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本文引用的文献

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Structural studies of the N-terminal fragments of the WW domain: Insights into co-translational folding of a beta-sheet protein.WW 结构域 N 端片段的结构研究:对β-折叠蛋白共翻译折叠的深入了解。
Sci Rep. 2016 Oct 4;6:34654. doi: 10.1038/srep34654.
2
Probing the Action of Chemical Denaturant on an Intrinsically Disordered Protein by Simulation and Experiment.通过模拟和实验探究化学变性剂对天然无序蛋白质的作用。
J Am Chem Soc. 2016 Sep 14;138(36):11702-13. doi: 10.1021/jacs.6b05443. Epub 2016 Sep 1.
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Insights into Cotranslational Nascent Protein Behavior from Computer Simulations.从计算机模拟看共翻译新生蛋白质行为的新视角。
Annu Rev Biophys. 2016 Jul 5;45:345-69. doi: 10.1146/annurev-biophys-070915-094153. Epub 2016 May 23.
4
Synonymous Codons Direct Cotranslational Folding toward Different Protein Conformations.同义密码子指导共翻译折叠形成不同的蛋白质构象。
Mol Cell. 2016 Feb 4;61(3):341-351. doi: 10.1016/j.molcel.2016.01.008.
5
Physical Origins of Codon Positions That Strongly Influence Cotranslational Folding: A Framework for Controlling Nascent-Protein Folding.影响共翻译折叠的密码子位置的物理起源:控制新生蛋白质折叠的框架。
J Am Chem Soc. 2016 Feb 3;138(4):1180-95. doi: 10.1021/jacs.5b08145. Epub 2016 Jan 21.
6
Computational evidence that fast translation speed can increase the probability of cotranslational protein folding.计算证据表明,快速翻译速度可提高共翻译蛋白质折叠的概率。
Sci Rep. 2015 Oct 21;5:15316. doi: 10.1038/srep15316.
7
Cotranslational Protein Folding inside the Ribosome Exit Tunnel.核糖体出口通道内的共翻译蛋白质折叠
Cell Rep. 2015 Sep 8;12(10):1533-40. doi: 10.1016/j.celrep.2015.07.065. Epub 2015 Aug 28.
8
Codon Usage Influences the Local Rate of Translation Elongation to Regulate Co-translational Protein Folding.密码子使用影响翻译延伸的局部速率以调控共翻译蛋白质折叠。
Mol Cell. 2015 Sep 3;59(5):744-54. doi: 10.1016/j.molcel.2015.07.018. Epub 2015 Aug 27.
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Interdomain Contacts Control Native State Switching of RfaH on a Dual-Funneled Landscape.结构域间相互作用在双漏斗态势下控制RfaH的天然态转换
PLoS Comput Biol. 2015 Jul 31;11(7):e1004379. doi: 10.1371/journal.pcbi.1004379. eCollection 2015 Jul.
10
How Co-translational Folding of Multi-domain Protein Is Affected by Elongation Schedule: Molecular Simulations.延伸进程如何影响多结构域蛋白质的共翻译折叠:分子模拟
PLoS Comput Biol. 2015 Jul 9;11(7):e1004356. doi: 10.1371/journal.pcbi.1004356. eCollection 2015 Jul.

快速蛋白质翻译可促进易错误折叠蛋白质的共翻译和翻译后折叠。

Fast Protein Translation Can Promote Co- and Posttranslational Folding of Misfolding-Prone Proteins.

作者信息

Trovato Fabio, O'Brien Edward P

机构信息

Pennsylvania State University, State College, Pennsylvania.

Pennsylvania State University, State College, Pennsylvania.

出版信息

Biophys J. 2017 May 9;112(9):1807-1819. doi: 10.1016/j.bpj.2017.04.006.

DOI:10.1016/j.bpj.2017.04.006
PMID:28494952
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5425611/
Abstract

Chemical kinetic modeling has previously been used to predict that fast-translating codons can enhance cotranslational protein folding by helping to avoid misfolded intermediates. Consistent with this prediction, protein aggregation in yeast and worms was observed to increase when translation was globally slowed down, possibly due to increased cotranslational misfolding. Observation of similar behavior in molecular simulations would confirm predictions from the simpler chemical kinetic model and provide a molecular perspective on cotranslational folding, misfolding, and the impact of translation speed on these processes. All-atom simulations cannot reach the timescales relevant to protein synthesis, and most conventional structure-based coarse-grained models do not allow for nonnative structure formation. Here, we introduce a protocol to incorporate misfolding using the functional forms of publicly available force fields. With this model we create two artificial proteins that are capable of undergoing structural transitions between a native and a misfolded conformation and simulate their synthesis by the ribosome. Consistent with the chemical kinetic predictions, we find that rapid synthesis of misfolding-prone nascent-chain segments increases the fraction of folded proteins by kinetically partitioning more molecules through on-pathway intermediates, decreasing the likelihood of sampling misfolded conformations. Novel to this study, to our knowledge, we observe that differences in protein dynamics, arising from different translation-elongation schedules, can persist long after the nascent protein has been released from the ribosome, and that a sufficient level of energetic frustration is needed for fast-translating codons to be beneficial for folding. These results provide further evidence that fast-translating codons can be as biologically important as pause sites in coordinating cotranslational folding.

摘要

化学动力学建模此前已被用于预测,快速翻译的密码子可通过帮助避免错误折叠的中间体来增强共翻译蛋白质折叠。与这一预测一致的是,当整体翻译速度减慢时,观察到酵母和蠕虫中的蛋白质聚集增加,这可能是由于共翻译错误折叠增加所致。在分子模拟中观察到类似行为将证实来自更简单化学动力学模型的预测,并为共翻译折叠、错误折叠以及翻译速度对这些过程的影响提供分子层面的视角。全原子模拟无法达到与蛋白质合成相关的时间尺度,并且大多数传统的基于结构的粗粒度模型不允许形成非天然结构。在此,我们引入一种协议,利用公开可用力场的函数形式纳入错误折叠。借助这个模型,我们创建了两种人工蛋白质,它们能够在天然构象和错误折叠构象之间进行结构转变,并模拟核糖体对它们的合成。与化学动力学预测一致,我们发现,易于错误折叠的新生链段的快速合成通过动力学上使更多分子通过正确途径中间体进行分配,增加了折叠蛋白质的比例,降低了采样错误折叠构象的可能性。据我们所知,本研究的新颖之处在于,我们观察到不同翻译延伸时间表引起的蛋白质动力学差异,在新生蛋白质从核糖体释放后仍能长期持续存在,并且快速翻译的密码子要对折叠有益需要足够水平的能量挫折。这些结果提供了进一步的证据,表明快速翻译的密码子在协调共翻译折叠方面可能与暂停位点一样具有生物学重要性。