Sorbonne Université, Inserm UMRS 974, Centre de Recherche en Myologie, 75013, Paris, France.
Université Paris Cité, CNRS, Institut Jacques Monod, F-75013, Paris, France.
Biomaterials. 2023 Feb;293:121935. doi: 10.1016/j.biomaterials.2022.121935. Epub 2022 Dec 13.
Quantification of skeletal muscle functional contraction is essential to assess the outcomes of therapeutic procedures for neuromuscular disorders. Muscle three-dimensional "Organ-on-chip" models usually require a substantial amount of biological material, which rarely can be obtained from patient biopsies. Here, we developed a miniaturized 3D myotube culture chip with contraction monitoring capacity at the single cell level. Optimized micropatterned substrate design enabled to obtain high culture yields in tightly controlled microenvironments, with myotubes derived from primary human myoblasts displaying spontaneous contractions. Analysis of nuclear morphology confirmed similar myonuclei structure between obtained myotubes and in vivo myofibers, as compared to 2D monolayers. LMNA-related Congenital Muscular Dystrophy (L-CMD) was modeled with successful development of diseased 3D myotubes displaying reduced contraction. The miniaturized myotube technology can thus be used to study contraction characteristics and evaluate how diseases affect muscle organization and force generation. Importantly, it requires significantly fewer starting materials than current systems, which should substantially improve drug screening capability.
量化骨骼肌的功能收缩对于评估神经肌肉疾病治疗方法的效果至关重要。肌肉三维“器官芯片”模型通常需要大量的生物材料,而这些材料通常很难从患者活检中获得。在这里,我们开发了一种具有单细胞收缩监测能力的小型化三维肌管培养芯片。优化的微图案化基底设计使我们能够在严格控制的微环境中获得高培养产量,从小鼠原代成肌细胞中获得的肌管会自发收缩。核形态分析证实,与 2D 单层相比,获得的肌管与体内肌纤维具有相似的肌核结构。成功建立了与 LMNA 相关的先天性肌肉营养不良症(L-CMD)的 3D 肌管模型,这些肌管显示收缩能力降低。因此,这种小型化的肌管技术可用于研究收缩特性,并评估疾病如何影响肌肉组织和力量产生。重要的是,它所需的起始材料比当前系统显著减少,这应该会大大提高药物筛选能力。