Wu G, Li H, Yang Z
Department of Botany and Plant Sciences, University of California, Riverside, California 92521, USA.
Plant Physiol. 2000 Dec;124(4):1625-36. doi: 10.1104/pp.124.4.1625.
The plant-specific Rop subfamily of Rho GTPases, most closely related to the mammalian Cdc42 and Rac GTPases, plays an important role in the regulation of calcium-dependent pollen tube growth, H(2)O(2)-mediated cell death, and many other processes in plants. In a search for Rop interactors using the two-hybrid method, we identified a family of Rho GTPase-activating proteins (GAP) from Arabidopsis, termed RopGAPs. In addition to a GAP catalytic domain, RopGAPs contain a Cdc42/Rac-interactive binding (CRIB) motif known to allow Cdc42/Rac effector proteins to bind activated Cdc42/Rac. This novel combination of a GAP domain with a CRIB motif is widespread in higher plants and is unique to the regulation of the Rop GTPase. A critical role for CRIB in the regulation of in vitro RopGAP activity was demonstrated using point and deletion mutations. Both types of mutants have drastically reduced capacities to stimulate the intrinsic Rop GTPase activity and to bind Rop. Furthermore, RopGAPs preferentially stimulate the GTPase activity of Rop, but not Cdc42 in a CRIB-dependent manner. In vitro binding assays show that the RopGAP CRIB domain interacts with GTP- and GDP-bound forms of Rop, as well as the transitional state of Rop mimicked by aluminum fluoride. The CRIB domain also promotes the association of the GAP domain with the GDP-bound Rop, as does aluminum fluoride. These results reveal a novel CRIB-dependent mechanism for the regulation of the plant-specific family of Rho GAPs. We propose that the CRIB domain facilitates the formation of or enhanced GAP-mediated stabilization of the transitional state of the Rop GTPase.
植物特有的Rho GTPases的Rop亚家族与哺乳动物的Cdc42和Rac GTPases关系最为密切,在调节钙依赖的花粉管生长、H(2)O(2)介导的细胞死亡以及植物中的许多其他过程中发挥着重要作用。在利用双杂交方法寻找Rop相互作用蛋白的过程中,我们从拟南芥中鉴定出了一个Rho GTPase激活蛋白(GAP)家族,称为RopGAPs。除了GAP催化结构域外,RopGAPs还包含一个已知能使Cdc42/Rac效应蛋白结合活化的Cdc42/Rac的Cdc42/Rac相互作用结合(CRIB)基序。GAP结构域与CRIB基序的这种新组合在高等植物中广泛存在,并且是Rop GTPase调节所特有的。使用点突变和缺失突变证明了CRIB在调节体外RopGAP活性中的关键作用。这两种类型的突变体刺激内在Rop GTPase活性和结合Rop的能力都大大降低。此外,RopGAPs以CRIB依赖的方式优先刺激Rop的GTPase活性,而不是Cdc42的。体外结合试验表明,RopGAP CRIB结构域与Rop的GTP结合形式和GDP结合形式相互作用,以及与氟化铝模拟的Rop过渡态相互作用。CRIB结构域还促进GAP结构域与GDP结合的Rop的结合,氟化铝也是如此。这些结果揭示了一种新的CRIB依赖机制,用于调节植物特有的Rho GAP家族。我们提出,CRIB结构域促进了Rop GTPase过渡态的形成或增强了GAP介导的稳定性。