Frederick National Laboratory for Cancer Research, Basic Research Program, SAIC-Frederick, Inc., Frederick, MD 21702, USA.
Mol Microbiol. 2013 Jan;87(2):382-93. doi: 10.1111/mmi.12105. Epub 2012 Dec 10.
Escherichia coli NusA and NusB proteins bind specific sites, such as those in the leader and spacer sequences that flank the 16S region of the ribosomal RNA transcript, forming a complex with RNA polymerase that suppresses Rho-dependent transcription termination. Although antitermination has long been the accepted role for Nus factors in rRNA synthesis, we propose that another major role for the Nus-modified transcription complex in rrn operons is as an RNA chaperone insuring co-ordination of 16S rRNA folding and RNase III processing that results in production of proper 30S ribosome subunits. This contrarian proposal is based on our studies of nusA and nusB cold-sensitive mutations that have altered translation and at low temperature accumulate 30S subunit precursors. Both phenotypes are suppressed by deletion of RNase III. We argue that these results are consistent with the idea that the nus mutations cause altered rRNA folding that leads to abnormal 30S subunits and slow translation. According to this idea, functional Nus proteins stabilize an RNA loop between their binding sites in the 5' RNA leader and on the transcribing RNA polymerase, providing a topological constraint on the RNA that aids normal rRNA folding and processing.
大肠杆菌 NusA 和 NusB 蛋白结合特定的位点,如在核糖体 RNA 转录物的 16S 区侧翼的先导和间隔序列中的那些位点,与 RNA 聚合酶形成复合物,抑制 Rho 依赖性转录终止。尽管终止抑制作用长期以来一直被认为是 Nus 因子在 rRNA 合成中的作用,但我们提出,Nus 修饰的转录复合物在 rrn 操纵子中的另一个主要作用是作为 RNA 伴侣,确保 16S rRNA 折叠和 RNase III 加工的协调,从而产生适当的 30S 核糖体亚基。这一反传统的观点是基于我们对 nusA 和 nusB 冷敏感突变的研究,这些突变改变了翻译并在低温下积累 30S 亚基前体。这两种表型都被 RNase III 的缺失所抑制。我们认为这些结果与这样的观点一致,即 nus 突变导致 rRNA 折叠改变,导致异常的 30S 亚基和翻译速度减慢。根据这个想法,功能性 Nus 蛋白稳定它们在 5' RNA 先导和转录 RNA 聚合酶上的结合位点之间的 RNA 环,为 RNA 提供拓扑约束,有助于正常的 rRNA 折叠和加工。