Molecular and Cellular Neurobiotechnology, Institute for Bioengineering of Catalonia (IBEC), Scientific Park of Barcelona, The Barcelona Institute for Science and Technology (BIST), Barcelona, Spain.
Department of Cell Biology, Physiology and Immunology, University of Barcelona, Barcelona, Spain.
PLoS One. 2022 Aug 11;17(8):e0272610. doi: 10.1371/journal.pone.0272610. eCollection 2022.
In recent years, 3D in vitro modeling of human skeletal muscle has emerged as a subject of increasing interest, due to its applicability in basic studies or screening platforms. These models strive to recapitulate key features of muscle architecture and function, such as cell alignment, maturation, and contractility in response to different stimuli. To this end, it is required to culture cells in biomimetic hydrogels suspended between two anchors. Currently available protocols are often complex to produce, have a high rate of breakage, or are not adapted to imaging and stimulation. Therefore, we sought to develop a simplified and reliable protocol, which still enabled versatility in the study of muscle function. In our method, we have used human immortalized myoblasts cultured in a hydrogel composed of MatrigelTM and fibrinogen, to create muscle strips suspended between two VELCROTM anchors. The resulting muscle constructs show a differentiated phenotype and contractile activity in response to electrical, chemical and optical stimulation. This activity is analyzed by two alternative methods, namely contraction analysis and calcium analysis with Fluo-4 AM. In all, our protocol provides an optimized version of previously published methods, enabling individual imaging of muscle bundles and straightforward analysis of muscle response with standard image analysis software. This system provides a start-to-finish guide on how to produce, validate, stimulate, and analyze bioengineered muscle. This ensures that the system can be quickly established by researchers with varying degrees of expertise, while maintaining reliability and similarity to native muscle.
近年来,3D 体外建模人类骨骼肌已成为一个日益受到关注的课题,因为它适用于基础研究或筛选平台。这些模型旨在再现肌肉结构和功能的关键特征,例如细胞对齐、成熟和对不同刺激的收缩性。为此,需要在悬浮在两个固定点之间的仿生水凝胶中培养细胞。目前可用的方案通常生产复杂、断裂率高,或者不适应成像和刺激。因此,我们试图开发一种简化和可靠的方案,仍然能够在肌肉功能研究中具有多功能性。在我们的方法中,我们使用人永生化成肌细胞在由 MatrigelTM 和纤维蛋白原组成的水凝胶中培养,以创建悬浮在两个 VELCROTM 固定点之间的肌条。由此产生的肌肉构建体表现出分化的表型和对电、化学和光学刺激的收缩活性。该活性通过两种替代方法进行分析,即通过收缩分析和 Fluo-4 AM 的钙分析。总之,我们的方案提供了先前发表方法的优化版本,能够对肌肉束进行单独成像,并使用标准图像分析软件对肌肉反应进行简单分析。该系统提供了从生产、验证、刺激到分析生物工程肌肉的完整指南。这确保了该系统可以由具有不同专业水平的研究人员快速建立,同时保持可靠性和与天然肌肉的相似性。