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Transiently Populated Intermediate Functions As a Branching Point of the FF Domain Folding Pathway

Proceedings of the National Academy of Sciences of the United States of America(2012)SCI 1区

Univ Connecticut

Cited 23|Views33
Abstract
Studies of protein folding and the intermediates that are formed along the folding pathway provide valuable insights into the process by which an unfolded ensemble forms a functional native conformation. However, because intermediates on folding pathways can serve as initiation points of aggregation (implicated in a number of diseases), their characterization assumes an even greater importance. Establishing the role of such intermediates in folding, misfolding, and aggregation remains a major challenge due to their often low populations and short lifetimes. We recently used NMR relaxation dispersion methods and computational techniques to determine an atomic resolution structure of the folding intermediate of a small protein module—the FF domain—with an equilibrium population of 2–3% and a millisecond lifetime, 25 °C. Based on this structure a variant FF domain has been designed in which the native state is selectively destabilized by removing the carboxyl-terminal helix in the native structure to produce a highly populated structural mimic of the intermediate state. Here, we show via solution NMR studies of the designed mimic that the mimic forms distinct conformers corresponding to monomeric and dimeric ( K d = 0.2 mM) forms of the protein. The conformers exchange on the seconds timescale with a monomer association rate of 1.1·10 4 M -1 s -1 and with a region responsible for dimerization localized to the amino-terminal residues of the FF domain. This study establishes the FF domain intermediate as a central player in both folding and misfolding pathways and illustrates how incomplete folding can lead to the formation of higher-order structures.
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excited protein states,protein folding intermediate
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要点】:本文揭示了FF域折叠途径中的瞬态中间功能作为分叉点,并通过设计变异FF域,证明了其既参与折叠也参与错误折叠过程。

方法】:研究者运用NMR松弛散射方法和计算技术确定了小蛋白模块FF域折叠中间态的原子分辨率结构。

实验】:通过设计的变异FF域的溶液NMR研究,表明其形成了对应于单体和二聚体(K(d) = 0.2 mM)的特定构象,且二聚化区域定位在FF域的氨基端 residues。