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人类膜受体在酿酒酵母中的异源表达。

Heterologous expression of human membrane receptors in the yeast Saccharomyces cerevisiae.

作者信息

Joubert Olivier, Nehmé Rony, Bidet Michel, Mus-Veteau Isabelle

机构信息

Université Henri Poincaré- Nancy 1, France.

出版信息

Methods Mol Biol. 2010;601:87-103. doi: 10.1007/978-1-60761-344-2_6.

Abstract

Due to their implication in numerous diseases like cancer, cystic fibrosis, epilepsy, hyperinsulinism, heart failure, hypertension, and Alzheimer disease, membrane proteins (MPs) represent around 50% of drug targets. However, only 204 crystal structures of MPs have been solved. Structural analysis requires large quantities of pure and active proteins. The majority of medically and pharmaceutically relevant MPs are present in tissues at low concentration, which makes heterologous expression in large-scale production-adapted cells a prerequisite for structural studies. The yeast Saccharomyces cerevisiae is a convenient host for the production of mammalian MPs for functional and structural studies. Like bacteria, they are straightforward to manipulate genetically, are well characterized, can be easily cultured, and can be grown inexpensively in large quantities. The advantage of yeast compared to bacteria is that they have protein-processing and posttranslational modification mechanisms related to those found in mammalian cells. The recombinant rabbit muscle Ca(2+)-ATPase (adenosine triphosphatase), the first heterologously expressed mammalian MP for which the crystal structure was resolved, has been produced in S. cerevisiae. In this chapter, the focus is on expression of recombinant human integral MPs in a functional state at the plasma membrane of the yeast S. cerevisiae. Optimization of yeast culture and of MP preparations is detailed for two human receptors of the Hedgehog pathway: Patched and Smoothened.

摘要

由于膜蛋白(MPs)与众多疾病相关,如癌症、囊性纤维化、癫痫、高胰岛素血症、心力衰竭、高血压和阿尔茨海默病,它们约占药物靶点的50%。然而,仅解析出了204个膜蛋白的晶体结构。结构分析需要大量纯净且有活性的蛋白质。大多数与医学和制药相关的膜蛋白在组织中的浓度较低,这使得在大规模生产适用细胞中进行异源表达成为结构研究的先决条件。酿酒酵母是用于生产哺乳动物膜蛋白以进行功能和结构研究的便捷宿主。与细菌一样,它们在基因操作上简单直接,特征明确,易于培养,并且可以低成本大量培养。酵母与细菌相比的优势在于它们具有与哺乳动物细胞中发现的相关蛋白质加工和翻译后修饰机制。重组兔肌肉钙(2+)-ATP酶(腺苷三磷酸酶)是第一个解析出晶体结构的异源表达哺乳动物膜蛋白,已在酿酒酵母中产生。在本章中,重点是在酿酒酵母的质膜上以功能状态表达重组人整合膜蛋白。针对刺猬信号通路的两种人类受体:patched和smoothened,详细介绍了酵母培养和膜蛋白制备的优化。

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