College of Life Sciences and State Key Laboratory of Crop Stress Biology in Arid Areas, Northwest A&F University, Yangling, Shaanxi 712100, China, Bioinformatics Center, Northwest A&F University, Yangling, Shaanxi 712100, China and College of Enology, Northwest A&F University, Yangling, Shaanxi 712100, China.
Nucleic Acids Res. 2014 Apr;42(8):4813-22. doi: 10.1093/nar/gku159. Epub 2014 Feb 21.
Messenger RNA (mRNA) secondary structure decreases the elongation rate, as ribosomes must unwind every structure they encounter during translation. Therefore, the strength of mRNA secondary structure is assumed to be reduced in highly translated mRNAs. However, previous studies in vitro reported a positive correlation between mRNA folding strength and protein abundance. The counterintuitive finding suggests that mRNA secondary structure affects translation efficiency in an undetermined manner. Here, we analyzed the folding behavior of mRNA during translation and its effect on translation efficiency. We simulated translation process based on a novel computational model, taking into account the interactions among ribosomes, codon usage and mRNA secondary structures. We showed that mRNA secondary structure shortens ribosomal distance through the dynamics of folding strength. Notably, when adjacent ribosomes are close, mRNA secondary structures between them disappear, and codon usage determines the elongation rate. More importantly, our results showed that the combined effect of mRNA secondary structure and codon usage in highly translated mRNAs causes a short ribosomal distance in structural regions, which in turn eliminates the structures during translation, leading to a high elongation rate. Together, these findings reveal how the dynamics of mRNA secondary structure coupling with codon usage affect translation efficiency.
信使 RNA(mRNA)的二级结构会降低延伸速度,因为核糖体在翻译过程中必须解开遇到的每个结构。因此,假设高度翻译的 mRNA 中的 mRNA 二级结构强度降低。然而,以前在体外的研究报告称,mRNA 折叠强度与蛋白质丰度之间存在正相关。这种违反直觉的发现表明,mRNA 二级结构以不确定的方式影响翻译效率。在这里,我们分析了翻译过程中 mRNA 的折叠行为及其对翻译效率的影响。我们基于一种新的计算模型模拟了翻译过程,该模型考虑了核糖体、密码子使用和 mRNA 二级结构之间的相互作用。我们表明,mRNA 二级结构通过折叠强度的动态缩短核糖体距离。值得注意的是,当相邻的核糖体靠近时,它们之间的 mRNA 二级结构消失,并且密码子使用决定延伸速度。更重要的是,我们的结果表明,高度翻译的 mRNA 中 mRNA 二级结构和密码子使用的综合效应导致结构区域中的核糖体距离缩短,这反过来又在翻译过程中消除了结构,从而导致高延伸速度。总之,这些发现揭示了 mRNA 二级结构与密码子使用的动态如何影响翻译效率。