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原核生物同一种群的每个细胞都是和外界环境直接接触的,它们主要通过开启或关闭某些基因的表达来适应环境条件。所以,环境因子往往是调控的效应因子,必须严格调控转录来确保细胞对环境改变做出有效且充分的反应。原核生物基因的表达受多种因素的调控,而对于大多数细菌来说,调控基因表达的关键步骤是启动子识别和RNA聚合酶启动转录。在细菌的细胞中,可以通过调节RNA聚合酶的活性以及改变RNA聚合酶对启动子的结合来优化基因的转录过程以适应不同环境变化。总结了目前已发现的参与细菌细胞转录调节的各类因子,从这些因子对启动子的作用、RNA聚合酶的作用以及两者的相互作用等方面阐述它们调控基因表达的分子机制。总结多种基因调控的作用,加深对转录起始过程的认识,希望能对未来调控转录起始过程来实现目标基因的高效表达和不利基因的抑制表达提供思路,为以后的工业菌株改造提供依据。  相似文献   

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The interaction of RNA polymerase II with non-promoter DNA sites.   总被引:1,自引:0,他引:1       下载免费PDF全文
Various complexes formed between purified RNA polymerase II and simian virus 40 DNA have been characterized with respect to rates of formation, rates of dissociation, and initial velocity of RNA synthesis. Two different types of complexes can form on intact DNA templates. One of these is formed rapidly, but is quite labile; the other forms more slowly, but is moderately stable once formed. The introduction of a single strand break into DNA leads to rapid and stable complex formation, and thus is expected to create the favored binding site. The observed properties of these complexes provide a general framework for describing the interactions of RNA polymerase II at non-promoter DNA sites. This framework appears to be similar to that established for Escherichia coli RNA polymerase interactions, suggesting that the fundamental mode of non-promoter DNA binding is similar for the bacterial, plant, and mammalian enzymes.  相似文献   

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铁离子是大多数细菌生存所必需的一种营养物质,但摄入过多的铁离子也会对细菌造成损伤。因此,细菌对铁离子的摄取受到严格调控。革兰氏阴性菌对铁离子的摄取主要受Fur (ferric uptake regulator) 蛋白和σ(sigma)因子的调控。σ因子是RNA聚合酶的可解离亚基,能使RNA聚合酶结合到基因的启动子区域,从而引起基因转录。因此,σ因子在原核生物转录起始过程中必不可少。细菌中存在多种σ因子,参与铁离子调控的σ因子即是胞外功能σ因子(extra cytoplasmic function sigma factor, ECF sigma factor)。通常,胞外功能σ因子活性可被抗σ因子(anti sigma factor)抑制。当受到外界环境信号的刺激,σ因子与抗σ因子解离,从而使σ因子活化并结合RNA聚合酶核心酶形成全酶,引起目的基因的转录。本文将就胞外功能σ因子在σ因子家族中的分类地位、结构特点以及对3价铁离子和血红素的转运调控机制作一综述。  相似文献   

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色氨酸操纵子调控机理详析   总被引:1,自引:0,他引:1  
色氨酸操纵子是最早被研究的细菌合成代谢调控、基因表达调控的模型之一。其中阻遏蛋白对转录起始的抑制作用、色氨酸作为辅阻遏物的作用以及通过定点突变揭示的弱化作用的分子机制已基本被阐明。此外,色氨酸操纵子RNA结合弱化蛋白、NusA、NusG、TrpY等调节蛋白对细菌色氨酸操纵子弱化作用的调节机制也在近年来得到进一步揭示。特别是在枯草芽孢杆菌中,色氨酸操纵子主要依赖于转录衰减机制调控,包括由色氨酸激活的色氨酸操纵子RNA结合弱化蛋白与新生转录产物结合形成内部终止子,导致5′非翻译区(5′UTR)转录终止。NusA、NusG通过刺激RNA聚合酶在5′UTR的U107和U144位点暂停,释放出RNA聚合酶,最终造成转录终止。不同的是,在U144位点NusA参与的转录弱化机制依赖其发夹结构,且NusA与RNA聚合酶作用促进了RNA结合弱化蛋白与新生转录产物的结合,使转录终止。而NusG是通过与非模板DNA链中的一段富含T碱基序列和RNA聚合酶同时互作,阻止了RNA聚合酶向下游移动,从而引起RNA聚合酶高效停滞。但在细菌操纵子中,绝大多数调节因子参与的弱化机制最终依赖于ρ因子,从而导致多达一半的转录终止事件发生。近年来,随着学科的发展,越来越多关于色氨酸操纵子调节机制新概念被挖掘报道,这也使人类对色氨酸操纵子的表达调控机制的认知愈加详尽。  相似文献   

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Summary Preincubation of E. coli core RNA polymerase lacking sigma-factor with limiting amounts of T2-DNA markedly decreases subsequent synthesis of RNA by RNA polymerase holoenzyme. Hence, although the core binds to DNA more weakly than does the holoenzyme, it can actively compete with RNA polymerase for the DNA template.Both core RNA polymerase and holoenzyme from uninfected bacteria are effective in competition with RNA polymerase isolated from T2-infected cells. On the other hand the enzyme obtained from T2-infected cells compete weakly with RNA polymerase from E. coli. The incubation of bacterial core-enzyme with a supernatant protein fraction obtained from phage-infected bacteria lowers its ability to compete with normal RNA polymerase for DNA template.These results are discussed from the viewpoint that in certain cases the RNA polymerase itself can act as a kind of repressor, effecting negative regulation of RNA synthesis. The modification of core and formation of anti-sigma induced by bacteriophage could participate in such kind of regulation.  相似文献   

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Specific activities of Saccharomyces cerevisiae RNA polymerases I and II were measured in cells growing under different nutrient conditions and throughout the mitotic cell cycle. The specific activity of RNA polymerase I (possibly the ribosomal polymerase) does not vary during the yeast cell cycle. In contrast the specific activity of RNA polymerase II (messenger polymerase) increases during the first third of the cycle and thereafter declines. The independent regulation of synthesis of these two enzymes is further emphasised by observations on the response to different nutrient conditions. Shifting cells from minimal to rich medium led to enhanced RNA polymerase I activity but very little change in activity of RNA polymerase II. Furthermore the activity of RNA polymerase I varies directly with change in growth rate whereas the activity of RNA polymerase II is approximately constant over a range of growth rates. From this data it is suggested: (i) The synthesis of these two enzymes is independently regulated; (ii) RNA polymerase I is synthesised continuously throughout the cycle whereas RNA polymerase II is synthesised periodically early in the cell cycle.  相似文献   

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