Department of Pharmacology, Yale School of Medicine, New Haven, Connecticut 06520, USA.
J Biol Chem. 2012 Jan 27;287(5):3099-107. doi: 10.1074/jbc.M111.310482. Epub 2011 Nov 29.
Rhomboid proteases have many important biological functions. Unlike soluble serine proteases such as chymotrypsin, the active site of rhomboid protease, which contains a Ser-His catalytic dyad, is submerged in the membrane and surrounded by membrane-spanning helices. Previous crystallographic analyses of GlpG, a bacterial rhomboid protease, and its complex with isocoumarin have provided insights into the mechanism of the membrane protease. Here, we studied the interaction of GlpG with 3,4-dichloroisocoumarin and diisopropyl fluorophosphonate, both mechanism-based inhibitors for the serine protease, and describe the crystal structure of the covalent adduct between GlpG and diisopropyl fluorophosphonate, which mimics the oxyanion-containing tetrahedral intermediate of the hydrolytic reaction. The crystal structure confirms that the oxyanion is stabilized by the main chain amide of Ser-201 and by the side chains of His-150 and Asn-154. The phosphorylation of the catalytic Ser-201 weakens its interaction with His-254, causing the catalytic histidine to rotate away from the serine. The rotation of His-254 is accompanied by further rearrangement of the side chains of Tyr-205 and Trp-236 within the substrate-binding groove. The formation of the tetrahedral adduct is also accompanied by opening of the L5 cap and movement of transmembrane helix S5 toward S6 in a direction different from that predicted by the lateral gating model. Combining the new structural data with those on the isocoumarin complex sheds further light on the plasticity of the active site of rhomboid membrane protease.
菱形蛋白酶具有许多重要的生物学功能。与糜蛋白酶等可溶性丝氨酸蛋白酶不同,菱形蛋白酶的活性位点含有 Ser-His 催化二联体,位于膜内并被跨膜螺旋环绕。先前对细菌菱形蛋白酶 GlpG 及其与异香豆素复合物的晶体结构分析为膜蛋白酶的机制提供了深入的了解。在这里,我们研究了 GlpG 与 3,4-二氯异香豆素和二异丙基氟膦酸盐(丝氨酸蛋白酶的两种机制抑制剂)的相互作用,并描述了 GlpG 与二异丙基氟膦酸盐形成的共价加合物的晶体结构,该结构模拟了水解反应中含氧四面体中间物。晶体结构证实,氧阴离子由 Ser-201 的主链酰胺和 His-150 和 Asn-154 的侧链稳定。催化 Ser-201 的磷酸化会削弱其与 His-254 的相互作用,导致催化组氨酸从丝氨酸上旋转。His-254 的旋转伴随着底物结合槽内 Tyr-205 和 Trp-236 侧链的进一步重排。四面体加合物的形成也伴随着 L5 帽的打开以及跨膜螺旋 S5 向 S6 的移动,其方向与侧向门控模型预测的不同。将新的结构数据与异香豆素复合物的结构数据相结合,进一步揭示了菱形膜蛋白酶活性位点的可变性。