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蛋白质折叠与错误折叠的实验研究。

Experimental investigation of protein folding and misfolding.

作者信息

Dobson Christopher M

机构信息

Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge, CB2 1EX, UK.

出版信息

Methods. 2004 Sep;34(1):4-14. doi: 10.1016/j.ymeth.2004.03.002.

Abstract

Newly synthesised proteins need to fold, often to intricate and close-packed structures, in order to function. The underlying mechanism by which this complex process takes place both in vitro and in vivo is now becoming understood, at least in general terms, as a result of the application of a wide range of biophysical and computational methods used in combination with the techniques of biochemistry and protein engineering. It is increasingly apparent, however, that folding is not only crucial for generating biological activity, but that it is also coupled to a wide range of processes within the cell, ranging from the trafficking of proteins to specific organelles to the regulation of cell growth and differentiation. Not surprisingly, therefore, the failure of proteins to fold appropriately, or to remain correctly folded, is associated with a large number of cellular malfunctions that give rise to disease. Misfolding, and its consequences such as aggregation, can be investigated by extending the types of techniques used to study the normal folding process. Application of these techniques is enabling the development of a unified description of the interconversion and regulation of the different conformational states available to proteins in living systems. Such a description proves a generic basis for understanding the fundamental links between protein misfolding and its associated clinical disorders, such as Alzheimer's disease and Type II diabetes, and for exploring novel therapeutic strategies directed at their prevention and treatment on a rational basis.

摘要

新合成的蛋白质需要折叠,常常形成复杂且紧密堆积的结构才能发挥功能。由于结合了生物化学和蛋白质工程技术,广泛应用了多种生物物理和计算方法,现在至少从总体上已经了解了这一复杂过程在体外和体内发生的潜在机制。然而,越来越明显的是,折叠不仅对于产生生物活性至关重要,而且还与细胞内的一系列过程相关联,从蛋白质向特定细胞器的运输到细胞生长和分化的调节。因此,毫不奇怪,蛋白质无法正确折叠或无法保持正确折叠状态与大量导致疾病的细胞功能异常有关。通过扩展用于研究正常折叠过程的技术类型,可以研究错误折叠及其诸如聚集等后果。这些技术的应用使得能够对生物系统中蛋白质可利用的不同构象状态的相互转化和调节进行统一描述。这样的描述为理解蛋白质错误折叠与其相关临床疾病(如阿尔茨海默病和II型糖尿病)之间的基本联系,以及基于合理基础探索针对其预防和治疗的新型治疗策略提供了一个通用基础。

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