Sayas C L, Moreno-Flores M T, Avila J, Wandosell F
Centro de Biología Molecular "Severo Ochoa" Consejo Superior de Investigaciones Científicas-Universidad Autónoma de Madrid, Cantoblanco-Madrid 28049, Spain.
J Biol Chem. 1999 Dec 24;274(52):37046-52. doi: 10.1074/jbc.274.52.37046.
The bioactive phospholipid lysophosphatidic acid (LPA) causes growth cone collapse and neurite retraction in neuronal cells. These changes are brought about by the action of a cell surface receptor coupled to specific G proteins that control morphology and motility through the action of a group of small GTPases, the Rho family of proteins. Many studies have focused on actin reorganization modulated by Rho-GTPases, but almost no information has been obtained concerning microtubular network reorganization after LPA-induced neurite retraction. In the present study, we demonstrate an increase in site-specific Alzheimer's disease-like Tau phosphorylation during LPA-induced neurite retraction in differentiated SY-SH5Y human neuroblastoma cells. The phosphorylation state of Tau was inferred from its immunoreactivity with antibodies that recognize phosphorylation-sensitive epitopes. The effects of specific kinase inhibitors indicate that this phosphorylation is mediated by glycogen synthase kinase-3 (GSK-3). In support of this idea, we observed an increase of GSK-3 activity upon growth cone collapse. Our results are consistent with the hypothesis that activation of GSK-3 occurs in the Rho pathway and may represent an important link between microtubules and microfilaments dynamics during neuritogenesis and in pathological situations such as Alzheimer's disease.
生物活性磷脂溶血磷脂酸(LPA)可导致神经元细胞生长锥塌陷和神经突回缩。这些变化是由与特定G蛋白偶联的细胞表面受体的作用引起的,该受体通过一组小GTP酶(Rho蛋白家族)的作用来控制形态和运动。许多研究集中在由Rho-GTP酶调节的肌动蛋白重组上,但关于LPA诱导神经突回缩后微管网络重组几乎没有获得任何信息。在本研究中,我们证明在分化的SY-SH5Y人神经母细胞瘤细胞中,LPA诱导神经突回缩期间,位点特异性阿尔茨海默病样Tau磷酸化增加。Tau的磷酸化状态是通过其与识别磷酸化敏感表位的抗体的免疫反应性推断出来的。特异性激酶抑制剂的作用表明这种磷酸化是由糖原合酶激酶-3(GSK-3)介导的。支持这一观点的是,我们观察到生长锥塌陷时GSK-3活性增加。我们的结果与以下假设一致,即GSK-3的激活发生在Rho途径中,并且可能代表神经突形成过程中以及在诸如阿尔茨海默病等病理情况下微管和微丝动力学之间的重要联系。