Créchet J B, Poullet P, Camonis J, Jacquet M, Parmeggiani A
Laboratoire de Biochimie, URA 240 du Centre National de la Recherche Scientifique, Ecole Polytechnique, Palaiseau, France.
J Biol Chem. 1990 Jan 25;265(3):1563-8.
The properties of RAS2Gly19----Val and RAS2Thr152----Ile, two mutants suppressing the CDC25 requirement for the activation of adenylate cyclase in Saccharomyces cerevisiae, were compared with the properties of wild-type RAS2. We examined (a) the guanine nucleotide interaction, (b) the intrinsic GTPase (EC 3.6.1-) activity, and (c) the ability to activate adenylate cyclase in vitro. The low GTPase of RAS2Val19 is associated with an increased stability of the GTP complex. By contrast, RAS2Ile152 shows a strong destabilization of the GDP complex (the dissociation rate constants of the RAS2Ile152.GDP complex is enhanced almost 50 times) and an increased GTPase activity. Remarkably, all the parameters of the interaction with GDP and GTP as well as the catalytic activity are modified by the two mutations in an opposite manner. Our kinetic results show that the functional modifications of RAS2 compensating for the CDC25 inactivation can not only be associated with the presence of a long-lived RAS2.GTP complex, but also with a rapid GDP to GTP exchange reaction. As a striking result, the functional modifications induced by Thr152----Ile activate the adenylate cyclase in vitro much more efficiently than those induced by Gly19----Val. This stresses the importance of a rapid regeneration of the RAS2.GTP complex for the activation of the adenylate cyclase pathway.
将酿酒酵母中抑制腺苷酸环化酶激活对CDC25需求的两个突变体RAS2Gly19----Val和RAS2Thr152----Ile的特性与野生型RAS2的特性进行了比较。我们研究了(a)鸟嘌呤核苷酸相互作用,(b)内在GTP酶(EC 3.6.1-)活性,以及(c)体外激活腺苷酸环化酶的能力。RAS2Val19的低GTP酶与GTP复合物稳定性增加有关。相比之下,RAS2Ile152显示GDP复合物有强烈的不稳定(RAS2Ile152.GDP复合物的解离速率常数提高了近50倍)且GTP酶活性增加。值得注意的是,与GDP和GTP相互作用的所有参数以及催化活性都因这两个突变而以相反的方式改变。我们的动力学结果表明,补偿CDC25失活的RAS2的功能修饰不仅可能与长寿命的RAS2.GTP复合物的存在有关,还与快速的GDP到GTP交换反应有关。一个显著的结果是,由Thr152----Ile诱导的功能修饰在体外比由Gly19----Val诱导的功能修饰更有效地激活腺苷酸环化酶。这强调了RAS2.GTP复合物快速再生对激活腺苷酸环化酶途径的重要性。