Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Prague, Czech Republic.
FEBS J. 2013 Apr;280(7):1579-603. doi: 10.1111/febs.12199. Epub 2013 Mar 20.
Intramembrane proteases cleave membrane proteins in their transmembrane helices to regulate a wide range of biological processes. They catalyse hydrolytic reactions within the hydrophobic environment of lipid membranes where water is normally excluded. How? Do the different classes of intramembrane proteases share any mechanistic principles? In this review these questions will be discussed in view of the crystal structures of prokaryotic members of the three known catalytic types of intramembrane proteases published over the past 7 years. Rhomboids, the intramembrane serine proteases that are the best understood family, will be the initial area of focus, and the principles that have arisen from a number of structural and biochemical studies will be considered. The site-2 metalloprotease and GXGD-type aspartyl protease structures will then be discussed, with parallels drawn and differences highlighted between these enzymes and the rhomboids. Despite the significant advances achieved so far, to obtain a detailed understanding of the mechanism of any intramembrane protease, high-resolution structural information on the substrate-enzyme complex is required. This remains a major challenge for the field.
跨膜蛋白酶在其跨膜螺旋中切割膜蛋白,以调节广泛的生物过程。它们在脂质膜的疏水环境中催化水解反应,在正常情况下水会被排斥在这种环境之外。它们是如何做到的?不同类别的跨膜蛋白酶是否有任何共同的机制原理?在这篇综述中,将根据过去 7 年中发表的三种已知催化类型的跨膜蛋白酶的原核成员的晶体结构来讨论这些问题。目前了解最清楚的跨膜丝氨酸蛋白酶——天冬氨酸蛋白酶家族,将是最初的关注重点,并且将考虑来自许多结构和生化研究的原理。然后将讨论位点 2 金属蛋白酶和 GXGD 型天冬氨酸蛋白酶结构,同时强调这些酶与天冬氨酸蛋白酶之间的相似性和差异性。尽管迄今为止已经取得了重大进展,但要详细了解任何跨膜蛋白酶的机制,还需要获得底物-酶复合物的高分辨率结构信息。这仍然是该领域的一个主要挑战。