转位增强伴侣蛋白SecDF的构象变化。

Kazuhiro Mio, Tomoya Tsukazaki, Hiroyuki Mori, Masaaki Kawata, Toshio Moriya, Yoshikazu Sasaki, Ryuichiro Ishitani, Koreaki Ito, Osamu Nureki, Chikara Sato
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引用次数: 9

摘要

Sec易位促进新合成的多肽从细胞质通过磷脂膜运输到管腔/周质。虽然细菌中的多肽传导机制是由SecYEG-SecA复合物形成的,但SecDF显著提高了其运输效率。先前的一项研究表明,SecDF假设至少有两种构象,其P1头部亚域到刚性碱基的空间方向旋转120°不同,构象动力学在多肽易位中起关键作用。在这里,我们通过使用电子断层扫描和单粒子重建分析SecDF的三维结构来解决这一假设。wt SecDF的重建显示出两个主要构象;一种类似于全长SecDF的晶体结构(f型结构),另一种类似于基于孤立P1域晶体结构的假想结构变体(i型结构)。i型结构的跨膜结构域有一个向质周侧开放的剪刀状裂缝。我们还报道了一个双半胱氨酸突变体的结构,旨在将SecDF限制为i型。这种重构在质周末端有一个突起,很好地符合I-from中P1的方向。这些结果为溶液中i型的存在提供了有力的证据,并支持了wt SecDF在多肽易位过程中F-到i -的转变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Conformational variation of the translocon enhancing chaperone SecDF.

The Sec translocon facilitates transportation of newly synthesized polypeptides from the cytoplasm to the lumen/periplasm across the phospholipid membrane. Although the polypeptide-conducting machinery is formed by the SecYEG-SecA complex in bacteria, its transportation efficiency is markedly enhanced by SecDF. A previous study suggested that SecDF assumes at least two conformations differing by a 120° rotation in the spatial orientation of the P1 head subdomain to the rigid base, and that the conformational dynamics plays a critical role in polypeptide translocation. Here we addressed this hypothesis by analyzing the 3D structure of SecDF using electron tomography and single particle reconstruction. Reconstruction of wt SecDF showed two major conformations; one resembles the crystal structure of full-length SecDF (F-form structure), while the other is similar to the hypothetical structural variant based on the crystal structure of the isolated P1 domain (I-form structure). The transmembrane domain of the I-form structure has a scissor like cleft open to the periplasmic side. We also report the structure of a double cysteine mutant designed to constrain SecDF to the I-form. This reconstruction has a protrusion at the periplasmic end that nicely fits the orientation of P1 in the I-from. These results provide firm evidence for the occurrence of the I-form in solution and support the proposed F- to I-transition of wt SecDF during polypeptide translocation.

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