did not detect synthesis of an acyl homoserine lactone (AHL, AI-1) by Erwinia amylovora, but confirmed AHL-synthesis for Erwinia carotovora ssp. atroseptica and Pantoea stewartii.  相似文献   

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