Neumann Jennifer, Klein Noreen, Otzen Daniel E, Schneider Dirk
Department of Pharmacy and Biochemistry, Johannes Gutenberg-University Mainz, 55128 Mainz, Germany.
Interdisciplinary Nanoscience Center (iNANO), Department of Molecular Biology and Genetics, Center for Insoluble Protein Structures (inSPIN), Aarhus University, Gustav Wieds Vej 14, DK-8000 Aarhus C, Denmark.
Arch Biochem Biophys. 2014 Dec 15;564:281-96. doi: 10.1016/j.abb.2014.07.017. Epub 2014 Jul 21.
While interactions of single-span transmembrane helices have been studied to a significant extent in the past years, the folding of polytopic α-helical transmembrane proteins, as well as their oligomerization, are far less analyzed and understood. The goal of the few thus far performed thermodynamic studies, in which unfolding of polytopic TM proteins was described, was to achieve a mild, potentially reversible unfolding process, to finally derive thermodynamic parameters for the reverse folding pathway. In the first part of this review, we summarize the studies analyzing the thermodynamic stability and folding pathways of polytopic transmembrane proteins. Based on these studies, we deduce some common principles, guiding transmembrane protein unfolding and folding, important for the design of future folding/unfolding studies. Furthermore, the discussed observations can conceptually guide an experimental search for proper in vitro transmembrane protein refolding conditions. In many of the resolved membrane protein structures, individual monomers interact to form higher ordered oligomers. In most cases, oligomerization of those monomeric units appears to be intimately linked to the protein function, and folding of the individual protomers might even occur only after interaction. In the second part of this review, we discuss folding pathways of oligomeric α-helical transmembrane proteins as well as causes and consequences of α-helical transmembrane protein oligomerization.
尽管在过去几年里,单跨膜螺旋的相互作用已得到了大量研究,但多跨α螺旋跨膜蛋白的折叠及其寡聚化却很少被分析和理解。迄今为止,为数不多的几项热力学研究描述了多跨膜蛋白的去折叠过程,其目的是实现温和的、可能可逆的去折叠过程,最终推导反向折叠途径的热力学参数。在本综述的第一部分,我们总结了分析多跨膜蛋白热力学稳定性和折叠途径的研究。基于这些研究,我们推断出一些指导跨膜蛋白去折叠和折叠的共同原则,这对于未来折叠/去折叠研究的设计很重要。此外,所讨论的观察结果在概念上可以指导实验寻找合适的体外跨膜蛋白复性条件。在许多已解析的膜蛋白结构中,单个单体相互作用形成更高阶的寡聚体。在大多数情况下,这些单体单元的寡聚化似乎与蛋白质功能密切相关,甚至单个原体的折叠可能仅在相互作用后才发生。在本综述的第二部分,我们讨论寡聚α螺旋跨膜蛋白的折叠途径以及α螺旋跨膜蛋白寡聚化的原因和后果。