Ribosome regulation by the nascent peptide.

P S Lovett, E J Rogers
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引用次数: 11

Abstract

Studies of bacterial and eukaryotic systems have identified two-gene operons in which the translation product of the upstream gene influences translation of the downstream gene. The upstream gene, referred to as a leader (gene) in bacterial systems or an upstream open reading frame (uORF) in eukaryotes, encodes a peptide that interferes with a function(s) of its translating ribosome. The peptides are therefore cis-acting negative regulators of translation. The inhibitory peptides typically consist of fewer than 25 residues and function prior to emergence from the ribosome. A biological role for this class of translation inhibitor is demonstrated in translation attenuation, a form or regulation that controls the inducible translation of the chloramphenicol resistance genes cat and cmlA in bacteria. Induction of cat or cmlA requires ribosome stalling at a particular codon in the leader region of the mRNA. Stalling destabilizes an adjacent, downstream mRNA secondary structure that normally sequesters the ribosome-binding site for the cat or cmlA coding regions. Genetic studies indicate that the nascent, leader-encoded peptide is the selector of the site of ribosome stalling in leader mRNA by cis interference with translation. Synthetic leader peptides inhibit ribosomal peptidyltransferase in vitro, leading to the prediction that this activity is the basis for stall site selection. Recent studies have shown that the leader peptides are rRNA-binding peptides with targets at the peptidyl transferase center of 23S rRNA. uORFs associated with several eukaryotic genes inhibit downstream translation. When inhibition depends on the specific codon sequence of the uORF, it has been proposed that the uORF-encoded nascent peptide prevents ribosome release from the mRNA at the uORF stop codon. This sets up a blockade to ribosome scanning which minimizes downstream translation. Segments within large proteins also appear to regulate ribosome activity in cis, although in most of the known examples the active amino acid sequences function after their emergence from the ribosome, cis control of translation by the nascent peptide is gene specific; nearly all such regulatory peptides exert no obvious trans effects in cells. The in vitro biochemical activities of the cat/cmla leader peptides on ribosomes and rRNA suggest a mechanism through which the nascent peptide can modify ribosome behavior. Other cis-acting regulatory peptides may involve more complex ribosomal interactions.

新生肽对核糖体的调节。
细菌和真核生物系统的研究已经确定了两个基因操纵子,其中上游基因的翻译产物影响下游基因的翻译。上游基因,在细菌系统中称为先导基因(基因),在真核生物中称为上游开放阅读框(uORF),编码一种干扰其翻译核糖体功能的肽。因此肽是顺式作用的翻译负调节因子。抑制肽通常由少于25个残基组成,并且在从核糖体中出现之前起作用。这类翻译抑制剂在翻译衰减中具有生物学作用,这是一种控制细菌中氯霉素抗性基因cat和cmlA诱导翻译的形式或调控。诱导cat或cmlA需要核糖体停留在mRNA前导区的特定密码子上。失速会破坏相邻的下游mRNA二级结构的稳定性,该二级结构通常会隔离cat或cmlA编码区的核糖体结合位点。遗传学研究表明,新生的先导体编码肽是通过顺式干扰翻译而在先导mRNA中选择核糖体停滞位点的选择器。人工合成的先导肽在体外抑制核糖体肽基转移酶,从而预测该活性是stall位点选择的基础。最近的研究表明,前导肽是rRNA结合肽,其靶点位于23S rRNA的肽基转移酶中心。与几种真核基因相关的uorf抑制下游翻译。当抑制依赖于uORF的特定密码子序列时,已经提出了uORF编码的新生肽阻止核糖体从uORF停止密码子处的mRNA释放。这设置了对核糖体扫描的封锁,使下游翻译最小化。大蛋白质内的片段似乎也以顺式方式调节核糖体的活性,尽管在大多数已知的例子中,活性氨基酸序列在从核糖体中出现后才起作用,但新生肽对翻译的顺式控制是基因特异性的;几乎所有这些调节肽在细胞中都没有明显的反式作用。cat/cmla前导肽对核糖体和rRNA的体外生化活性提示了新生肽改变核糖体行为的机制。其他顺式调节肽可能涉及更复杂的核糖体相互作用。
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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