Department of Biophysics, Ruhr University Bochum, 44801 Bochum, Germany.
Proc Natl Acad Sci U S A. 2012 Dec 26;109(52):21348-53. doi: 10.1073/pnas.1214431110. Epub 2012 Dec 12.
Rab GTPases, key regulators of vesicular transport, hydrolyze GTP very slowly unless assisted by Rab GTPase-activating proteins (RabGAPs). Dysfunction of RabGAPs is involved in many diseases. By combining X-ray structure analysis and time-resolved FTIR spectroscopy we reveal here the detailed molecular reaction mechanism of a complex between human Rab and RabGAP at the highest possible spatiotemporal resolution and in atomic detail. A glutamine residue of Rab proteins (cis-glutamine) that is essential for intrinsic activity is less important in the GAP-activated reaction. During generation of the RabGAP·Rab:GTP complex, there is a rapid conformational change in which the cis-glutamine is replaced by a glutamine from RabGAP (trans-glutamine); this differs from the RasGAP mechanism, where the cis-glutamine is also important for GAP catalysis. However, as in the case of Ras, a trans-arginine is also recruited to complete the active center during this conformational change. In contrast to the RasGAP mechanism, an accumulation of a state in which phosphate is bound is not observed, and bond breakage is the rate-limiting step. The movement of trans-glutamine and trans-arginine into the catalytic site and bond breakage during hydrolysis are monitored in real time. The combination of X-ray structure analysis and time-resolved FTIR spectroscopy provides detailed insight in the catalysis of human Rab GTPases.
Rab GTPases 是囊泡运输的关键调节因子,除非有 Rab GTPase 激活蛋白 (RabGAP) 的辅助,否则它们水解 GTP 的速度非常缓慢。RabGAP 的功能障碍与许多疾病有关。通过结合 X 射线结构分析和时间分辨傅里叶变换红外光谱,我们在此以最高可能的时空分辨率和原子细节揭示了 Rab 和 RabGAP 之间复合物的详细分子反应机制。Rab 蛋白中的一个谷氨酰胺残基(顺式谷氨酰胺)对于固有活性至关重要,但在 GAP 激活反应中则不那么重要。在生成 RabGAP·Rab:GTP 复合物的过程中,会发生快速构象变化,其中 cis-glutamine 被 RabGAP 中的谷氨酰胺(trans-glutamine)取代;这与 RasGAP 机制不同,在 RasGAP 机制中,cis-glutamine 对 GAP 催化也很重要。然而,与 Ras 一样,在这种构象变化过程中,也会募集一个 trans-arginine 来完成活性中心。与 RasGAP 机制不同,不会观察到磷酸结合状态的积累,而且键断裂是限速步骤。实时监测水解过程中 trans-glutamine 和 trans-arginine 进入催化位点和键断裂的情况。X 射线结构分析和时间分辨傅里叶变换红外光谱的结合提供了对人 Rab GTPase 催化的详细了解。