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1.
白念珠菌是人体重要的条件性致病真菌。形态的多样性和可塑性是白念珠菌典型的生物学特征,这与它的致病性、宿主适应能力以及有性生殖过程密切相关。白念珠菌生物被膜(Biofilm)是由不同形态细胞(包括酵母型、菌丝和假菌丝)以及胞外基质组成的致密结构,也是毒性和耐药性形成的重要因子。生物被膜对抗真菌药物、宿主免疫系统和环境胁迫因子等都表现出较强的抵抗力和耐受性,是临床上病原真菌感染防治的重大挑战。随着基因表达谱和遗传操作技术的发展,白念珠菌生物被膜的形成及其耐药性的获得所依赖的遗传调控通路和分子调控机制越来越清楚。主要包括MAPK和cAMP介导的信号途径以及Bcr1和Tec1等因子介导的转录调控。此外,白念珠菌生物被膜的形成与形态转换和有性生殖之间存在密切的联系。文中综述了白念珠菌生物被膜形成的遗传调控机制,重点介绍了细胞壁相关蛋白、转录因子和交配型对该过程的调控以及生物被膜的耐药机制。  相似文献   

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【目的】阐明霍乱弧菌DsbA蛋白(VcDsbA)在生物被膜形成过程中的作用。【方法】采用Overlapping PCR的方法构建VcdsbA基因敲除质粒p MH524;采用同源重组和基因克隆的方法对霍乱弧菌dsbA(vc0034)基因进行敲除和回补;通过结晶紫染色实验,比较野生株(WT)、dsbA突变株(ΔdsbA)和回补菌株(CΔdsbA)的生物被膜形成差异;用荧光素酶基因作为报告基因分析与生物被膜形成相关的甘露糖敏感血凝素纤毛合成蛋白(Mannose-sensitive hemagglutinin,pili biogenesis protein,MSHA)在霍乱弧菌WT、ΔdsbA和CΔdsbA中表达水平的区别。【结果】成功构建霍乱弧菌dsbA基因缺失突变株和回补株;与WT相比,ΔdsbA生物被膜形成能力显著下降,且msh操纵子的表达水平显著降低。【结论】VcDsbA可能通过影响其它调控因子直接或间接增强霍乱弧菌MSHA的生物合成,从而促进霍乱弧菌生物被膜的形成。本文为进一步研究DsbA在霍乱弧菌生物被膜形成中的调控机制奠定了基础。  相似文献   

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目前,已知的分枝杆菌属有170多种,是分枝杆菌科中唯一的属。该属的微生物在引起人类疾病的能力方面呈现多样化。分枝杆菌属包括人类病原体(结核分枝杆菌复合菌群和麻风分枝杆菌)和被称为非结核分枝杆菌(non-tuberculosismycobacteria,NTM)的环境微生物。分枝杆菌的一个常见致病因素是生物被膜的形成。细菌生物被膜通常被定义为表面附着的细菌群落,也被认为是被包裹的微生物细胞的共享空间,包括各种胞外聚合物基质(extracellular polymeric substances,EPS),如多糖、蛋白质、淀粉样蛋白、脂类和胞外DNA (extracellular DNA,EDNA),以及膜小泡和类腐殖质微生物衍生的难降解物质。基质的组装和动力学主要由第二信使、信号分子或小RNA协调。完全破译细菌如何为基质提供结构,从而促进细胞外反应并从中受益,仍然是未来生物被膜研究的挑战。本文介绍了生物被膜五步发育模型和生物被膜形成的新模型,分析了生物被膜的致病性,与噬菌体、宿主免疫细胞的互作,同时解析了分枝杆菌生物被膜关键基因及调控网络,分枝杆菌生物被膜与耐药性,以期为临床上治疗由生物被...  相似文献   

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彭显  李继遥  徐欣 《生物工程学报》2017,33(9):1369-1375
细菌生物被膜是细菌持续性致病的重要机制。研究细菌生物被膜的形成和发展可为顽固性细菌感染防治提供新的思路与策略。环二腺苷酸c-di-AMP(Cyclic diadenosine monophosphate)是继c-di-GMP之后在细菌中新发现的一种核苷酸第二信使分子。研究发现,c-di-AMP参与调节细菌多种生理功能,包括细菌生长代谢、生物被膜形成、细胞壁的合成以及细菌毒力因子等。本文综述了c-di-AMP参与调控细菌生物被膜形成的不同方式及其分子机制。鉴于c-di-AMP在调控细菌生物被膜中的重要性,其可作为抗细菌生物被膜感染新药研发的潜在靶点。  相似文献   

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硫酸盐还原细菌(sulfate-reducing bacteria,SRB)形成的生物被膜是微生物导致金属锈蚀行为的主要原因,同时也是重金属污水微生物修复技术的关键因子。生物被膜形成及调控机制研究对SRB的防治和利用均十分重要。本文综述了近年来SRB生物被膜的研究进展,包括SRB生物被膜的胞外多聚物组成和控制因子,并着重阐述了目前已知的调控因子对SRB生物被膜形成的影响。  相似文献   

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环二鸟苷单磷酸(cyclic di-GMP或c-di-GMP)是细菌细胞中广泛存在的第二信使,调控细菌生物被膜发育、致病力、运动性、胞外多糖产生及细胞周期在内的诸多重要生理表型。c-di-GMP通过结合多种类型的效应子(包括核糖开关或效应蛋白)来发挥调控功能。由于c-di-GMP分子在构象上具有多变性,其结合的效应子同样具有多样性。新型效应蛋白的筛选、鉴定是当前细菌信号转导领域的研究热点和难点,也是解析c-di-GMP调控机制的首要环节。本文在阐述c-di-GMP结合不同类型的效应蛋白并调控细菌生物被膜发育的基础上,综述了目前筛选c-di-GMP效应蛋白的方法,包括遗传筛选、亲和色谱结合质谱鉴定、DRa CALA系统鉴定以及基于分子对接的预测等。同时,对验证c-di-GMP效应蛋白的技术,如等温微量热滴定、表面等离子共振、微量热泳动在内的多种验证方法进行了总结,对比了这些策略和方法在应用上的优、缺点,为在细菌及其真核宿主基因组水平鉴定c-di-GMP效应蛋白的研究提供参考。  相似文献   

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白念珠菌引起的真菌感染严重威胁着人类健康。Ras/cAMP/PKA途径在白念珠菌菌丝发育、生物被膜形成、有性生殖以及耐药性中起着重要的调控作用,该通路由GTPases(Ras1和Ras2)、腺苷环化酶(Cyr1)、cAMP水解酶(Pde1和Pde2)以及PKA激酶(包括催化亚基Tpk1和Tpk2,调节亚基Bcy1)构成。环境因子通过Ras/cAMP/PKA途径调控下游转录因子,进而调节白念珠菌多种生物学行为。文中综述了近年来白念珠菌Ras/cAMP/PKA信号通路感应胞外环境因子和调控细胞行为等方面的研究进展。  相似文献   

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喹诺酮信号系统是铜绿假单胞菌群体感应调控网络中一个重要组成部分,对于绿脓菌素和弹性蛋白酶等毒力因子的表达及细菌生物被膜形成和细菌运动具有重要的调控作用,因此与临床细菌感染密切相关。3,4-二羟基-2-庚基-喹诺酮(Pseudomonas quinolone signal,PQS)及2-庚基-4喹诺酮(4-hydroxy-2-heptylquinoline,HHQ)是pqs调控系统中重要的信号分子。PQS对于细菌在压力下群体密度及细菌物质运输具有调控作用,从而增强细菌对于环境的适应能力。同时PQS等分子在一定程度上抑制了人体的免疫系统,帮助细菌在宿主体内生存。HHQ在其他革兰氏阴性细菌及革兰氏阳性细菌中也有合成并发挥调控作用,所以喹诺酮信号分子不仅是种内也是种间交流媒介。将喹诺酮系统作为靶点降低细菌的信号交流是抑制细菌感染的一个新思路。本文对喹诺酮信号系统进行概述。  相似文献   

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【背景】禽致病性大肠杆菌(Avian pathogenic Escherichia coli, APEC)是禽类主要病原菌之一,群体感应(Quorumsensing,QS)系统可通过信号分子调控其生物学特性。在APEC中信号分子AHL对其生物学特性的影响目前尚不清楚。【目的】研究信号分子AHL对APEC生物学特性的影响。【方法】将含铜绿假单胞菌酰基高丝氨酸内脂合成酶(Acyl-homoserine-lactone synthase,lasI)基因的表达质粒转化至APEC菌株DE17中,构建重组菌株DE17-lasI,利用LasI在DE17中合成AHL。比较野生株和重组菌株产生AHL信号分子、生长特性、生物被膜形成能力、运动性以及耐药性等生物学特性的差异;运用Real-timePCR技术,比较野生株和重组菌株中与生物被膜形成、运动性以及毒力因子相关基因的转录水平。【结果】对重组菌株AHL信号分子检测表明,DE17-lasI能够产生AHL信号分子,与野生株DE17相比,DE17-lasI生物被膜形成能力和运动性显著降低(P0.01),但其生长特性和耐药性无显著变化(P0.05);Real-time PCR检测结果表明,重组菌株的毒力因子fimH转录水平上调了58.8倍,而ompA、iss分别下调了95.4%、77.3%。与生物被膜形成相关基因agn43下调了75%,鞭毛合成基因flhA下调了80.8%。此外,AHL受体sdiA的转录水平上调了19.8倍。【结论】转化lasI至APEC中,能促进其在APEC中合成信号分子AHL,并显著影响APEC的部分生物学特性,为进一步探讨AHL型群体感应系统对APEC的调控作用提供参考。  相似文献   

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鼠疫耶尔森氏菌(Yersinia pestis,以下简称"鼠疫菌")是烈性传染病鼠疫的病原菌,以鼠蚤作为传播媒介。鼠疫菌在其传播媒介鼠蚤的前胃中形成生物被膜从而促进其在宿主间传播。鼠疫菌生物被膜的形成受第二信使分子环二鸟苷酸(c-di-GMP)的正向调控。鼠疫菌中c-di-GMP由二鸟苷酸环化酶(DGC)HmsT和HmsD合成,由磷酸二酯酶(PDE)HmsP降解。文中主要介绍影响鼠疫菌环二鸟苷酸代谢及生物被膜形成的调控因子,并对其作用机制进行讨论和总结。  相似文献   

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Vibrio cholerae is a versatile bacterium that flourishes in diverse environments, including the human intestine, rivers, lakes, estuaries, and the ocean. Surface attachment is believed to be essential for colonization of all of these natural environments. Previous studies have demonstrated that the vps genes, which encode proteins required for exopolysaccharide synthesis and transport, are required for V. cholerae biofilm development in Luria-Bertani broth. In this work, we showed that V. cholerae forms vps-dependent biofilms and vps-independent biofilms. The vps-dependent and -independent biofilms differ in their environmental activators and in architecture. Our results suggest that environmental activators of vps-dependent biofilm development are present in freshwater, while environmental activators of vps-independent biofilm development are present in seawater. The distinct environmental requirements for the two modes of biofilm development suggest that vps-dependent biofilm development and vps-independent biofilm development may play distinct roles in the natural environment.  相似文献   

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Vibrio cholerae , the causative agent of the devastating diarrheal disease cholera, can form biofilms on diverse biotic and abiotic surfaces. Biofilm formation is important for the survival of this organism both in its natural environment and in the human host. Development of V. cholerae biofilms are regulated by complex regulatory networks that respond to environmental signals. One of these signals, norspermidine, is a polyamine that enhances biofilm formation via the NspS/MbaA signaling system. In this work, we have investigated the role of the polyamine spermidine in regulating biofilm formation in V. cholerae . We show that spermidine import requires PotD1, an ortholog of the periplasmic substrate-binding protein of the spermidine transport system in Escherichia coli . We also show that deletion of the potD1 gene results in a significant increase in biofilm formation. We hypothesize that spermidine imported into the cell hinders biofilm formation. Exogenous spermidine further reduces biofilm formation in a PotD1-independent, but NspS/MbaA-dependent, manner. Our results suggest that polyamines affect biofilm formation in V. cholerae via multiple pathways involving both transport and signaling networks.  相似文献   

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Biofilms are a preferred mode of survival for many microorganisms including Vibrio cholerae, the causative agent of the severe secretory diarrhoeal disease cholera. The ability of the facultative human pathogen V. cholerae to form biofilms is a key factor for persistence in aquatic ecosystems and biofilms act as a source for new outbreaks. Thus, a better understanding of biofilm formation and transmission of V. cholerae is an important target to control the disease. So far the Vibrio exopolysaccharide was the only known constituent of the biofilm matrix. In this study we identify and characterize extracellular DNA as a component of the Vibrio biofilm matrix. Furthermore, we show that extracellular DNA is modulated and controlled by the two extracellular nucleases Dns and Xds. Our results indicate that extracellular DNA and the extracellular nucleases are involved in diverse processes including the development of a typical biofilm architecture, nutrient acquisition, detachment from biofilms and the colonization fitness of biofilm clumps after ingestion by the host. This study provides new insights into biofilm development and transmission of biofilm-derived V. cholerae.  相似文献   

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Cyclic diguanylate (c-di-GMP) is an allosteric activator and second messenger implicated in the regulation of a variety of biological processes in diverse bacteria. In Vibrio cholerae, c-di-GMP has been shown to inversely regulate biofilm-specific and virulence gene expression, suggesting that c-di-GMP signaling is important for the transition of V. cholerae from the environment to the host. However, the mechanism behind this regulation remains unknown. Recently, it was proposed that the PilZ protein domain represents a c-di-GMP-binding domain. Here we show that V. cholerae PilZ proteins bind c-di-GMP specifically and are involved in the regulation of biofilm formation, motility, and virulence. These findings confirm a role for PilZ proteins as c-di-GMP-sensing proteins within the c-di-GMP signaling network.  相似文献   

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Biofilms, or surface-attached communities of cells encapsulated in an extracellular matrix, represent a common lifestyle for many bacteria. Within a biofilm, bacterial cells often exhibit altered physiology, including enhanced resistance to antibiotics and other environmental stresses. Additionally, biofilms can play important roles in host-microbe interactions. Biofilms develop when bacteria transition from individual, planktonic cells to form complex, multi-cellular communities. In the laboratory, biofilms are studied by assessing the development of specific biofilm phenotypes. A common biofilm phenotype involves the formation of wrinkled or rugose bacterial colonies on solid agar media. Wrinkled colony formation provides a particularly simple and useful means to identify and characterize bacterial strains exhibiting altered biofilm phenotypes, and to investigate environmental conditions that impact biofilm formation. Wrinkled colony formation serves as an indicator of biofilm formation in a variety of bacteria, including both Gram-positive bacteria, such as Bacillus subtilis, and Gram-negative bacteria, such as Vibrio cholerae, Vibrio parahaemolyticus, Pseudomonas aeruginosa, and Vibrio fischeri. The marine bacterium V. fischeri has become a model for biofilm formation due to the critical role of biofilms during host colonization: biofilms produced by V. fischeri promote its colonization of the Hawaiian bobtail squid Euprymna scolopes. Importantly, biofilm phenotypes observed in vitro correlate with the ability of V. fischeri cells to effectively colonize host animals: strains impaired for biofilm formation in vitro possess a colonization defect, while strains exhibiting increased biofilm phenotypes are enhanced for colonization. V. fischeri therefore provides a simple model system to assess the mechanisms by which bacteria regulate biofilm formation and how biofilms impact host colonization. In this report, we describe a semi-quantitative method to assess biofilm formation using V. fischeri as a model system. This method involves the careful spotting of bacterial cultures at defined concentrations and volumes onto solid agar media; a spotted culture is synonymous to a single bacterial colony. This 'spotted culture' technique can be utilized to compare gross biofilm phenotypes at single, specified time-points (end-point assays), or to identify and characterize subtle biofilm phenotypes through time-course assays of biofilm development and measurements of the colony diameter, which is influenced by biofilm formation. Thus, this technique provides a semi-quantitative analysis of biofilm formation, permitting evaluation of the timing and patterning of wrinkled colony development and the relative size of the developing structure, characteristics that extend beyond the simple overall morphology.  相似文献   

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