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Gradual compaction of the nascent peptide during cotranslational folding on the ribosome

机译:在核糖体上的分氯化物折叠过程中逐渐压实新生肽

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摘要

Nascent polypeptides begin to fold in the constrained space of the ribosomal peptide exit tunnel. Here we use force-profile analysis (FPA) and photo-induced energy-transfer fluorescence correlation spectroscopy (PET-FCS) to show how a small α-helical domain, the N-terminal domain of HemK, folds cotranslationally. Compaction starts vectorially as soon as the first α-helical segments are synthesized. As nascent chain grows, emerging helical segments dock onto each other and continue to rearrange at the vicinity of the ribosome. Inside or in the proximity of the ribosome, the nascent peptide undergoes structural fluctuations on the µs time scale. The fluctuations slow down as the domain moves away from the ribosome. Mutations that destabilize the packing of the domain’s hydrophobic core have little effect on folding within the exit tunnel, but abolish the final domain stabilization. The results show the power of FPA and PET-FCS in solving the trajectory of cotranslational protein folding and in characterizing the dynamic properties of folding intermediates.
机译:新生多肽开始在核糖体肽出口隧道的约束空间中折叠。在这里,我们使用强制分析(FPA)和光诱导的能量转移荧光相关光谱(PET-FCS)来展示如何α-Helical结构域,Hemk的N末端域,折叠Cot或者批次。一旦合成了第一α - 螺旋段,压实就会自动启动。随着新生链的增长,新兴螺旋段彼此停靠,并继续重新排列核糖体附近。在核糖体的内部或邻近的内侧,鼻塞肽对μs时间尺度进行结构波动。随着域远离核糖体移动,波动减速。破坏域的疏水芯包装的突变对出口隧道内的折叠效果几乎没有影响,但是消除了最终域稳定化。结果表明了FPA和PET-FCS在解决双转蛋白蛋白折叠的轨迹以及表征折叠中间体的动态性质时的力量。

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