Lacapère Jean-Jacques, Pebay-Peyroula Eva, Neumann Jean-Michel, Etchebest Catherine
INSERM, U773, Centre de Recherche Biomédicale Bichat Beaujon CRB3, Faculté de Médecine X. Bichat, Université Paris 7, BP 416, F-75018, Paris, France.
Trends Biochem Sci. 2007 Jun;32(6):259-70. doi: 10.1016/j.tibs.2007.04.001. Epub 2007 May 3.
Determination of structures and dynamics events of transmembrane proteins is important for the understanding of their function. Analysis of such events requires high-resolution 3D structures of the different conformations coupled with molecular dynamics analyses describing the conformational pathways. However, the solution of 3D structures of transmembrane proteins at atomic level remains a particular challenge for structural biochemists--the need for purified and functional transmembrane proteins causes a 'bottleneck'. There are various ways to obtain 3D structures: X-ray diffraction, electron microscopy, NMR and modelling; these methods are not used exclusively of each other, and the chosen combination depends on several criteria. Progress in this field will improve knowledge of ligand-induced activation and inhibition of membrane proteins in addition to aiding the design of membrane-protein-targeted drugs.
确定跨膜蛋白的结构和动力学事件对于理解其功能至关重要。分析此类事件需要不同构象的高分辨率三维结构以及描述构象途径的分子动力学分析。然而,在原子水平上解析跨膜蛋白的三维结构仍然是结构生物化学家面临的一个特殊挑战——对纯化且具有功能的跨膜蛋白的需求造成了一个“瓶颈”。有多种方法可用于获得三维结构:X射线衍射、电子显微镜、核磁共振和建模;这些方法并非相互排斥,所选择的组合取决于多个标准。该领域的进展将增进我们对配体诱导的膜蛋白激活和抑制的了解,此外还将有助于设计针对膜蛋白的药物。