Song Changxu, Vondriska Thomas M, Wang Guang-Wu, Klein Jon B, Cao Xinan, Zhang Jun, Kang Y James, D'Souza Stanley, Ping Peipei
Department of Physiology and Biophysics, University of Louisville, Louisville, Kentucky 40202, USA.
Am J Physiol Heart Circ Physiol. 2002 Mar;282(3):H1166-71. doi: 10.1152/ajpheart.00830.2001.
Our laboratory has conducted multiple functional proteomic analyses to characterize the components of protein kinase C (PKC)epsilon cardioprotective signaling complexes and found that activation of PKCepsilon induces dynamic modulation of these complexes. In addition, it is known that signal transduction within a complex involves the formation of modules, one of which has been shown to include PKCepsilon and Src tyrosine kinase in the rabbit heart. However, the cellular mechanisms that define the assembly of PKCepsilon modules remain largely unknown. To address this issue, the interactions between PKCepsilon and Src were studied. We used recombinant proteins of wild-type PKCepsilon (PKCepsilon-WT) and open conformation mutants of the kinase (PKCepsilon-AE5 and PKCepsilon-AN59), the regulatory and catalytic domains of PKCepsilon, along with glutathione-S-transferase (GST) fusion proteins of Src (GST-Src) and two domains of Src (GST-SH2 and GST-SH3). GST pulldown assays demonstrated that Src and PKCepsilon are binding partners and that the interaction between PKCepsilon and Src appears to involve multiple sites. This finding was supported for endogenous PKCepsilon and Src in the murine heart using immunofluorescence-based confocal microscopy and coimmunoprecipitation. Furthermore, PKCepsilon-WT and GST-Src interactions were significantly enhanced in the presence of phosphatidyl-L-serine, an activator of PKC, indicating that Src favors interaction with activated PKCepsilon. This finding was confirmed when the PKCepsilon-WT was replaced with PKCepsilon-AE5 or PKCepsilon-AN59, demonstrating that the conformation of PKCepsilon is a critical determinant of its interactions with Src. Together, these results illustrate that formation of a signaling module between PKCepsilon and Src involves specific domains within the two molecules and is governed by the molecular conformation of PKCepsilon.
我们实验室进行了多项功能蛋白质组学分析,以表征蛋白激酶C(PKC)ε心脏保护信号复合物的组成成分,并发现PKCε的激活会诱导这些复合物的动态调节。此外,已知复合物内的信号转导涉及模块的形成,其中一个模块已被证明在兔心脏中包括PKCε和Src酪氨酸激酶。然而,定义PKCε模块组装的细胞机制在很大程度上仍然未知。为了解决这个问题,我们研究了PKCε与Src之间的相互作用。我们使用了野生型PKCε(PKCε-WT)的重组蛋白、该激酶的开放构象突变体(PKCε-AE5和PKCε-AN59)、PKCε的调节域和催化域,以及Src的谷胱甘肽-S-转移酶(GST)融合蛋白(GST-Src)和Src的两个结构域(GST-SH2和GST-SH3)。GST下拉实验表明,Src和PKCε是结合伴侣,并且PKCε与Src之间的相互作用似乎涉及多个位点。使用基于免疫荧光的共聚焦显微镜和免疫共沉淀技术,在小鼠心脏中对内源性PKCε和Src的研究支持了这一发现。此外,在PKC的激活剂磷脂酰-L-丝氨酸存在的情况下,PKCε-WT与GST-Src的相互作用显著增强,表明Src更倾向于与活化的PKCε相互作用。当用PKCε-AE5或PKCε-AN59取代PKCε-WT时,这一发现得到了证实,表明PKCε的构象是其与Src相互作用的关键决定因素。总之,这些结果表明,PKCε与Src之间信号模块的形成涉及两个分子内的特定结构域,并受PKCε的分子构象控制。