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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >MyoRobot 2.0: An advanced biomechatronics platform for automated, environmentally controlled skeletal muscle single fiber biomechanics assessment employing inbuilt real-time optical imaging
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MyoRobot 2.0: An advanced biomechatronics platform for automated, environmentally controlled skeletal muscle single fiber biomechanics assessment employing inbuilt real-time optical imaging

机译:Myorobot 2.0:用于自动化,环保骨骼肌单纤维生物力学评估的先进生物学平台,采用内置实时光学成像

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摘要

We present an enhanced version of our previously engineered MyoRobot system for reliable, versatile and automated investigations of skeletal muscle or linear polymer material (bio)mechanics. That previous version already replaced strenuous manual protocols to characterize muscle biomechanics properties and offered automated data analysis. Here, the system was further improved for precise control over experimental temperature and muscle single fiber sarcomere length. Moreover, it also now features the calculation of fiber cross-sectional area via on-the fly optical diameter measurements using custom-engineered microscope optics. With this optical systems integration, the MyoRobot 2.0 allows to tailor a wealth of recordings for relevant physiological parameters to be sequentially executed in living single myofibers. Research questions include assessing temperature dependent performance of active or passive biomechanics, or automated control over length-tension or length velocity relations. The automatically obtained passive stress-strain relationships and elasticity modules are important parameters in (bio)material science. From the plethora of possible applications, we validated the improved MyoRobot 2.0 by assessing temperature-dependent myofibrillar Ca2+ sensitivity, passive axial compliance and Young's modulus. We report a Ca2+ desensitization and a narrowed dynamic range at higher temperatures in murine M. extensor digitorum longus single fibers. In addition, an increased axial mechanical compliance in single muscle fibers with Young's moduli between 40-60 kPa was found, compatible with reported physiological ranges. These applications demonstrate the robustness of our MyoRobot 2.0 for facilitated single muscle fiber biomechanics assessment.
机译:我们提出了我们先前设计的肌瘤系统的增强版,以实现骨骼肌或线性聚合物材料(BIO)力学的可靠,通用和自动调查。以前的版本已经取代了剧烈的手动协议,以表征肌肉生物力学属性并提供自动化数据分析。这里,通过对实验温度和肌肉单纤维SARCAMERE长度进行精确控制,进一步改善了该系统。此外,现在还通过定制设计的显微镜光学器件通过开蝇光学直径测量来计算光纤横截面积的计算。通过该光学系统集成,Myorobot 2.0允许为相关的生理参数定制大量录音,以便在生活单一肌纤维中顺序执行。研究问题包括评估活性或无源生物力学的温度依赖性,或者自动控制长度张力或长度速度关系。自动获得的被动应变应变关系和弹性模块是(BIO)材料科学中的重要参数。通过评估温度依赖性肌纤维酒CA2 +灵敏度,被动轴向顺应性和杨氏模量,我们通过评估温度依赖性MyOfibrilar Ca2 +验证了改良的肌菌2.0。我们在鼠M的较高温度下报告CA2 +脱敏和狭窄的动态范围。伸肌位数单纤维。此外,发现杨氏肌纤维的增加的轴向机械顺应性增加了40-60kPa之间的杨氏调节,与报告的生理范围相容。这些应用程序展示了我们的肌菌体2.0的稳健性,以便于促进的单肌纤维生物力学评估。

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