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TBC-domain GAPs for Rab GTPases accelerate GTP hydrolysis by a dual-finger mechanism

机译:Rab GTPases的TBC域GAP通过双指机制促进GTP水解

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Rab GTPases regulate membrane trafficking by cycling between inactive (GDP-bound) and active (GTP-bound) conformations(1). The duration of the active state is limited by GTPase-activating proteins ( GAPs), which accelerate the slow intrinsic rate of GTP hydrolysis. Proteins containing TBC (Tre-2, Bub2 and Cdc16) domains are broadly conserved in eukaryotic organisms and function as GAPs for Rab GTPases as well as GTPases that control cytokinesis(2). An exposed arginine residue is a critical determinant of GAP activity in vitro and in vivo(3-5). It has been expected that the catalytic mechanism of TBC domains would parallel that of Ras and Rho family GAPs. Here we report crystallographic, mutational and functional analyses of complexes between Rab GTPases and the TBC domain of Gyp1p. In the crystal structure of a TBC-domain-Rab-GTPase-aluminium fluoride complex, which approximates the transition-state intermediate for GTP hydrolysis, the TBC domain supplies two catalytic residues in trans, an arginine finger analogous to Ras/Rho family GAPs and a glutamine finger that substitutes for the glutamine in the DxxGQ motif of the GTPase. The glutamine from the Rab GTPase does not stabilize the transition state as expected but instead interacts with the TBC domain. Strong conservation of both catalytic fingers indicates that most TBC-domain GAPs may accelerate GTP hydrolysis by a similar dual-finger mechanism.
机译:Rab GTPases通过在非活性(GDP结合)和活性(GTP结合)构象之间循环来调节膜运输(1)。激活状态的持续时间受到GTPase激活蛋白(GAP)的限制,该蛋白会加速GTP水解的缓慢内在速率。含有TBC(Tre-2,Bub2和Cdc16)结构域的蛋白质在真核生物中广泛保守,并充当Rab GTPases和控制胞质分裂的GTPases的GAP(2)。暴露的精氨酸残基是体外和体内GAP活性的关键决定因素(3-5)。预期TBC结构域的催化机制将与Ras和Rho家族GAP的催化机制平行。在这里我们报告Rab GTPases和Gyp1p的TBC域之间的复合物的晶体学,突变和功能分析。在TBC结构域-Rab-GTPase-氟化铝络合物的晶体结构中(近似于GTP水解的过渡态中间体),TBC结构域提供了两个反式催化残基,一个类似于Ras / Rho家族GAP的精氨酸指和可以替代GTPase DxxGQ基序中的谷氨酰胺的谷氨酰胺手指。来自Rab GTPase的谷氨酰胺不能稳定预期的过渡状态,而是与TBC结构域相互作用。两个催化指的强保守性表明大多数TBC结构域GAP可通过类似的双指机制加速GTP水解。

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