使用生物组织结构与神经肌肉连接恢复骨盆底肌肉功能

J. Kim, I. Ko, M. Jeon, Ickhee Kim, Margaret Maria Vanschaayk, A. Atala, J. Yoo
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引用次数: 7

摘要

盆底肌肉损伤常引起整个盆腔泌尿生殖系统功能障碍,这在临床上具有挑战性。模仿天然骨骼肌结构和功能特征的生物工程骨骼肌结构可以提供恢复正常肌肉功能的治疗选择。然而,目前大多数生物工程肌肉结构不能及时提供成功移植和功能恢复所必需的神经支配。我们之前已经证明,经agrin处理,可以在培养的骨骼肌肌纤维上预先形成突触后乙酰胆碱受体(AChR)簇,并提示含有肌纤维的AChR簇的植入可以加速神经支配和肌肉功能的恢复。在这项研究中,我们开发了一个三维(3D)生物打印的人类骨骼肌结构,由预先形成的人类肌纤维排列和AChR簇的多层束组成,并研究了预先形成的AChR簇在生物打印的骨骼肌结构和体内神经支配效率中的影响。在大鼠转位神经植入模型中,agin处理成功地在体外生物打印肌肉结构上预先形成功能性AChR簇,增加了体内神经肌肉连接(NMJ)的形成。在大鼠盆底肌损伤模型中,植入含有预形成的AChR簇的骨骼肌构建体,可以加速构建体神经支配,实现功能性肌肉重建。由于缺乏合适的生物工程组织来进行有效的神经支配和肌肉功能恢复,这种方法可能为骨盆底重建带来的许多挑战提供治疗解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pelvic Floor Muscle Function Recovery Using Biofabricated Tissue Constructs with Neuromuscular Junctions
Damages in pelvic floor muscles often cause dysfunction of the entire pelvic urogenital system, which is clinically challenging. A bioengineered skeletal muscle construct that mimics structural and functional characteristics of native skeletal muscle could provide a therapeutic option to restore normal muscle function. However, most of the current bioengineered muscle constructs are unable to provide timely innervation necessary for successful grafting and functional recovery. We previously have demonstrated that post-synaptic acetylcholine receptors (AChR) clusters can be pre-formed on cultured skeletal muscle myofibers with agrin treatment and suggested that implantation of AChR clusters containing myofibers could accelerate innervation and recovery of muscle function. In this study, we develop a 3-dimensional (3D) bioprinted human skeletal muscle construct, consisting of multi-layers bundles with aligned and AChR clusters pre-formed human myofibers, and investigate the effect of pre-formed AChR clusters in bioprinted skeletal muscle constructs and innervation efficiency in vivo. Agrin treatment successfully pre-formed functional AChR clusters on the bioprinted muscle constructs in vitro that increased neuromuscular junction (NMJ) formation in vivo in a transposed nerve implantation model in rats. In a rat model of pelvic floor muscle injury, implantation of skeletal muscle constructs containing the pre-formed AChR clusters resulted in functional muscle reconstruction with accelerated construct innervation. This approach may provide a therapeutic solution to the many challenges associated with pelvic floor reconstruction resulting from the lack of suitable bioengineered tissue for efficient innervation and muscle function restoration.
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