Control of rRNA transcription in Escherichia coli.

C. Condon, C. Squires, Catherine L. Squires
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引用次数: 327

Abstract

The control of rRNA synthesis in response to both extra- and intracellular signals has been a subject of interest to microbial physiologists for nearly four decades, beginning with the observations that Salmonella typhimurium cells grown on rich medium are larger and contain more RNA than those grown on poor medium. This was followed shortly by the discovery of the stringent response in Escherichia coli, which has continued to be the organism of choice for the study of rRNA synthesis. In this review, we summarize four general areas of E. coli rRNA transcription control: stringent control, growth rate regulation, upstream activation, and anti-termination. We also cite similar mechanisms in other bacteria and eukaryotes. The separation of growth rate-dependent control of rRNA synthesis from stringent control continues to be a subject of controversy. One model holds that the nucleotide ppGpp is the key effector for both mechanisms, while another school holds that it is unlikely that ppGpp or any other single effector is solely responsible for growth rate-dependent control. Recent studies on activation of rRNA synthesis by cis-acting upstream sequences has led to the discovery of a new class of promoters that make contact with RNA polymerase at a third position, called the UP element, in addition to the well-known -10 and -35 regions. Lastly, clues as to the role of antitermination in rRNA operons have begun to appear. Transcription complexes modified at the antiterminator site appear to elongate faster and are resistant to the inhibitory effects of ppGpp during the stringent response.
大肠杆菌rRNA转录的控制。
近四十年来,微生物生理学家对响应细胞外和细胞内信号的rRNA合成的控制一直是一个感兴趣的主题,首先是观察到在富培养基上生长的鼠伤寒沙门氏菌细胞比在贫培养基上生长的细胞更大,含有更多的RNA。随后不久,在大肠杆菌中发现了严格的反应,大肠杆菌一直是研究rRNA合成的首选生物。本文综述了大肠杆菌rRNA转录控制的四个主要方面:严格控制、生长速率调节、上游激活和抗终止。我们还在其他细菌和真核生物中引用了类似的机制。rRNA合成的生长速度依赖性控制与严格控制的分离仍然是一个有争议的话题。一种模型认为核苷酸ppGpp是这两种机制的关键效应因子,而另一种学派认为ppGpp或任何其他单一效应因子不太可能单独负责增长率依赖性控制。最近关于通过顺式上游序列激活rRNA合成的研究发现,除了众所周知的-10和-35区域外,还发现了一类新的启动子,它们在第三个位置与RNA聚合酶接触,称为UP元件。最后,关于rRNA操纵子中抗终止作用的线索已经开始出现。在抗菌素位点修饰的转录复合物似乎延长得更快,并且在严格反应期间抵抗ppGpp的抑制作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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