用于研究内皮细胞/卫星细胞相互作用的人造血管组织

Torie Broer, Nick Tsintolas, Karly Purkey, Stewart Hammond, Sophia DeLuca, Tianyu Wu, Ishika Gupta, Alastair Khodabukus, Nenad Bursac
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引用次数: 0

摘要

在原生骨骼肌中,毛细血管紧邻肌肉干细胞(卫星细胞,SC),并通过部分难以在体内研究的机制调节SC的数量和静止状态。要解决这一难题,可以开发一种既有静止SCs池又有强大毛细血管网的三维(3D)体外血管化骨骼肌模型。然而,在组织工程肌肉环境中研究SC和内皮细胞(EC)之间的相互作用一直受到市售EC培养基与骨骼肌分化不相容的阻碍。在这项研究中,我们首先优化了共培养培养基和细胞比例,生成了高功能血管化人骨骼肌组织("肌血管束"),其收缩性能(∼10 mN/mm2)与无血管、纯肌肉组织("肌束")相当。在肌肉分化一周内,这些组织中的欧共体形成了密集的毛细血管网,与肌纤维共同排列,并进行了初步的管腔化。将血管纳入肌束后,SC总数增加了82%,SC密度和静止特征在EC网络近端(≤20μm)有所增加。在体内,与无血管植入物相比,血管化的肌束在植入裸鼠背窗腔体两周后显示出更好的钙处理能力。总之,我们设计出了高功能性肌血管组织,可用于研究EC-SC串联在人类肌肉发育、生理和疾病中的作用。意义声明:在原生骨骼肌中,血管细胞和肌肉干细胞("卫星细胞")之间错综复杂的关系在肌肉生长和再生中发挥着关键作用。目前的体外骨骼肌收缩工程方法无法再现体内的毛细血管网络。我们的研究首次在体外生成了强健的血管化、高功能的工程人体骨骼肌组织。在这些组织中,卫星细胞的数量更多,而且与体内类似,它们在内皮细胞近端更密集,增殖能力更弱。植入小鼠体内后,血管化的工程肌肉与纯肌肉植入物相比,钙处理能力得到改善。我们希望这种多功能体外系统能帮助我们研究肌肉-血管在人类发育和疾病中的相互影响。
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Engineered myovascular tissues for studies of endothelial/satellite cell interactions.

In native skeletal muscle, capillaries reside in close proximity to muscle stem cells (satellite cells, SCs) and regulate SC numbers and quiescence through partially understood mechanisms that are difficult to study in vivo. This challenge could be addressed by the development of a 3-dimensional (3D) in vitro model of vascularized skeletal muscle harboring both a pool of quiescent SCs and a robust network of capillaries. Still, studying interactions between SCs and endothelial cells (ECs) within a tissue-engineered muscle environment has been hampered by the incompatibility of commercially available EC media with skeletal muscle differentiation. In this study, we first optimized co-culture media and cellular ratios to generate highly functional vascularized human skeletal muscle tissues ("myovascular bundles") with contractile properties (∼10 mN/mm2) equaling those of avascular, muscle-only tissues ("myobundles"). Within one week of muscle differentiation, ECs in these tissues formed a dense network of capillaries that co-aligned with muscle fibers and underwent initial lumenization. Incorporating vasculature within myobundles increased the total SC number by 82%, with SC density and quiescent signature being increased proximal (≤20μm) to EC networks. In vivo, at two weeks post-implantation into dorsal window chambers in nude mice, vascularized myobundles exhibited improved calcium handling compared to avascular implants. In summary, we engineered highly functional myovascular tissues that enable studies of the roles of EC-SC crosstalk in human muscle development, physiology, and disease. STATEMENT OF SIGNIFICANCE: In native skeletal muscle, intricate relationships between vascular cells and muscle stem cells ("satellite cells") play critical roles in muscle growth and regeneration. Current methods for in vitro engineering of contractile skeletal muscle do not recreate capillary networks present in vivo. Our study for the first time generates in vitro robustly vascularized, highly functional engineered human skeletal muscle tissues. Within these tissues, satellite cells are more abundant and, similar to in vivo, they are more dense and less proliferative proximal to endothelial cells. Upon implantation in mice, vascularized engineered muscles show improved calcium handling compared to muscle-only implants. We expect that this versatile in vitro system will enable studies of muscle-vasculature crosstalk in human development and disease.

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