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大肠杆菌热休克蛋白 70(Hsp70/DnaK)寡聚状态的可视化和功能分析。

Visualization and functional analysis of the oligomeric states of Escherichia coli heat shock protein 70 (Hsp70/DnaK).

机构信息

Chemical Biology Graduate Program, University of Michigan, Ann Arbor, MI 48109, USA.

出版信息

Cell Stress Chaperones. 2012 May;17(3):313-27. doi: 10.1007/s12192-011-0307-1. Epub 2011 Nov 11.

Abstract

The molecular chaperone DnaK binds to exposed hydrophobic segments in proteins, protecting them from aggregation. DnaK interacts with protein substrates via its substrate-binding domain, and the affinity of this interaction is allosterically regulated by its nucleotide-binding domain. In addition to regulating interdomain allostery, the nucleotide state has been found to influence homo-oligomerization of DnaK. However, the architecture of oligomeric DnaK and its potential functional relevance in the chaperone cycle remain undefined. Towards that goal, we examined the structures of DnaK by negative stain electron microscopy. We found that DnaK samples contain an ensemble of monomers, dimers, and other small, defined multimers. To better understand the function of these oligomers, we stabilized them by cross-linking and found that they retained ATPase activity and protected a model substrate from denaturation. However, these oligomers had a greatly reduced ability to refold substrate and did not respond to stimulation by DnaJ. Finally, we observed oligomeric DnaK in Escherichia coli cellular lysates by native gel electrophoresis and found that these structures became noticeably more prevalent in cells exposed to heat shock. Together, these studies suggest that DnaK oligomers are composed of ordered multimers that are functionally distinct from monomeric DnaK. Thus, oligomerization of DnaK might be an important step in chaperone cycling.

摘要

分子伴侣 DnaK 可与蛋白质中暴露的疏水区段结合,从而防止其聚集。DnaK 通过其底物结合结构域与蛋白质底物相互作用,并且这种相互作用的亲和力通过其核苷酸结合结构域的变构调节。除了调节结构域间变构外,还发现核苷酸状态会影响 DnaK 的同源寡聚化。然而,寡聚 DnaK 的结构及其在伴侣循环中的潜在功能相关性仍未定义。为了实现这一目标,我们通过负染色电子显微镜检查了 DnaK 的结构。我们发现 DnaK 样品包含单体、二聚体和其他小的、确定的多聚体的混合物。为了更好地理解这些寡聚体的功能,我们通过交联使其稳定,并发现它们保留了 ATP 酶活性并保护模型底物免受变性。然而,这些寡聚体折叠底物的能力大大降低,并且对 DnaJ 的刺激没有反应。最后,我们通过天然凝胶电泳在大肠杆菌细胞裂解物中观察到寡聚 DnaK,并发现这些结构在暴露于热休克的细胞中变得更为普遍。总之,这些研究表明,DnaK 寡聚体由有序的多聚体组成,与单体 DnaK 在功能上不同。因此,DnaK 的寡聚化可能是伴侣循环中的一个重要步骤。

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