L S Amar, A H Shabana, M Oboeuf, N Martin, N Forest
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引用次数: 26
Abstract
In the present study, we have examined how modulation of protein kinase C (PKC) activity affected desmosome organization in HeLa cells. Immunofluorescence and electron microscopy showed that PKC activation upon short exposure to 12-O-tetradecanoylphorbol 13-acetate (TPA) resulted in a reduction of intercellular contacts, splitting of desmosomes and dislocation of desmosomal components from the cell periphery towards the cytoplasm. As determined by immunoblot analysis of Triton X-100-soluble and -insoluble pools of proteins, these morphological changes were not correlated with modifications in the extractability of both desmoglein and plakoglobin, but involved almost complete solubilization of the desmosomal plaque protein, desmoplakin. Immunoprecipitation experiments and immunoblotting with anti-phosphoserine, antiphosphothreonine and anti-phosphotyrosine antibodies revealed that desmoplakin was mainly phosphorylated on serine and tyrosine residues in both treated and untreated cells. While phosphotyrosine content was not affected by PKC activation, phosphorylation on serine residues was increased by about two-fold. This enhanced serine phosphorylation coincided with the increase in the protein solubility, suggesting that phosphorylation of desmoplakin may be a mechanism by which PKC mediates desmosome disassembly. Consistent with the loss of PKC activity, we also showed that down-modulation of the kinase (in response to prolonged TPA treatment) or its specific inhibition (by GF 109203X) had opposite effects and increased desmosome formation. Taken together, these results clearly demonstrate an important role for PKC in the regulation ofdesmosomal junctions in HeLa cells, and identify serine phosphorylation of desmoplakin as a crucial event in this pathway.
在本研究中,我们研究了蛋白激酶C (PKC)活性的调节如何影响HeLa细胞的桥粒组织。免疫荧光和电镜显示,PKC在短时间暴露于12- o -十四烷酰磷13-乙酸酯(TPA)后激活,导致细胞间接触减少,桥粒分裂,桥粒成分从细胞外周向细胞质脱位。通过对Triton x -100可溶性和非可溶性蛋白池的免疫印迹分析,这些形态学变化与桥粒蛋白和血小板蛋白可提取性的改变无关,但与桥粒斑块蛋白桥粒蛋白几乎完全溶解有关。用抗磷酸丝氨酸、抗磷酸苏氨酸和抗磷酸酪氨酸抗体进行免疫沉淀实验和免疫印迹实验发现,在处理和未处理的细胞中,desmoplakin主要在丝氨酸和酪氨酸残基上磷酸化。虽然磷酸化酪氨酸含量不受PKC激活的影响,但丝氨酸残基的磷酸化增加了约两倍。丝氨酸磷酸化的增强与蛋白溶解度的增加相一致,表明桥粒蛋白磷酸化可能是PKC介导桥粒解体的机制之一。与PKC活性的丧失一致,我们还发现,激酶的下调(对长期TPA治疗的反应)或其特异性抑制(GF 109203X)具有相反的作用,并增加桥粒的形成。综上所述,这些结果清楚地证明了PKC在HeLa细胞中调节桥粒连接中的重要作用,并确定了桥粒蛋白丝氨酸磷酸化是这一途径中的关键事件。