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Applications of In Vivo Functional Testing of the Rat Tibialis Anterior for Evaluating Tissue Engineered Skeletal Muscle Repair

机译:大鼠胫骨前肌的体内功能测试在评估组织工程骨骼肌修复中的应用

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摘要

Despite the regenerative capacity of skeletal muscle, permanent functional and/or cosmetic deficits (e.g., volumetric muscle loss (VML) resulting from traumatic injury, disease and various congenital, genetic and acquired conditions are quite common. Tissue engineering and regenerative medicine technologies have enormous potential to provide a therapeutic solution. However, utilization of biologically relevant animal models in combination with longitudinal assessments of pertinent functional measures are critical to the development of improved regenerative therapeutics for treatment of VML-like injuries. In that regard, a commercial muscle lever system can be used to measure length, tension, force and velocity parameters in skeletal muscle. We used this system, in conjunction with a high power, bi-phase stimulator, to measure in vivo force production in response to activation of the anterior crural compartment of the rat hindlimb. We have previously used this equipment to assess the functional impact of VML injury on the tibialis anterior (TA) muscle, as well as the extent of functional recovery following treatment of the injured TA muscle with our tissue engineered muscle repair (TEMR) technology. For such studies, the left foot of an anaesthetized rat is securely anchored to a footplate linked to a servomotor, and the common peroneal nerve is stimulated by two percutaneous needle electrodes to elicit muscle contraction and dorsiflexion of the foot. The peroneal nerve stimulation-induced muscle contraction is measured over a range of stimulation frequencies (1-200 Hz), to ensure an eventual plateau in force production that allows for an accurate determination of peak tetanic force. In addition to evaluation of the extent of VML injury as well as the degree of functional recovery following treatment, this methodology can be easily applied to study diverse aspects of muscle physiology and pathophysiology. Such an approach should assist with the more rational development of improved therapeutics for muscle repair and regeneration.
机译:尽管骨骼肌具有再生能力,但由于外伤,疾病以及各种先天性,遗传性和获得性疾病导致的永久性功能和/或美容缺陷(例如,容积性肌肉丢失(VML))非常普遍,组织工程学和再生医学技术具有巨大的潜力。然而,将生物学相关的动物模型与相关功能性措施的纵向评估相结合,对于开发改进的再生疗法以治疗VML样损伤至关重要,在这方面,商业性肌肉杠杆系统可用于测量骨骼肌的长度,张力,力和速度参数,我们将该系统与高功率双相刺激器结合使用,可测量响应于前额肌腔激活的体内力产生大鼠后肢。我们之前曾使用此设备来评估VML损伤对胫前肌(TA)的影响,以及使用我们的组织工程化肌肉修复(TEMR)技术治疗受伤的TA肌后的功能恢复程度。对于此类研究,将麻醉大鼠的左脚牢固地锚定在与伺服马达相连的踏板上,并通过两个经皮针状电极刺激腓总神经以引起脚的肌肉收缩和背屈。在一定范围的刺激频率(1-200 Hz)上测量腓骨神经刺激引起的肌肉收缩,以确保最终产生稳定的力量,从而精确确定峰值强直力量。除了评估VML损伤程度以及治疗后的功能恢复程度外,该方法还可以轻松地用于研究肌肉生理学和病理生理学的各个方面。这种方法应有助于更合理地开发用于肌肉修复和再生的改良疗法。

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