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首页> 外文期刊>Scientific reports. >Extracellular matrix remodelling induced by alternating electrical and mechanical stimulations increases the contraction of engineered skeletal muscle tissues
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Extracellular matrix remodelling induced by alternating electrical and mechanical stimulations increases the contraction of engineered skeletal muscle tissues

机译:通过交替电气和机械刺激引起的细胞外基质重塑增加了工程化骨骼肌组织的收缩

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Engineered skeletal muscles are inferior to natural muscles in terms of contractile force, hampering their potential use in practical applications. One major limitation is that the extracellular matrix (ECM) not only impedes the contraction but also ineffectively transmits the forces generated by myotubes to the load. In the present study, ECM remodelling improves contractile force in a short time, and a coordinated, combined electrical and mechanical stimulation induces the desired ECM remodelling. Notably, the application of single and combined stimulations to the engineered muscles remodels the structure of their ECM networks, which determines the mechanical properties of the ECM. Myotubes in the tissues are connected in parallel and in series to the ECM. The stiffness of the parallel ECM must be low not to impede contraction, while the stiffness of the serial ECM must be high to transmit the forces to the load. Both the experimental results and the mechanistic model suggest that the combined stimulation through coordination reorients the ECM fibres in such a way that the parallel ECM stiffness is reduced, while the serial ECM stiffness is increased. In particular, 3 and 20 minutes of alternating electrical and mechanical stimulations increase the force by 18% and 31%, respectively.
机译:在收缩力方面,工程骨骼肌差不等,妨碍了他们在实际应用中的潜在使用。一种主要限制是细胞外基质(ECM)不仅冲击收缩,而且还无效地将被肌管产生的力透射到负荷。在本研究中,ECM重塑在短时间内改善了收缩力,以及协调的,组合的电气刺激诱导所需的ECM重塑。值得注意的是,对工程肌肉的单一和组合刺激的应用重构了其ECM网络的结构,该结构决定了ECM的机械性能。组织中的肌管并联连接到ECM。平行ECM的刚度必须低,不妨碍收缩,而连续ECM的刚度必须高,以将力传递到负载。实验结果和机械模型都表明通过协调的组合刺激以这种方式重新定位ECM纤维,使得平行ECM刚度降低,而连续ECM刚度增加。特别是,交替电气和机械刺激的3和20分钟分别将力增加18%和31%。

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