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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

机译:WW领域的N-末端片段的结构研究:β-片蛋白的共转化折叠的见解

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Nascent proteins fold co-translationally because the folding speed and folding pathways are limited by the rate of ribosome biosynthesis in the living cell. In addition, though full-length proteins can fold all their residues during the folding process, nascent proteins initially fold only with the N-terminal residues. However, the transient structure and the co-translational folding pathway are not well understood. Here we report the atomic structures of a series of N-terminal fragments of the WW domain with increasing amino acid length. Unexpectedly, the structures indicate that the intermediate-length fragments take helical conformations even though the full-length protein has no helical regions. The circular dichroism spectra and theoretical calculations also support the crystallographic results. This suggests that the short-range interactions are more decisive in the structure formation than the long-range interactions for short nascent proteins. In the course of the peptide extension, the helical structure change to the structure mediated by the long-range interactions at a particular polypeptide length. Our results will provide unique information for elucidating the nature of co-translational folding.
机译:新生蛋白折叠共同平移,因为折叠速度和折叠途径受到活细胞中核糖体生物合成速率的限制。此外,虽然全长蛋白在折叠过程中可以折叠所有残留物,但是新生蛋白最初仅折叠与N-末端残基。然而,瞬态结构和共转化折叠通路不太了解。在这里,我们报告了WW结构域的一系列N-末端片段的原子结构随着氨基酸长度的增加。出乎意料地,即使全长蛋白质没有螺旋区域,结构也表明中间长片段采用螺旋形容。圆形二分频谱和理论计算也支持晶体效果。这表明在结构形成中的短程相互作用比短期蛋白质的远程相互作用更加果断。在肽延伸的过程中,螺旋结构变为由特定多肽长度的远程相互作用介导的结构。我们的结果将提供阐明协同折叠性质的独特信息。

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