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1.
细菌毒素-抗毒素系统的研究进展   总被引:1,自引:0,他引:1  
毒素-抗毒素系统(toxin-antitoxin system,TA)由两个共表达的基因组成,其中一个基因编码不稳定的抗毒素蛋白(antitoxin),另一个基因编码稳定的毒素蛋白(toxin).毒素-抗毒素系统最早发现于一些低拷贝的质粒,用来维持低拷贝质粒在菌群中的稳定存在.随后的研究表明,毒素-抗毒素系统广泛存在于细菌,包括一些致病菌的染色体上.在营养缺乏等不良生长条件下,由于基因表达的抑制和蛋白酶的降解作用,不稳定的抗毒素蛋白减少,从而产生游离的毒素蛋白,导致细菌的生长抑制和死亡.毒素-抗毒素系统的生理功能目前还存在争议,有学者认为细茼染色体上的毒素-抗毒素系统可以在不良生长状况下介导细菌的死亡,即细茼程序性细胞死亡(baeterial programmedcell death).但也有证据显示,毒素-抗毒素系统的功能更偏向于应激状态下的生理调节方面,即只起应激状态下的抑菌作用而不是杀菌作用.对细菌生长调控中毒素-抗毒素系统的作用机理进行综述,并探讨毒素-抗毒素系统研究的理论和应用价值.  相似文献   

2.
毒素-抗毒素系统(toxin-antitoxin system,TAS)广泛存在于细菌染色体及质粒上,是细菌中含量丰富的小型遗传元件。TAS通常由两个紧密相连的基因组成,分别编码毒素(toxin)和抗毒素(antitoxin),稳定的毒素能够损伤宿主细胞,不稳定的抗毒素能够保护宿主细胞免于毒素的损伤作用。依据其性质和作用方式,目前已经发现三种型别的TAS。TAS具有多种生物学作用,如诱导程序性细胞死亡(programmed cell death,PCD),应激条件下介导持留菌形成(persistence),稳定基因大片段等。本文就近几年TAS在应激条件下的生物学作用的研究进展做一综述。  相似文献   

3.
毒素-抗毒素(toxin-antitoxin,TA)系统是广泛存在细菌基因组上的由两个基因组成的操纵子,分别编码稳定的毒素蛋白和不稳定的抗毒素,其中毒素蛋白具有多种生物学功能。持留菌是指能够耐受高浓度抗生素或不利环境的一类细菌,它们同样具有TA系统。现就毒素-抗毒素系统介导持留菌形成机制的研究进展作一综述。  相似文献   

4.
毒素-抗毒素系统(Toxin-antitoxin system,TA系统)存在于大部分细菌中。mazEF是大肠杆菌中一种毒素-抗毒素系统。毒素基因mazF编码的MazF毒素蛋白可以特异性地剪切自由mRNA的ACA序列,从而抑制蛋白合成、引起细胞生长停滞;近些年,许多学者利用mazF基因作为反向筛选标记对不同种微生物建立了无标记或无痕的基因修饰系统,并实现了不同菌株的基因组修饰。主要综述了大肠杆菌mazF基因作为反向筛选基因的应用原理及其在不同种类微生物的基因修饰系统中的应用进展,然后对mazF基因及其他毒素基因在基因修饰系统中的应用进行了展望。  相似文献   

5.
将特异肉毒抗毒素基因克隆入载体pPIC9k,G418抗性加压筛选阳性整合克隆,在毕赤酵母细胞GS115中进行分泌表达。获得了稳定分泌表达ScFv的工程菌,SDS-PAGE分析可见,目的蛋白分子量约为26kD,通过放大体积来探索重组抗毒素的诱导表达条件及纯化工艺,结果发现,1%甲醇诱导后72~84h,目的蛋白的表达达到高峰,占酵母培养上清中总蛋白的15%以上,经两步层析纯化,目的蛋白纯度可达95%。竞争活性测定结果表明,重组抗毒素在体外具有良好的活性,可竞争肉毒抗毒素马血清与毒素的特异结合。  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】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   

8.
将特异肉毒抗毒素基因克隆入载体pPIC9k,G418抗性加压筛选阳性整合克隆,在毕赤酵母细胞GS115中进行分泌表达。获得了稳定分泌表达ScFv的工程菌,SDS—PAGE分析可见,目的蛋白分子量约为26kD,通过放大体积来探索重组抗毒素的诱导表达条件及纯化工艺,结果发现,1%甲醇诱导后72~84h,目的蛋白的表达达到高峰,占酵母培养上清中总蛋白的15%以上,经两步层析纯化,目的蛋白纯度可达95%。竞争活性测定结果表明,重组抗毒素在体外具有良好的活性,可竞争肉毒抗毒素马血清与毒素的特异结合。  相似文献   

9.
目的:构建炭疽受体CMG2和人IgG1 Fc片段融合基因载体,转染CHO细胞并通过毒素中和试验检测CMG2-Fc拮抗炭疽毒素(PA+LF)的能力。方法:将含有CMG2胞外区1-217AA片度基因和人IgG1的Fc片段基因共同连接入pcDNA3.1载体转染CHO细胞并筛选高表达CMG2-Fc的CHO细胞系,通过小鼠RAW264.7巨噬细胞保护试验检测CMG2-Fc拮抗炭疽毒素的能力。结果:获得了表达CMG2-Fc的细胞株,毒素中和实验显示该蛋白可以有效抑制炭疽毒素引起的细胞损伤。结论:CMG2-Fc能够保护小鼠巨噬细胞免受炭疽毒素攻击,提示其可以作为抗毒素治疗炭疽感染。  相似文献   

10.
重组细菌载体疫苗因其能够诱导机体产生粘膜免疫、体液免疫和细胞免疫的特点,已经被广泛用作递送保护性抗原和核酸疫苗的载体来预防某些传染病。但是重组到细菌载体疫苗中的保护性抗原和核酸难以穿越细菌细胞壁释放到宿主细胞内发挥作用,残留在动物或畜禽产品中的疫苗菌株还可能造成环境的污染和疫苗菌株的传播。而有效解决这些问题的方法是构建一种细菌自动裂解系统,使疫苗菌株能够在体外培养时正常生长而在体内环境中自动裂解死亡。目前主要应用的细菌裂解系统包括:基于调控延迟肽聚糖合成的裂解系统、基于噬菌体裂解蛋白调控的裂解系统、基于毒素-抗毒素系统(Toxin-antitoxin system)的裂解系统。此外,一种潜在的基于细菌Ⅵ型分泌系统(Type Ⅵ secretion system,T6SS)的裂解系统也有望成为构建自动裂解菌株的新方法。文中将着重对这几种裂解系统的调控机制进行阐述。  相似文献   

11.
12.
Intricate interactions within the ccd plasmid addiction system.   总被引:3,自引:0,他引:3  
The ccd addiction system plays a crucial role in the stable maintenance of the Escherichia coli F plasmid. It codes for a stable toxin (CcdB) and a less stable antidote (CcdA). Both are expressed at low levels during normal cell growth. Upon plasmid loss, CcdB outlives CcdA and kills the cell by poisoning gyrase. The interactions between CcdB, CcdA, and its promoter DNA were analyzed. In solution, the CcdA-CcdB interaction is complex, leading to various complexes with different stoichiometry. CcdA has two binding sites for CcdB and vice versa, permitting soluble hexamer formation but also causing precipitation, especially at CcdA:CcdB ratios close to one. CcdA alone, but not CcdB, binds to promoter DNA with high on and off rates. The presence of CcdB enhances the affinity and the specificity of CcdA-DNA binding and results in a stable CcdA*CcdB*DNA complex with a CcdA:CcdB ratio of one. This (CcdA(2)CcdB(2))(n) complex has multiple DNA-binding sites and spirals around the 120-bp promoter region.  相似文献   

13.
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   

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17.
The two opponents, toxin (CcdB, LetB or LetD, protein G, LynB) and antidote (CcdA, LetA, protein H, LynA), in the plasmid addiction system ccd of the F plasmid were studied by different biophysical methods. The thermodynamic stability was measured at different temperatures combining denaturant and thermally induced unfolding. It was found that both proteins denature in a two-state equilibrium (native dimer versus unfolded monomer) and that CcdA has a significantly lower thermodynamic stability. Using a numerical model, which was developed earlier by us, and on the basis of the determined thermodynamic parameters the concentration dependence of the denaturation transition temperature was obtained for both proteins. This concentration dependence may be of physiological significance, as the concentration of both ccd addiction proteins cannot exceed a certain limit because their expression is controlled by autoregulation.The influence of DNA on the thermal stability of the two proteins was probed. It was found that cognate DNA increases the melting temperature of CcdA. In the presence of non-specific DNA the thermal stability was not changed. The melting temperature of CcdB was not influenced by the applied double-stranded oligonucleotides, neither cognate nor unspecific.  相似文献   

18.
The F plasmid-carried bacterial toxin, the CcdB protein, is known to act on DNA gyrase in two different ways. CcdB poisons the gyrase-DNA complex, blocking the passage of polymerases and leading to double-strand breakage of the DNA. Alternatively, in cells that overexpress CcdB, the A subunit of DNA gyrase (GyrA) has been found as an inactive complex with CcdB. We have reconstituted the inactive GyrA-CcdB complex by denaturation and renaturation of the purified GyrA dimer in the presence of CcdB. This inactivating interaction involves the N-terminal domain of GyrA, because similar inactive complexes were formed by denaturing and renaturing N-terminal fragments of the GyrA protein in the presence of CcdB. Single amino acid mutations, both in GyrA and in CcdB, that prevent CcdB-induced DNA cleavage also prevent formation of the inactive complexes, indicating that some essential interaction sites of GyrA and of CcdB are common to both the poisoning and the inactivation processes. Whereas the lethal effect of CcdB is most probably due to poisoning of the gyrase-DNA complex, the inactivation pathway may prevent cell death through formation of a toxin-antitoxin-like complex between CcdB and newly translated GyrA subunits. Both poisoning and inactivation can be prevented and reversed in the presence of the F plasmid-encoded antidote, the CcdA protein. The products of treating the inactive GyrA-CcdB complex with CcdA are free GyrA and a CcdB-CcdA complex of approximately 44 kDa, which may correspond to a (CcdB)2(CcdA)2 heterotetramer.  相似文献   

19.
Microcin B17 (MccB17) is a peptide antibiotic produced by Escherichia coli strains carrying the pMccB17 plasmid. MccB17 is synthesized as a precursor containing an amino-terminal leader peptide that is cleaved during maturation. Maturation requires the product of the chromosomal tldE (pmbA) gene. Mature microcin is exported across the cytoplasmic membrane by a dedicated ABC transporter. In sensitive cells, MccB17 targets the essential topoisomerase II DNA gyrase. Independently, tldE as well as tldD mutants were isolated as being resistant to CcdB, another natural poison of gyrase encoded by the ccd poison-antidote system of plasmid F. This led to the idea that TldD and TldE could regulate gyrase function. We present in vivo evidence supporting the hypothesis that TldD and TldE have proteolytic activity. We show that in bacterial mutants devoid of either TldD or TldE activity, the MccB17 precursor accumulates and is not exported. Similarly, in the ccd system, we found that TldD and TldE are involved in CcdA and CcdA41 antidote degradation rather than being involved in the CcdB resistance mechanism. Interestingly, sequence database comparisons revealed that these two proteins have homologues in eubacteria and archaebacteria, suggesting a broader physiological role.  相似文献   

20.
Toxin-antitoxin (TA) systems are widespread among bacterial chromosomes and mobile genetic elements. Although in plasmids TA systems have a clear role in their vertical inheritance by selectively killing plasmid-free daughter cells (postsegregational killing or addiction phenomenon), the physiological role of chromosomally encoded ones remains under debate. The assumption that chromosomally encoded TA systems are part of stress response networks and/or programmed cell death machinery has been called into question recently by the observation that none of the five canonical chromosomally encoded TA systems in the Escherichia coli chromosome seem to confer any selective advantage under stressful conditions (V. Tsilibaris, G. Maenhaut-Michel, N. Mine, and L. Van Melderen, J. Bacteriol. 189:6101-6108, 2007). Their prevalence in bacterial chromosomes indicates that they might have been acquired through horizontal gene transfer. Once integrated in chromosomes, they might in turn interfere with their homologues encoded by mobile genetic elements. In this work, we show that the chromosomally encoded Erwinia chrysanthemi ccd (control of cell death) (ccd(Ech)) system indeed protects the cell against postsegregational killing mediated by its F-plasmid ccd (ccd(F)) homologue. Moreover, competition experiments have shown that this system confers a fitness advantage under postsegregational conditions mediated by the ccd(F) system. We propose that ccd(Ech) acts as an antiaddiction module and, more generally, that the integration of TA systems in bacterial chromosomes could drive the evolution of plasmid-encoded ones and select toxins that are no longer recognized by the antiaddiction module.  相似文献   

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