Laszlo George S, Cooper Jonathan A
Division of Basic Sciences, Fred Hutchinson Cancer Research Center, Seattle, WA 98109, USA.
Curr Biol. 2009 Jan 27;19(2):157-62. doi: 10.1016/j.cub.2008.12.007. Epub 2009 Jan 15.
Src is a nonreceptor tyrosine kinase that coordinates responses to diverse soluble and adhesive signaling molecules and regulates cell proliferation, survival, differentiation and migration. Normally, Src activity is tightly regulated, and Src-catalyzed phosphorylation is counterbalanced by phosphotyrosine phosphatases. However, deregulated mutant Src causes malignant transformation when highly expressed. Src transformation is dose dependent, but it has been unclear how much mutant Src, compared with endogenous Src, is required for transformation. Here, we show that transformation requires high-level overexpression of mutant src mRNA, in part because active Src protein is degraded by ubiquitin-mediated proteolysis. We show that active but not inactive Src protein is downregulated depending on the putative tumor suppressor and E3 ubiquitin ligase component, Cullin-5 (Cul5). Cul5 removal synergizes with physiological levels of mutant src mRNA to increase protein tyrosine phosphorylation, induce morphological transformation, and deregulate growth. Cul5 also represses Src-induced tumorigenesis and regulates Src signaling in normal cells. These results suggest that, when Src is activated by mutation or physiological mechanisms, its effects are limited by Cul5, which downregulates active Src and its phosphorylated substrates. These findings demonstrate the importance of a new mechanism that downregulates Src signaling in cells.
Src是一种非受体酪氨酸激酶,可协调对多种可溶性和粘附性信号分子的反应,并调节细胞增殖、存活、分化和迁移。正常情况下,Src活性受到严格调控,Src催化的磷酸化作用被磷酸酪氨酸磷酸酶所平衡。然而,失调的突变型Src在高表达时会导致恶性转化。Src转化具有剂量依赖性,但与内源性Src相比,转化需要多少突变型Src尚不清楚。在这里,我们表明转化需要突变型src mRNA的高水平过表达,部分原因是活性Src蛋白通过泛素介导的蛋白水解作用被降解。我们表明,活性而非无活性的Src蛋白会根据假定的肿瘤抑制因子和E3泛素连接酶成分Cullin-5(Cul5)而下调。去除Cul5与突变型src mRNA的生理水平协同作用,以增加蛋白酪氨酸磷酸化、诱导形态转化并解除生长调控。Cul5还抑制Src诱导的肿瘤发生并调节正常细胞中的Src信号传导。这些结果表明,当Src通过突变或生理机制被激活时,其作用受到Cul5的限制,Cul5会下调活性Src及其磷酸化底物。这些发现证明了一种下调细胞中Src信号传导的新机制的重要性。