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Neuromuscular Activity Induces Paracrine Signaling and Triggers Axonal Regrowth after Injury in Microfluidic Lab-On-Chip Devices

机译:神经肌肉活动诱导旁分泌信号并在微流控芯片实验室设备受伤后触发轴突再生。

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摘要

Peripheral nerve injuries, including motor neuron axonal injury, often lead to functional impairments. Current therapies are mostly limited to surgical intervention after lesion, yet these interventions have limited success in restoring functionality. Current activity-based therapies after axonal injuries are based on trial-error approaches in which the details of the underlying cellular and molecular processes are largely unknown. Here we show the effects of the modulation of both neuronal and muscular activity with optogenetic approaches to assess the regenerative capacity of cultured motor neuron (MN) after lesion in a compartmentalized microfluidic-assisted axotomy device. With increased neuronal activity, we observed an increase in the ratio of regrowing axons after injury in our peripheral-injury model. Moreover, increasing muscular activity induces the liberation of leukemia inhibitory factor and glial cell line-derived neurotrophic factor in a paracrine fashion that in turn triggers axonal regrowth of lesioned MN in our 3D hydrogel cultures. The relevance of our findings as well as the novel approaches used in this study could be useful not only after axotomy events but also in diseases affecting MN survival.
机译:周围神经损伤,包括运动神经元轴突损伤,通常会导致功能障碍。当前的疗法主要限于病变后的手术干预,但是这些干预在恢复功能方面的成功有限。轴突损伤后,当前基于活动的疗法是基于尝试错误的方法,其中基本的细胞和分子过程的细节在很大程度上是未知的。在这里,我们展示了用光遗传学方法来评估神经元和肌肉活动的调节作用,以评估在隔室化微流辅助切开术装置中病变后培养的运动神经元(MN)的再生能力。随着神经元活动的增加,我们观察到在我们的周围损伤模型中,损伤后再生轴突的比例增加了。此外,增加的肌肉活动以旁分泌方式诱导白血病抑制因子和神经胶质细胞系神经营养因子的释放,进而在我们的3D水凝胶培养中触发病变MN的轴突再生。我们的研究结果以及本研究中使用的新方法的相关性不仅可以在轴切术后发生,而且在影响MN生存的疾病中也可能有用。

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