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利用微阀辅助同轴3D生物打印制造的肌肉模拟组织实现功能性骨骼肌再生

Functional Skeletal Muscle Regeneration Using Muscle Mimetic Tissue Fabricated by Microvalve-Assisted Coaxial 3D Bioprinting.

作者信息

Lee Hanna, Kim Soon Hee, Lee Ji Seung, Lee Young Jin, Lee Ok Joo, Ajiteru Olatunji, Sultan Md Tipu, Lee Suk Woo, Park Chan Hum

机构信息

Nano-Bio Regenerative Medical Institute, College of Medicine, Hallym University, 1 Hallymdaehak-gil, Chuncheon, Gangwon-do, 24252, Republic of Korea.

Department of Obstetrics and Gynecology, Hallym University Sacred Heart Hospital, Anyang, 14068, Republic of Korea.

出版信息

Adv Healthc Mater. 2023 Mar;12(7):e2202664. doi: 10.1002/adhm.202202664. Epub 2022 Dec 12.

DOI:10.1002/adhm.202202664
PMID:36469728
Abstract

3D-printed artificial skeletal muscle, which mimics the structural and functional characteristics of native skeletal muscle, is a promising treatment method for muscle reconstruction. Although various fabrication techniques for skeletal muscle using 3D bio-printers are studied, it is still challenging to build a functional muscle structure. A strategy using microvalve-assisted coaxial 3D bioprinting in consideration of functional skeletal muscle fabrication is reported. The unit (artificial muscle fascicle: AMF) of muscle mimetic tissue is composed of a core filled with medium-based C2C12 myoblast aggregates as a role of muscle fibers and a photo cross-linkable hydrogel-based shell as a role of connective tissue in muscles that enhances printability and cell adhesion and proliferation. Especially, a microvalve system is applied for the core part with even cell distribution and strong cell-cell interaction. This system enhances myotube formation and consequently shows spontaneous contraction. A multi-printed AMF (artificial muscle tissue: AMT) as a piece of muscle is implanted into the anterior tibia (TA) muscle defect site of immunocompromised rats. As a result, the TA-implanted AMT responds to electrical stimulation and represents histologically regenerated muscle tissue. This microvalve-assisted coaxial 3D bioprinting shows a significant step forward to mimicking native skeletal muscle tissue.

摘要

3D打印的人工骨骼肌模仿天然骨骼肌的结构和功能特征,是一种很有前景的肌肉重建治疗方法。尽管人们研究了使用3D生物打印机制造骨骼肌的各种技术,但构建功能性肌肉结构仍然具有挑战性。本文报道了一种考虑功能性骨骼肌制造的微阀辅助同轴3D生物打印策略。肌肉模拟组织的单元(人工肌束:AMF)由一个核心和一个外壳组成,核心填充有基于培养基的C2C12成肌细胞聚集体,起肌肉纤维的作用,外壳是基于光交联水凝胶的,起肌肉中结缔组织的作用,可增强可打印性以及细胞粘附和增殖。特别是,微阀系统应用于核心部分,使细胞分布均匀且细胞间相互作用强烈。该系统促进肌管形成,从而显示出自发收缩。将一块作为肌肉的多层打印AMF(人工肌肉组织:AMT)植入免疫受损大鼠的胫骨前(TA)肌缺损部位。结果,植入TA的AMT对电刺激有反应,并在组织学上表现为再生的肌肉组织。这种微阀辅助同轴3D生物打印在模仿天然骨骼肌组织方面向前迈出了重要一步。

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