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Polyimide Electrode-Based Electrical Stimulation Impedes Early Stage Muscle Graft Regeneration

机译:基于聚酰亚胺电极的电刺激阻碍了早期肌肉移植的再生。

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摘要

Given the increasing use of regenerative free muscle flaps for various reconstructive procedures and neuroprosthetic applications, there is great interest and value in their enhanced regeneration, revascularization, and reinnervation for improved functional recovery. Here, we implant polyimide-based mircroelectrodes on free flap grafts and perform electrical stimulation for 6 weeks in a murine model. Using electrophysiological and histological assessments, we compare outcomes of stimulated grafts with unstimulated control grafts. We find delayed reinnervation and abnormal electromyographic (EMG) signals, with significantly more polyphasia, lower compound muscle action potentials and higher fatigability in stimulated animals. These metrics are suggestive of myopathy in the free flap grafts stimulated with the electrode. Additionally, active inflammatory processes and partial necrosis are observed in grafts stimulated with the implanted electrode. The results suggest that under this treatment protocol, implanted epimysial electrodes and electrical stimulation to deinnervated, and devascularized flaps during the early recovery phase may be detrimental to regeneration. Future work should determine the optimal implantation and stimulation window for accelerating free muscle graft regeneration.
机译:鉴于越来越多的再生自由肌皮瓣用于各种重建程序和神经修复应用,人们对其增强的再生,血运重建和神经支配以改善功能恢复有着极大的兴趣和价值。在这里,我们将基于聚酰亚胺的微电极植入游离皮瓣移植物中,并在鼠模型中进行电刺激6周。使用电生理和组织学评估,我们比较了刺激性移植物与未刺激性对照移植物的结果。我们发现延迟的神经支配和异常的肌电图(EMG)信号,在受刺激的动物中具有明显更多的多相性,更低的复合肌肉动作电位和更高的易疲劳性。这些指标表明电极刺激的游离皮瓣移植物中的肌病。另外,在用植入电极刺激的移植物中观察到活跃的炎症过程和部分坏死。结果表明,在这种治疗方案下,在早期恢复阶段植入肌膜上电极和电刺激去神经支配的皮瓣和去血管的皮瓣可能不利于再生。未来的工作应确定加速自由肌移植物再生的最佳植入和刺激窗口。

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