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神经细胞整合入 3D 生物打印的骨骼肌构建体可加速肌肉功能的恢复。

Neural cell integration into 3D bioprinted skeletal muscle constructs accelerates restoration of muscle function.

机构信息

Wake Forest Institute for Regenerative Medicine, Wake Forest School of Medicine, Winston-Salem, NC, 27157, USA.

出版信息

Nat Commun. 2020 Feb 24;11(1):1025. doi: 10.1038/s41467-020-14930-9.

Abstract

A bioengineered skeletal muscle construct that mimics structural and functional characteristics of native skeletal muscle is a promising therapeutic option to treat extensive muscle defect injuries. We previously showed that bioprinted human skeletal muscle constructs were able to form multi-layered bundles with aligned myofibers. In this study, we investigate the effects of neural cell integration into the bioprinted skeletal muscle construct to accelerate functional muscle regeneration in vivo. Neural input into this bioprinted skeletal muscle construct shows the improvement of myofiber formation, long-term survival, and neuromuscular junction formation in vitro. More importantly, the bioprinted constructs with neural cell integration facilitate rapid innervation and mature into organized muscle tissue that restores normal muscle weight and function in a rodent model of muscle defect injury. These results suggest that the 3D bioprinted human neural-skeletal muscle constructs can be rapidly integrated with the host neural network, resulting in accelerated muscle function restoration.

摘要

一种仿生结构和功能类似于天然骨骼肌的工程化骨骼肌构建体,是治疗广泛肌肉缺损损伤的有前途的治疗选择。我们之前已经证明,生物打印的人骨骼肌构建体能够形成具有对齐的肌纤维的多层束。在这项研究中,我们研究了将神经细胞整合到生物打印的骨骼肌构建体中以加速体内功能性肌肉再生的效果。神经细胞的输入显示出体外肌纤维形成、长期存活和神经肌肉接头形成的改善。更重要的是,整合了神经细胞的生物打印构建体促进了快速神经支配,并成熟为有组织的肌肉组织,从而在肌肉缺损损伤的啮齿动物模型中恢复了正常的肌肉重量和功能。这些结果表明,3D 生物打印的人神经-骨骼肌构建体可以与宿主神经网络快速整合,从而加速肌肉功能的恢复。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/507b/7039897/fc27df9b472c/41467_2020_14930_Fig1_HTML.jpg

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