Cell signalling and CAM-mediated neurite outgrowth.

F S Walsh, K Meiri, P Doherty
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Abstract

A wide range of molecules promote nerve growth, and these include cell adhesion molecules (CAMs), NCAM, N-cadherin, and the L1 glycoprotein are CAMs that are normally found on both the advancing growth cone and also on cellular substrates, and in general operate via a homophilic binding mechanism. In recent years it has become clear that nerve growth stimulated by these CAMs does not rely on the adhesion function of these molecules, but instead requires that the CAMs activate second messenger cascades in neurons. A large body of evidence supports the hypothesis that homophilic binding of the CAM in the substrate to the CAM in the neuron leads to activation of the neuronal FGF receptor, possibly via a direct interaction in cis between the CAM and the FGF receptor. The consequential activation of PLC gamma is both necessary and sufficient to account for the neurite outgrowth response stimulated by the above three CAMs. Based on the above model, we reasoned that soluble CAMs might also be able to stimulate neurite outgrowth and that such agents might be developed as potential therapeutic agents for stimulating nerve regeneration. To this end we have made soluble chimeric molecules consisting of the extracellular domain of NCAM or L1 fused to the Fc region of human IgG 1. We have found that these molecules can stimulate neurite outgrowth from rat and mouse cerebellar granule cells cultured on a variety of tissue culture substrates and that they do so by activating the FGF receptor signal transduction cascade in the neurons. Consistent with this model, we find that neurons that have their FGF receptor function ablated as a consequence of the expression of dominant negative FGF receptors, no longer respond to the soluble CAM. Downstream targets of CAM function have also been studied. Addition of soluble CAMs to isolated growth cone preparations from mouse or rat brain leads to enhanced phosphorylation of the GAP-43 protein providing a link between the cell surface and the cytoskeleton.

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细胞信号传导和cam介导的神经突生长。
促进神经生长的分子范围很广,包括细胞粘附分子(CAMs)、NCAM、n -钙粘蛋白和L1糖蛋白,这些CAMs通常存在于生长锥体和细胞底物上,通常通过亲同质结合机制起作用。近年来,越来越清楚的是,这些CAMs刺激的神经生长并不依赖于这些分子的粘附功能,而是需要CAMs激活神经元中的第二信使级联。大量证据支持这一假设,即底物中的CAM与神经元中的CAM的亲同性结合导致神经元FGF受体的激活,可能是通过CAM和FGF受体之间的直接顺式相互作用。PLC γ的相应激活是必要的,也是充分的,可以解释上述三种cam刺激的神经突生长反应。基于上述模型,我们推断可溶性CAMs也可能能够刺激神经突的生长,并且这种药物可能被开发为刺激神经再生的潜在治疗剂。为此,我们制作了由NCAM细胞外结构域或L1组成的可溶嵌合分子,将其融合到人IgG 1的Fc区。我们发现这些分子可以刺激在多种组织培养基质上培养的大鼠和小鼠小脑颗粒细胞的神经突生长,并且它们是通过激活神经元中的FGF受体信号转导级联来实现的。与此模型一致,我们发现,由于FGF受体的显性负表达,FGF受体功能减弱的神经元不再对可溶性CAM有反应。CAM功能的下游靶点也得到了研究。将可溶性CAMs添加到小鼠或大鼠脑分离的生长锥制剂中,可以增强GAP-43蛋白的磷酸化,从而在细胞表面和细胞骨架之间建立联系。
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