Burden-Gulley S M, Brady-Kalnay S M
Department of Molecular Biology and Microbiology, Case Western Reserve University, School of Medicine, Cleveland, Ohio 44106-4960, USA.
J Cell Biol. 1999 Mar 22;144(6):1323-36. doi: 10.1083/jcb.144.6.1323.
Cell adhesion is critical to the establishment of proper connections in the nervous system. Some receptor-type protein tyrosine phosphatases (RPTPs) have adhesion molecule-like extracellular segments with intracellular tyrosine phosphatase domains that may transduce signals in response to adhesion. PTPmu is a RPTP that mediates cell aggregation and is expressed at high levels in the nervous system. In this study, we demonstrate that PTPmu promotes neurite outgrowth of retinal ganglion cells when used as a culture substrate. In addition, PTPmu was found in a complex with N-cadherin in retinal cells. To determine the physiological significance of the association between PTPmu and N-cadherin, the expression level and enzymatic activity of PTPmu were perturbed in retinal explant cultures. Downregulation of PTPmu expression through antisense techniques resulted in a significant decrease in neurite outgrowth on an N-cadherin substrate, whereas there was no effect on laminin or L1-dependent neurite outgrowth. The overexpression of a catalytically inactive form of PTPmu significantly decreased neurite outgrowth on N-cadherin. These data indicate that PTPmu specifically regulates signals required for neurites to extend on an N-cadherin substrate, implicating reversible tyrosine phosphorylation in the control of N-cadherin function. Together, these results suggest that PTPmu plays a dual role in the regulation of neurite outgrowth.
细胞黏附对于神经系统中建立适当的连接至关重要。一些受体型蛋白酪氨酸磷酸酶(RPTPs)具有类似黏附分子的细胞外结构域以及细胞内酪氨酸磷酸酶结构域,这些结构域可能在响应黏附时转导信号。PTPmu是一种介导细胞聚集的RPTP,在神经系统中高水平表达。在本研究中,我们证明当用作培养底物时,PTPmu可促进视网膜神经节细胞的轴突生长。此外,在视网膜细胞中发现PTPmu与N-钙黏着蛋白形成复合物。为了确定PTPmu与N-钙黏着蛋白之间关联的生理意义,我们在视网膜外植体培养物中干扰了PTPmu的表达水平和酶活性。通过反义技术下调PTPmu的表达导致在N-钙黏着蛋白底物上轴突生长显著减少,而对层粘连蛋白或L1依赖的轴突生长没有影响。催化无活性形式的PTPmu的过表达显著降低了在N-钙黏着蛋白上的轴突生长。这些数据表明,PTPmu特异性调节轴突在N-钙黏着蛋白底物上延伸所需的信号,这意味着可逆酪氨酸磷酸化参与了N-钙黏着蛋白功能的控制。总之,这些结果表明PTPmu在轴突生长的调节中起双重作用。