Annan Robert B, Wu Cunle, Waller Daniel D, Whiteway Malcolm, Thomas David Y
Department of Biochemistry, McIntyre Medical Building, McGill University, 3655 Promenade Sir William Osler, Montreal, Quebec H3G 1Y6, Canada.
Eukaryot Cell. 2008 Sep;7(9):1441-9. doi: 10.1128/EC.00120-08. Epub 2008 Jul 11.
Small GTPases of the Rho family act as molecular switches, and modulation of the GTP-bound state of Rho proteins is a well-characterized means of regulating their signaling activity in vivo. In contrast, the regulation of Rho-type GTPases by posttranslational modifications is poorly understood. Here, we present evidence of the control of the Saccharomyces cerevisiae Rho-type GTPase Rho5p by phosphorylation and ubiquitination. Rho5p binds to Ste50p, and the expression of the activated RHO5(Q91H) allele in an Deltaste50 strain is lethal under conditions of osmotic stress. An overexpression screen identified RGD2 and MSI1 as being high-copy suppressors of the osmotic sensitivity of this lethality. Rgd2p had been identified as being a possible Rho5p GTPase-activating protein based on an in vitro assay; this result supports its function as a regulator of Rho5p activity in vivo. MSI1 was previously identified as being a suppressor of hyperactive Ras/cyclic AMP signaling, where it antagonizes Npr1p kinase activity and promotes ubiquitination. Here, we show that Msi1p also acts via Npr1p to suppress activated Rho5p signaling. Rho5p is ubiquitinated, and its expression is lethal in a strain that is compromised for proteasome activity. These data identify Rho5p as being a target of Msi1p/Npr1p regulation and describe a regulatory circuit involving phosphorylation and ubiquitination.
Rho家族的小GTP酶充当分子开关,调节Rho蛋白的GTP结合状态是在体内调节其信号活性的一种充分表征的手段。相比之下,翻译后修饰对Rho型GTP酶的调节却知之甚少。在这里,我们提供了酿酒酵母Rho型GTP酶Rho5p受磷酸化和泛素化调控的证据。Rho5p与Ste50p结合,并且在渗透胁迫条件下,Deltaste50菌株中活化的RHO5(Q91H)等位基因的表达是致死的。一项过表达筛选确定RGD2和MSI1是这种致死性渗透敏感性的高拷贝抑制因子。基于体外试验,Rgd2p已被鉴定为一种可能的Rho5p GTP酶激活蛋白;这一结果支持了其在体内作为Rho5p活性调节因子的功能。MSI1先前被鉴定为过度活跃的Ras/环磷酸腺苷信号传导的抑制因子,在其中它拮抗Npr1p激酶活性并促进泛素化。在这里,我们表明Msi1p也通过Npr1p发挥作用以抑制活化的Rho5p信号传导。Rho5p被泛素化,并且其表达在蛋白酶体活性受损的菌株中是致死的。这些数据确定Rho5p是Msi1p/Npr1p调节的靶标,并描述了一个涉及磷酸化和泛素化的调节回路。