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Regulation of N-cadherin dynamics at neuronal contacts by ligand binding and cytoskeletal coupling

机译:通过配体结合和细胞骨架偶联调节神经元接触中N-钙粘蛋白的动力学

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N-cadherin plays a key role in axonal outgrowth and synaptogenesis, but how neurons initiate and remodel N-cadherin-based adhesions remains unclear. We addressed this issue with a semiartificial system consisting of N-cadherin coated microspheres adhering to cultured neurons transfected for N-cadherin-GFP. Using optical tweezers, we show that growth cones are particularly reactive to N-cadherin coated microspheres, which they capture in a few seconds and drag rearward. Such strong coupling requires an intact connection between N-cadherin receptors and catenins. As they move to the basis of growth cones, microspheres slow down while gradually accumulating N-cadherin-GFP, demonstrating a clear delay between bead coupling to the actin flow and receptor recruitment. Using FRAP and photoactivation, N-cadherin receptors at bead-to-cell contacts were found to continuously recycle, consistently with a model of ligand-receptor reaction not limited by membrane diffusion. The use of N-cadherin-GFP receptors truncated or mutated in specific cytoplasmic regions show that N-cadherin turnover is exquisitely regulated by catenin partners. Turnover rates are considerably lower than those obtained previously in single molecule studies, demonstrating an active regulation of cadherin bond kinetics in intact cells. Finally, spontaneous neuronal contacts enriched in N-cadherin exhibited similar turnover rates, suggesting that such dynamics of N-cadherin may represent an intrinsic mechanism underlying the plasticity of neuronal adhesions.
机译:N-钙黏着蛋白在轴突生长和突触形成中起着关键作用,但是神经元如何启动和重塑基于N-钙黏着蛋白的粘连仍然不清楚。我们通过一个半人工系统解决了这个问题,该系统由N-钙粘蛋白包被的微球组成,该微球粘附到针对N-钙粘蛋白GFP转染的培养神经元上。使用光镊,我们显示出生长锥对N-钙粘蛋白包被的微球具有特别的反应性,它们在几秒钟内被捕获并向后拖动。这种强耦合需要N-钙粘蛋白受体和连环蛋白之间的完整连接。当它们移至生长锥的基础上时,微球会逐渐变慢,同时逐渐积聚N-钙粘着蛋白-GFP,这表明珠与肌动蛋白流的偶联与受体募集之间存在明显的延迟。使用FRAP和光激活,发现珠-细胞接触处的N-钙黏着蛋白受体不断循环,这与不受膜扩散限制的配体-受体反应模型一致。在特定的胞质区域中截短或突变的N-钙粘着蛋白GFP受体的使用表明,N-钙粘着蛋白的转换受连环蛋白伴侣的调控。周转率大大低于以前在单分子研究中获得的周转率,这表明完整细胞中钙粘着蛋白键动力学的有效调节。最后,富含N-钙粘着蛋白的自发性神经元接触表现出相似的周转率,这表明N-钙粘着蛋白的这种动力学可能代表了神经元粘附可塑性的内在机制。

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