Characterization of skeletal muscle contraction using a flexible and wearable ultrasonic sensor.

3区 生物学 Q2 Biochemistry, Genetics and Molecular Biology
Elliot Yeung, Ibrahim AlMohimeed, Yuu Ono
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引用次数: 0

Abstract

Monitoring skeletal muscle contraction provides valuable information about the muscle mechanical properties, which can be helpful in various biomedical applications. This chapter presents a single-element flexible and wearable ultrasonic sensor (WUS) developed by our research group and its application for continuously monitoring and characterizing skeletal muscle contraction. The WUS is made from a 110-µm thick polyvinylidene fluoride piezoelectric polymer film. The lightweight and flexible properties of the WUS enable stable attachment to a skin surface without impacting the tissue motion of interest beneath the WUS. As an example of in-vivo demonstrations of muscle contraction monitoring and characterization, continuous monitoring of muscle contraction of the lateral head of the triceps muscle in healthy human subjects is performed using the WUS in the ultrasound pulse-echo technique. The changes in tissue thickness caused by muscle contraction evoked by electromyostimulation (EMS) at different EMS pulse repetition frequencies are measured using an ultrasound time-of-flight method. The muscle contractile parameters are estimated using the muscle twitches obtained at an EMS frequency of 2 Hz, where the muscle can fully relax between consecutive twitches. Furthermore, a level of tetanic progression, where the muscle cannot completely relax, is quantitatively assessed using the fusion index (FI), estimated from the changes in tissue thickness at EMS frequencies ranging from 2 Hz to 30 Hz, with an increment of 2 Hz. It is demonstrated that the unfused and fused tetanus frequencies can be estimated from the FI frequency curve and the contractile parameters obtained at 2 Hz. The WUS and ultrasonic methods demonstrated in this study could be valuable for non-invasive, continuous monitoring of skeletal muscle contractile properties.

使用柔性可穿戴超声传感器表征骨骼肌收缩。
监测骨骼肌收缩提供了有关肌肉力学特性的有价值的信息,这可以在各种生物医学应用中有所帮助。本章介绍了本课课组研制的单元件柔性可穿戴超声传感器(WUS)及其在连续监测和表征骨骼肌收缩方面的应用。WUS由110微米厚的聚偏氟乙烯压电聚合物薄膜制成。WUS的轻量化和柔韧性使其能够稳定地附着在皮肤表面,而不会影响WUS下感兴趣的组织运动。作为肌肉收缩监测和表征的体内演示的一个例子,使用超声脉冲回波技术中的WUS对健康人类受试者三头肌侧头的肌肉收缩进行连续监测。采用超声飞行时间法测量了不同脉冲重复频率下肌电刺激引起的肌肉收缩引起的组织厚度变化。利用EMS频率为2hz的肌肉抽搐来估计肌肉收缩参数,在连续抽搐之间肌肉可以完全放松。此外,使用融合指数(FI)定量评估肌肉不能完全放松的强直进展水平,该指数是根据EMS频率范围从2 Hz到30 Hz的组织厚度变化来估计的,增量为2 Hz。结果表明,从FI频率曲线和在2hz处得到的收缩参数可以估计出未融合和融合的破伤风频率。本研究中展示的WUS和超声方法对于无创、连续监测骨骼肌收缩特性是有价值的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.90
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Progress in Molecular Biology and Translational Science (PMBTS) provides in-depth reviews on topics of exceptional scientific importance. If today you read an Article or Letter in Nature or a Research Article or Report in Science reporting findings of exceptional importance, you likely will find comprehensive coverage of that research area in a future PMBTS volume.
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