Cha Hyukjin, Smith Barbara L, Gallo Kathleen, Machamer Carolyn E, Shapiro Paul
Department of Pharmaceutical Sciences, University of Maryland-School of Pharmacy, Baltimore, MD 21201, USA.
J Cell Sci. 2004 Feb 15;117(Pt 5):751-60. doi: 10.1242/jcs.00897. Epub 2004 Jan 20.
Golgin-160 is a member of the coiled-coil family of golgin proteins, which are proposed to regulate the structure of the Golgi complex. The C-terminal two-thirds of golgin-160 is predicted to form a coiled-coil domain and the N-terminal head domain contains several putative binding domains, regulatory motifs and phosphorylation sites. Recently, it has been demonstrated that caspase-dependent cleavage of the golgin-160 head domain occurs rapidly after induction of apoptosis. The role of golgin-160 phosphorylation and the functional implications for Golgi structure have not been defined. In this study, we investigated the kinase(s) responsible for phosphorylation of golgin-160. Signaling through the small G-protein Rac and mixed-lineage-kinase-3 (MLK3) resulted in increased phosphorylation of golgin-160. The intracellular distribution of MLK3 overlapped with that of golgin-160 and the two proteins could be co-immunoprecipitated. In vitro kinase assays demonstrated that MLK3 directly phosphorylates golgin-160 in the N-terminal head region between residues 96 and 259. Overexpression of MLK3 caused an enhanced caspase-dependent cleavage of golgin-160 at Asp139. Golgin-160 is the first non-kinase substrate of MLK3 identified, and phosphorylation by MLK3 might modulate cleavage of golgin-160 during apoptosis.
高尔基体蛋白160(Golgin-160)是卷曲螺旋型高尔基体蛋白家族的成员之一,该家族蛋白被认为可调节高尔基体复合体的结构。预测Golgin-160的C端三分之二会形成一个卷曲螺旋结构域,而N端头部结构域包含几个假定的结合结构域、调节基序和磷酸化位点。最近有研究表明,凋亡诱导后,Golgin-160头部结构域会迅速发生半胱天冬酶依赖性切割。Golgin-160磷酸化的作用及其对高尔基体结构的功能影响尚未明确。在本研究中,我们调查了负责Golgin-160磷酸化的激酶。通过小G蛋白Rac和混合谱系激酶3(MLK3)的信号传导导致Golgin-160的磷酸化增加。MLK3的细胞内分布与Golgin-160的分布重叠,并且这两种蛋白可以进行共免疫沉淀。体外激酶分析表明,MLK3直接在96至259位残基之间的N端头部区域磷酸化Golgin-160。MLK3的过表达导致Golgin-160在天冬氨酸139处的半胱天冬酶依赖性切割增强。Golgin-160是已鉴定出的首个MLK3非激酶底物,MLK3介导的磷酸化可能在凋亡过程中调节Golgin-160的切割。