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1.
姚宁  鲁重  王菲  钟孝俊  杨梦华 《微生物学报》2022,62(12):5043-5055
【目的】探究双组分系统(two-component system,TCS)EnvZ/OmpR对副溶血弧菌(Vibrio parahaemolyticus,VP)抵抗碱胁迫的作用机制。【方法】用SMART在线工具(https://smart.embl.de/)鉴定出副溶血弧菌基因组中的双组分系统EnvZ/OmpR,再利用同源重组技术将envZompR基因分别进行缺失,构建相应回补株,比较各菌株的生长曲线来检测相应基因对细菌适应高渗透胁迫和碱胁迫的作用,并结合qRT-PCR及荧光检测系统,筛选参与EnvZ/OmpR抵抗碱胁迫的下游靶基因,鉴定该双组分系统对下游基因的调控机制。【结果】在副溶血弧菌基因组中鉴定出vp0155/vp0154编码EnvZ/OmpR双组分系统同源蛋白。△ompR菌株在高渗透胁迫和碱胁迫中的生长能力明显弱于野生株,而回补株C△ompR、△envZ和C△envZ菌株生长能力与野生株类似。在△ompR菌株中,孔道蛋白基因vp1218vp0493vpa1745vpa0085vpa1308的转录水平均明显低于野生株,并且发现这些孔道蛋白基因缺失株(△vpa1308除外)在碱性环境中生长能力均明显弱于野生株。OmpR蛋白可直接抑制调控因子AphB基因转录,而△aphB菌株在碱胁迫中的生长能力明显强于野生株。此外,AphB蛋白可直接抑制孔道蛋白基因vp0493vpa0085转录。【结论】双组分系统EnvZ/OmpR促进副溶血弧菌抵抗碱胁迫,其中OmpR蛋白可通过抑制调控因子AphB的表达,以促进部分孔道蛋白的表达,从而增强副溶血弧菌抵抗碱胁迫的能力。  相似文献   

2.
组氨酸氨解酶(HutH)作为组氨酸代谢通路上的第一个代谢酶,控制细菌内部组氨酸的代谢。HutH在多数细菌中高度保守,参与细菌的能量代谢平衡。【目的】选取HutH作为研究对象,探究其对副溶血弧菌生物学特性以及致病性的影响。【方法】利用同源重组的方法构建缺失株ΔhutH和回补株CΔhutH。研究HutH对副溶血弧菌生长特性、组氨酸利用能力、组氨酸代谢相关基因表达水平、运动性、生物被膜、环境耐受、细胞毒性以及对小鼠毒力的影响。【结果】与野生型菌株相比,hutH基因缺失不影响副溶血弧菌的生长特性、耐酸耐碱能力、耐盐能力和群集运动。但ΔhutH在组氨酸作为唯一碳源的M9极限培养基中生长受到显著抑制。另外,我们证实,hutH基因缺失使组氨酸代谢操纵子内的相关基因转录水平显著下降,基因VP0889的表达水平提高。hutH基因缺失导致副溶血弧菌生物被膜形成能力下降、泳动能力下降、对HeLa细胞的毒性降低、对ICR小鼠的致死率显著降低。【结论】本研究表明,hutH基因缺失影响副溶血弧菌代谢组氨酸的能力,而且首次证实,HutH在副溶血弧菌的生物被膜形成、运动性和对小鼠毒力等方面具有重要作用,为从调控组氨酸...  相似文献   

3.
[目的] 以副溶血弧菌VP2918为研究对象,研究其对副溶血弧菌的生物学特性和致病性的影响。[方法] 利用同源重组技术构建了vp2918基因的基因缺失株(Δvp2918)和互补株(CΔvp2918),并对野生株、缺失株和互补株的细菌生长曲线、运动性、生物被膜形成能力、对HeLa细胞的黏附能力、细胞毒性、对小鼠的致死率和组织载菌量进行分析。[结果] 缺失vp2918基因不影响副溶血弧菌的生长特性、运动性、生物被膜形成能力以及对HeLa细胞的黏附能力。但与野生株相比,Δvp2918对HeLa细胞的毒性作用显著降低;感染Δvp2918的小鼠症状明显减轻,存活率更高;Δvp2918在小鼠脾脏和肝脏中的载菌量显著低于野生株,互补株毒力基本恢复至野生株水平。[结论] vp2918不参与副溶血弧菌的运动性和生物被膜形成能力等过程,但与该菌的致病性相关,为潜在的毒力因子。  相似文献   

4.
【目的】猪链球菌(Streptococcus suis)是一种重要的人畜共患病病原,本研究旨在鉴定猪链球菌乙酰基转移酶毒素类毒素-抗毒素系统,并对其毒素功能进行分析,探讨猪链球菌毒素-抗毒素系统在细菌感染过程中发挥的作用。【方法】前期预测猪链球菌血清型5型菌株HN105基因组中假定的Ⅱ型毒素-抗毒素系统。进一步鉴定毒素-抗毒素系统的活性并分析该毒素-抗毒素系统的遗传进化关系;运用Westernblotting揭示毒素在猪链球菌内的表达情况。同时以HN105为亲本株,构建毒素缺失株、抗毒素缺失株以及毒素-抗毒素缺失株,研究该系统对猪链球菌黏附能力、生物被膜形成能力、抗吞噬与胞内存活能力的影响。【结果】预测并鉴定出猪链球菌血清型5型菌株HN105基因组中DF184_RS00980-DF184_RS00985编码的乙酰基转移酶(Gcn5-related N-acetyltransferase,GNAT)毒素类毒素-抗毒素系统,根据保守结构域将该系统命名为SsMarR-SsGNAT。SsGNAT毒素在大肠杆菌(Escherichia coli)的周质间隙发挥毒性作用,且抗毒素可以中和毒素的毒性...  相似文献   

5.
【目的】鉴定结核分枝杆菌基因组上MazF同源蛋白基因与其上游基因是否组成毒素-抗毒素系统,阐明毒素蛋白的作用机理,并初步探讨毒素-抗毒素系统在营养缺乏时的表达调控。【方法】在大肠杆菌和耻垢分枝杆菌中将MazF同源蛋白单独表达或与其对应的抗毒素蛋白共同表达,鉴定MazF同源蛋白对细菌生长的抑制作用以及其对应的抗毒素蛋白能否消除这种生长抑制;通过体外RNA切割实验,检测MazF同源蛋白是否具有RNA切割活性;检测正常生长条件下和饥饿条件下毒素-抗毒素系统的启动子活性,探讨其在应激条件下的表达调控。【结果】结核分枝杆菌MazF同源蛋白中,Rv0659c、Rv1495和Rv1942c不具有抑制细菌生长的毒素蛋白活性,Rv1991c、Rv2801c、Rv1102c和mtPemK能够抑制细菌生长,而且它们的抑制作用可以分别被其对应的抗毒素Rv1991a、Rv2801a、Rv1103c和mtPemI解除。Rv1991c、Rv2801c和Rv1102c具有RNA切割活性,mtPemK则不能切割RNA。Rv1991a-1991c和Rv2801a-2801c系统的启动子在饥饿条件下活性显著升高。【结论】结核分枝杆菌基因组上Rv1991a-1991c、Rv2801a-2801c、Rv1103c-1102c和mtPemI-mtPemK是毒素-抗毒素系统。毒素蛋白Rv1991c、Rv2801c和Rv1102c通过切割RNA发挥抑菌或杀菌活性,mtPemK具体作用机理目前还不清楚。Rv1991a-1991c和Rv2801a-2801c系统可能参与结核分枝杆菌在营养匮乏条件下的生长调控。  相似文献   

6.
【背景】毒素-抗毒素系统在微生物体内广泛存在,在微生物对抗外界不良环境方面发挥重要作用。【目的】以模式细菌假结核耶尔森氏菌(Yersinia pseudotuberculosis,Yptb)为材料,探究其编码的Phd-Doc毒素-抗毒素系统的作用机制和生物学功能。【方法】通过生物信息学方法预测Yptb中编码的Phd-Doc毒素-抗毒素系统,通过毒性分析、基因表达分析及蛋白相互作用对其进行鉴定;通过抗生素胁迫、氧胁迫、生物被膜形成等实验研究Phd-Doc在体内发挥的生物学功能。【结果】生物信息学分析鉴定出一对Phd-Doc毒素-抗毒素系统,发现二者共转录且相互作用;毒素蛋白Doc能够引起大肠杆菌形态发生变化并抑制其生长,抗毒素蛋白Phd能中和Doc的毒性;Phd-Doc毒素-抗毒素系统具有自调控抑制效应;phd-doc的缺失对Yptb自身的生长无影响,而且毒素蛋白Doc在野生型Yptb内过表达并未显示毒性;phd-doc在转录水平上响应了抗生素胁迫和氧胁迫,其中,对氯霉素胁迫最为敏感,但并不影响Yptb的生长;同时,Phd-Doc能够影响Yptb的生物被膜形成能力。【结论】Yptb中Phd-Doc毒素-抗毒素系统的功能鉴定对于更好地了解在多变的外部环境下微生物的定殖和响应机制具有重要意义。  相似文献   

7.
【目的】利用大肠杆菌BL21λDE3表达系统,表达出有活性的副溶血弧菌(Vibrio parahaemolyticus,VP)ToxR截短体蛋白,为进一步研究ToxR的转录调控机制奠定基础。【方法】以VP基因组DNA为模板,PCR扩增ToxR蛋白DNA结合结构域(ToxR-N)的DNA片段,并将其直接克隆入pET28a中,获得重组质粒;将重组质粒导入大肠杆菌BL21λDE3中,所得菌株经IPTG诱导后能表达出His-ToxR-N蛋白。利用限制级凝血酶切除His-ToxR-N中的His-标签,进而以VP的calR和VP1687为靶基因,通过体外的凝胶阻滞实验(EMSA)验证ToxR-N蛋白的DNA结合活性。分别构建克隆有calR和VP1687上游启动子区的LacZ重组质粒,并将重组质粒转入野生株(WT)和toxR突变株(ΔtoxR)中,通过测定β-半乳糖苷酶活性来比较两株重组菌中靶基因启动子活性,以验证ToxR对calR和VP1687的调控关系。【结果】成功表达出有活性的ToxR-N蛋白,该蛋白对calR启动子区具有结合活性。LacZ结果显示ToxR对calR的转录具有激活作用,而对VP1687的转录具有抑制作用。【结论】所表达的ToxR-N可用于后续的转录调控机制研究;ToxR通过直接激活calR的转录表达,而间接抑制T3SS1相关基因的表达。  相似文献   

8.
【背景】副溶血性弧菌是一种非常重要的食源性致病菌,CalR蛋白是一种全局转录调节因子。III型分泌系统2 (Type 3 secretion systems 2 T3SS2)是副溶血性弧菌主要的毒力因子,vopB2是T3SS2中的一个关键效应蛋白。【目的】研究副溶血弧菌CalR对vopB2的转录调控机制。【方法】利用引物延伸实验鉴定vopB2及vtrA的转录起始位点,并根据产物的丰度判断CalR对靶基因的调控关系;采用实时定量RT-PCR研究靶基因mRNA在WT和ΔcalR中转录丰度,验证CalR对靶基因的转录调控关系,进一步利用LacZ实验通过比较β-半乳糖苷酶活性的差异来判定CalR对靶基因的调控关系;利用凝胶阻滞实验分析His-CalR对靶基因启动子区是否具有直接的结合作用。【结果】vopB2有两个转录起始位点A(-130和-28)且其活性受CalR的直接抑制;引物延伸和LacZ结果表明CalR对vtrA的转录并无调控作用。【结论】CalR直接抑制vopB2的转录,该抑制作用与vtrA无关联。  相似文献   

9.
【目的】探究副溶血弧菌群体感应(quorum sensing,QS)系统核心调控子AphA和OpaR对mshH基因的转录调控。【方法】提取特定条件下副溶血弧菌野生株(wild-type,WT)和调控子基因突变株(ΔaphA和ΔopaR)的总RNA,采用实时定量PCR (quantitative real-time PCR,qPCR)研究AphA和OpaR对mshH基因的转录调控关系以及mshH基因的时相依赖性表达特性;将mshH启动子区DNA序列克隆入pHRP309质粒β-半乳糖苷酶基因的上游,构建LacZ重组质粒,并将其转入WT、ΔaphA和ΔopaR中,获得LacZ实验菌株,再通过LacZ报告基因融合实验研究AphA和OpaR对mshH基因的调控关系以及mshH基因的时相依赖性表达特性;PCR扩增mshH上游启动子区DNA序列,并纯化His-AphA和His-OpaR蛋白,通过凝胶阻滞实验(electrophoretic mobility shift assay,EMSA)和DNase I足迹实验,研究体外条件下His-AphA和His-OpaR对靶基因启动子区DNA片段是否具有直...  相似文献   

10.
摘要:【目的】发掘副溶血弧菌特异性更强的检测靶点,并人工构建扩增内标,建立可以有效避免假阴性的新PCR检测体系。【方法】利用生物信息学方法,从副溶血弧菌(Vibrio parahaemolyticus)基因组DNA中发掘特异性很高的序列,并设计相应的特异性引物,人工构建扩增内标,建立PCR检测体系。【结果】本研究发掘得到的序列vp1332特异性很强,经检索,该序列是编码ABC转运子接合蛋白组分的基因片段,根据此序列设计一对特异检测引物(vp1332L/vp1332R),同时,构建了扩增内标,并建立了PCR检测体系。利用该体系对296株副溶血弧菌和33株非副溶血弧菌进行检测,结果显示,所有以副溶血弧菌为模板的PCR反应均可扩增到一条343 bp的特异片段,而模板来源于非副溶血弧菌的则只能扩增到一条499 bp的扩增内标片段。灵敏度实验表明,该PCR反应体系的检测灵敏度为1.6×102 cfu/mL。人工污染实验表明,起始染菌量为1.24 cfu/25 g样品时经8 h增菌,即可检测到副溶血弧菌。实际样品检测结果也证实该方法的有效性。【结论】本研究建立的PCR反应体系能特异地检测副溶血弧菌,并可有效地排除假阴性,提高检测准确率。  相似文献   

11.
Toxin-antitoxin (TA) systems are widely represented on mobile genetic elements as well as in bacterial chromosomes. TA systems encode a toxin and an antitoxin neutralizing it. We have characterized a homolog of the ccd TA system of the F plasmid (ccd(F)) located in the chromosomal backbone of the pathogenic O157:H7 Escherichia coli strain (ccd(O157)). The ccd(F) and the ccd(O157) systems coexist in O157:H7 isolates, as these pathogenic strains contain an F-related virulence plasmid carrying the ccd(F) system. We have shown that the chromosomal ccd(O157) system encodes functional toxin and antitoxin proteins that share properties with their plasmidic homologs: the CcdB(O157) toxin targets the DNA gyrase, and the CcdA(O157) antitoxin is degraded by the Lon protease. The ccd(O157) chromosomal system is expressed in its natural context, although promoter activity analyses revealed that its expression is weaker than that of ccd(F). ccd(O157) is unable to mediate postsegregational killing when cloned in an unstable plasmid, supporting the idea that chromosomal TA systems play a role(s) other than stabilization in bacterial physiology. Our cross-interaction experiments revealed that the chromosomal toxin is neutralized by the plasmidic antitoxin while the plasmidic toxin is not neutralized by the chromosomal antitoxin, whether expressed ectopically or from its natural context. Moreover, the ccd(F) system is able to mediate postsegregational killing in an E. coli strain harboring the ccd(O157) system in its chromosome. This shows that the plasmidic ccd(F) system is functional in the presence of its chromosomal counterpart.  相似文献   

12.
13.
【目的】对我国高致病性2型猪链球菌05Z33基因组的89K毒力岛序列进行生物信息学分析,发现存在一对与化脓链球菌Epsilon-zeta(ε-ζ)同源的Ⅱ型毒素-抗毒素系统(Toxin-antitoxin system,TA)——SezAT,推测该系统具有稳定89K毒力岛使其不易丢失的作用。验证SezAT为有活性的TA系统。【方法】对SezAT进行了生物信息学分析;RT-PCR验证SezAT共转录特性;在大肠杆菌中选择性地诱导表达毒素蛋白SezT和抗毒素蛋白SezA;最后通过同源重组技术敲除SezAT系统。【结果】sezAT由同一操纵子控制,SezT可抑制细菌生长,SezA可中和SezT的毒性作用,同源重组成功获得sezT敲除突变株。【结论】证实SezAT为一对有活性的毒素-抗毒素(TA)系统,为进一步研究SezAT可能发挥稳定89K毒力岛的功能,同时获得89K毒力岛缺失突变株并深入认识89K在我国高致病性SS2中的作用奠定了基础。  相似文献   

14.
The chromosomal ntrPR operon of Sinorhizobium meliloti encodes a protein pair that forms a toxin-antitoxin (TA) module, the first characterized functional TA system in Rhizobiaceae. Similarly to other bacterial TA systems, the toxin gene ntrR is preceded by and partially overlaps with the antitoxin gene ntrP. Based on protein homologies, the ntrPR operon belongs to the vapBC family of TA systems. The operon is negatively autoregulated by the NtrPNtrR complex. Promoter binding by NtrP is weak; stable complex formation also requires the presence of NtrR. The N-terminal part of NtrP is responsible for the interaction with promoter DNA, whereas the C-terminal part is required for protein-protein interactions. In the promoter region, a direct repeat sequence was identified as the binding site of the NtrPNtrR complex. NtrR expression resulted in the inhibition of cell growth and colony formation; this effect was counteracted by the presence of the antitoxin NtrP. These results and our earlier observations demonstrating a less effective downregulation of a wide range of symbiotic and metabolic functions in the ntrR mutant under microoxic conditions and an increased symbiotic efficiency with the host plant alfalfa suggest that the ntrPR module contributes to adjusting metabolic levels under symbiosis and other stressful conditions.  相似文献   

15.
基于猪细小病毒病毒样颗粒的结肠癌靶向纳米载体的构建   总被引:1,自引:0,他引:1  
【目的】获得具有结肠靶向的纳米载体。【方法】采用SOE-PCR方法将具有结肠靶向的TK肽序列插入到猪细小病毒(PPV)结构蛋白VP2的环2和环4区域得到TK-vp2(?vp2)基因,在Bac-to-Bac?杆状病毒表达系统中构建、表达和自组装。【结果】通过SOE-PCR方法扩增获得?vp2基因,在Bac-to-Bac?杆状病毒表达系统中构建得到Bacmid-?vp2,经脂质体转染至Sf9昆虫细胞得到重组杆状病毒。直接免疫荧光试验、SDS-PAGE和Western blot检测结果表明?VP2蛋白在Bac-to-Bac?杆状病毒表达系统中获得融合表达,目的蛋白约70 k D;透射电子显微镜结果显示?VP2能自组装形成病毒样颗粒(TK-VLPs),直径范围在22 nm-30 nm。【结论】获得纳米载体TK-VLPs,为进一步研究其作为结肠靶向的纳米载体奠定物质基础。  相似文献   

16.
Toxin–antitoxin (TA) systems are prevalent in bacteria and archaea. However, related studies in the ecologically and bioelectrochemically important strain Shewanella oneidensis are limited. Here, we show that SO_3166, a member of the higher eukaryotes and prokaryotes nucleotide-binding (HEPN) superfamily, strongly inhibited cell growth in S. oneidensis and Escherichia coli. SO_3165, a putative minimal nucleotidyltransferase (MNT), neutralized the toxicity of SO_3166. Gene SO_3165 lies upstream of SO_3166, and they are co-transcribed. Moreover, the SO_3165 and SO_3166 proteins interact with each other directly in vivo, and antitoxin SO_3165 bound to the promoter of the TA operon and repressed its activity. Finally, the conserved Rx4-6H domain in HEPN family was identified in SO_3166. Mutating either the R or H abolished SO_3166 toxicity, confirming that Rx4-6H domain is critical for SO_3166 activity. Taken together, these results demonstrate that SO_3166 and SO_3165 in S. oneidensis form a typical type II TA pair. This TA pair plays a critical role in regulating bacterial functions because its disruption led to impaired cell motility in S. oneidensis. Thus, we demonstrated for the first time that HEPN-MNT can function as a TA system, thereby providing important insights into the understanding of the function and regulation of HEPNs and MNTs in prokaryotes.  相似文献   

17.
Cyanobacteria have evolved to survive stressful environmental changes by regulating growth, however, the underlying mechanism for this is obscure. The ability of chromosomal type II toxin-antitoxin (TA) systems to modulate growth or cell death has been documented in a variety of prokaryotes. A chromosomal mazEaFa locus of Anabaena sp. PCC 7120 has been predicted as a putative mazEF TA system. Here we demonstrate that mazEaFa form a bicistronic operon that is co-transcribed under normal growth conditions. Overproduction of MazFa induced Anabaena growth arrest which could be neutralized by co-expression of MazEa. MazFa also inhibited the growth of Escherichia coli cells, and this effect could be overcome by simultaneous or subsequent expression of MazEa via formation of the MazEa-MazFa complex in vivo, further confirming the nature of the mazEaFa locus as a type II TA system. Interestingly, like most TA systems, deletion of mazEaFa had no effect on the growth of Anabaena during the tested stresses. Our data suggest that mazEaFa, or together with other chromosomal type II TA systems, may promote cells to cope with particular stresses by inducing reversible growth arrest of Anabaena.  相似文献   

18.
Toxin-antitoxin (TA) systems are prevalent in many bacterial genomes and have been implicated in biofilm and persister cell formation, but the contribution of individual chromosomally encoded TA systems during bacterial pathogenesis is not well understood. Of the known TA systems encoded by Escherichia coli, only a subset is associated with strains of extraintestinal pathogenic E. coli (ExPEC). These pathogens colonize diverse niches and are a major cause of sepsis, meningitis, and urinary tract infections. Using a murine infection model, we show that two TA systems (YefM-YoeB and YbaJ-Hha) independently promote colonization of the bladder by the reference uropathogenic ExPEC isolate CFT073, while a third TA system comprised of the toxin PasT and the antitoxin PasI is critical to ExPEC survival within the kidneys. The PasTI TA system also enhances ExPEC persister cell formation in the presence of antibiotics and markedly increases pathogen resistance to nutrient limitation as well as oxidative and nitrosative stresses. On its own, low-level expression of PasT protects ExPEC from these stresses, whereas overexpression of PasT is toxic and causes bacterial stasis. PasT-induced stasis can be rescued by overexpression of PasI, indicating that PasTI is a bona fide TA system. By mutagenesis, we find that the stress resistance and toxic effects of PasT can be uncoupled and mapped to distinct domains. Toxicity was specifically linked to sequences within the N-terminus of PasT, a region that also promotes the development of persister cells. These results indicate discrete, multipurpose functions for a TA-associated toxin and demonstrate that individual TA systems can provide bacteria with pronounced fitness advantages dependent on toxin expression levels and the specific environmental niche occupied.  相似文献   

19.
20.
Chromosomal toxin-antitoxin (TA) systems are widespread among free-living bacteria and are supposedly involved in stress tolerance. Here, we report the first TA system identified in the soil bacterium Pseudomonas putida. The system, encoded by the loci PP1586-PP1585, is conserved in pseudomonads and belongs to the HigBA family. The new TA pair was named GraTA for the growth rate-affecting ability of GraT and the antidote activity of GraA. The GraTA system shares many features common to previously described type II TA systems. The overexpression of GraT is toxic to the antitoxin deletion mutants, since the toxin''s neutralization is achieved by binding of the antitoxin. Also, the graTA operon structure and autoregulation by antitoxin resemble those of other TA loci. However, we were able to delete the antitoxin gene from the chromosome, which shows the unusually mild toxicity of innate GraT compared to previously described toxins. Furthermore, GraT is a temperature-dependent toxin, as its growth-regulating effect becomes more evident at lower temperatures. Besides affecting the growth rate, GraT also increases membrane permeability, resulting in higher sensitivity to some chemicals, e.g., NaCl and paraquat. Nevertheless, the active toxin helps the bacteria survive under different stressful conditions and increases their tolerance to several antibiotics, including streptomycin, kanamycin, and ciprofloxacin. Therefore, our data suggest that GraT may represent a new class of mild chromosomal regulatory toxins that have evolved to be less harmful to their host bacterium. Their moderate toxicity might allow finer growth and metabolism regulation than is possible with strong growth-arresting or bactericidal toxins.  相似文献   

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