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α-乳白蛋白的熔球态

The molten globule state of alpha-lactalbumin.

作者信息

Kuwajima K

机构信息

Department of Physics, School of Science, University of Tokyo, Japan.

出版信息

FASEB J. 1996 Jan;10(1):102-9. doi: 10.1096/fasebj.10.1.8566530.

Abstract

The molten globule state of alpha-lactalbumin is the best-characterized folding intermediate of globular proteins and has been studied intensively by various spectroscopic and physiochemical techniques, including stopped-flow CD and fluorescence spectroscopies, a hydrogen-exchange technique, 1H-NMR spectroscopy, disulfide-exchange chemistry, site-directed mutagenesis, and calorimetric techniques. This review summarizes recent studies. Major findings about the structure of the molten globule state are: 1) It is highly heterogeneous, having a highly structured alpha-helical domain with the beta-sheet domain being significantly unfolded; and 2) it is not a nonspecific, collapsed polypeptide but already has a native-like tertiary fold. These structural characteristics are essential to fully understand the thermodynamic properties of the molten globule state which are described in connection with a recently proposed computational approach to predict the structure of the molten globule state of a protein. Mutant proteins in which the stability of the molten globule state was changed were constructed. Studies of the equilibrium unfolding and kinetic refolding of the mutant proteins will provide further insight into the molten globule state as a folding intermediate. In spite of an initial expectation that the structure recognized by an Escherichia coli chaperone, GroEL, is the molten globule, the interaction of GroEL with alpha-lactalbumin in the molten globule state is much weaker than the interaction with more unfolded states of alpha-lactalbumin, a disulfide-reduced form, and disulfide rearranged species.

摘要

α-乳白蛋白的熔球态是球状蛋白质中特征最明确的折叠中间体,已通过各种光谱和物理化学技术进行了深入研究,包括停流圆二色光谱和荧光光谱、氢交换技术、1H-核磁共振光谱、二硫键交换化学、定点诱变和量热技术。本综述总结了近期的研究。关于熔球态结构的主要发现是:1)它高度不均一,具有高度结构化的α-螺旋结构域,而β-折叠结构域明显未折叠;2)它不是非特异性的、塌陷的多肽,而是已经具有类似天然的三级折叠。这些结构特征对于充分理解熔球态的热力学性质至关重要,这些性质是结合最近提出的预测蛋白质熔球态结构的计算方法来描述的。构建了熔球态稳定性发生变化的突变蛋白。对突变蛋白的平衡去折叠和动力学重折叠的研究将为熔球态作为折叠中间体提供进一步的见解。尽管最初预期大肠杆菌伴侣蛋白GroEL识别的结构是熔球态,但GroEL与熔球态α-乳白蛋白的相互作用比与α-乳白蛋白更未折叠状态(二硫键还原形式和二硫键重排物种)的相互作用弱得多。

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