Institute for Cell Biology, University of Münster, Münster, Germany.
Institute of Biomedical Engineering, University of Toronto, Toronto, Canada.
Elife. 2021 Jan 18;10:e60145. doi: 10.7554/eLife.60145.
Tension and mechanical properties of muscle tissue are tightly related to proper skeletal muscle function, which makes experimental access to the biomechanics of muscle tissue formation a key requirement to advance our understanding of muscle function and development. Recently developed elastic in vitro culture chambers allow for raising 3D muscle tissue under controlled conditions and to measure global tissue force generation. However, these chambers are inherently incompatible with high-resolution microscopy limiting their usability to global force measurements, and preventing the exploitation of modern fluorescence based investigation methods for live and dynamic measurements. Here, we present a new chamber design pairing global force measurements, quantified from post-deflection, with local tension measurements obtained from elastic hydrogel beads embedded in muscle tissue. High-resolution 3D video microscopy of engineered muscle formation, enabled by the new chamber, shows an early mechanical tissue homeostasis that remains stable in spite of continued myotube maturation.
肌肉组织的张力和力学性能与骨骼肌肉的正常功能密切相关,因此获取肌肉组织生物力学的实验方法成为深入理解肌肉功能和发育的关键。最近开发的弹性体外培养室可在受控条件下培养 3D 肌肉组织,并测量整体组织的力产生。然而,这些培养室与高分辨率显微镜不兼容,限制了它们在全局力测量中的可用性,并阻止了现代荧光基础研究方法在活体和动态测量中的应用。在这里,我们提出了一种新的腔室设计,将全局力测量(通过后偏置获得)与嵌入肌肉组织的弹性水凝胶珠获得的局部张力测量相结合。新腔室可实现工程肌肉形成的高分辨率 3D 视频显微镜观察,显示出早期的机械组织平衡,尽管肌管继续成熟,但仍保持稳定。