Su Ting, Cheng Jingdong, Sohmen Daniel, Hedman Rickard, Berninghausen Otto, von Heijne Gunnar, Wilson Daniel N, Beckmann Roland
Gene Center, Department of Biochemistry and Center for integrated Protein Science Munich, Ludwig Maximilian University of Munich, Munich, Germany.
Department of Biochemistry and Biophysics, Stockholm University, Stockholm, Sweden.
Elife. 2017 May 30;6:e25642. doi: 10.7554/eLife.25642.
Interaction between the nascent polypeptide chain and the ribosomal exit tunnel can modulate the rate of translation and induce translational arrest to regulate expression of downstream genes. The ribosomal tunnel also provides a protected environment for initial protein folding events. Here, we present a 2.9 Å cryo-electron microscopy structure of a ribosome stalled during translation of the extremely compacted VemP nascent chain. The nascent chain forms two α-helices connected by an α-turn and a loop, enabling a total of 37 amino acids to be observed within the first 50-55 Å of the exit tunnel. The structure reveals how α-helix formation directly within the peptidyltransferase center of the ribosome interferes with aminoacyl-tRNA accommodation, suggesting that during canonical translation, a major role of the exit tunnel is to prevent excessive secondary structure formation that can interfere with the peptidyltransferase activity of the ribosome.
新生多肽链与核糖体出口通道之间的相互作用可以调节翻译速率并诱导翻译停滞,从而调控下游基因的表达。核糖体通道还为蛋白质初始折叠事件提供了一个受保护的环境。在此,我们展示了在极度紧密的VemP新生链翻译过程中停滞的核糖体的2.9 Å冷冻电子显微镜结构。新生链形成了两个由一个α转角和一个环连接的α螺旋,使得在出口通道的前50 - 55 Å范围内总共可以观察到37个氨基酸。该结构揭示了核糖体肽基转移酶中心内直接形成的α螺旋如何干扰氨酰 - tRNA的容纳,这表明在正常翻译过程中,出口通道的主要作用是防止形成过多的二级结构,以免干扰核糖体的肽基转移酶活性。