Department of Fusion and Technologies for Nuclear Safety and Security, Diagnostic and Metrology (FSN-TECFIS-DIM), ENEA, Italy.
Department of Clinical Science and Translational Medicine, University of Rome "Tor Vergata", Italy.
Biomed Res Int. 2020 Nov 17;2020:2689701. doi: 10.1155/2020/2689701. eCollection 2020.
Functional engineered muscles are still a critical clinical issue to be addressed, although different strategies have been considered so far for the treatment of severe muscular injuries. Indeed, the regenerative capacity of skeletal muscle (SM) results inadequate for large-scale defects, and currently, SM reconstruction remains a complex and unsolved task. For this aim, tissue engineered muscles should provide a proper biomimetic extracellular matrix (ECM) alternative, characterized by an aligned/microtopographical structure and a myogenic microenvironment, in order to promote muscle regeneration. As a consequence, both materials and fabrication techniques play a key role to plan an effective therapeutic approach. Tissue-specific decellularized ECM (dECM) seems to be one of the most promising material to support muscle regeneration and repair. 3D printing technologies, on the other side, enable the fabrication of scaffolds with a fine and detailed microarchitecture and patient-specific implants with high structural complexity. To identify innovative biomimetic solutions to develop engineered muscular constructs for the treatment of SM loss, the more recent (last 5 years) reports focused on SM dECM-based scaffolds and 3D printing technologies for SM regeneration are herein reviewed. Possible design inputs for 3D printed SM dECM-based scaffolds for muscular regeneration are also suggested.
尽管迄今为止已经考虑了不同的策略来治疗严重的肌肉损伤,但功能性工程肌肉仍然是一个亟待解决的关键临床问题。事实上,骨骼肌(SM)的再生能力对于大规模缺陷来说是不够的,目前,SM 的重建仍然是一个复杂且尚未解决的任务。为此,组织工程肌肉应该提供一种合适的仿生细胞外基质(ECM)替代品,其具有排列的/微地形结构和肌源性微环境,以促进肌肉再生。因此,材料和制造技术都对规划有效的治疗方法起着关键作用。组织特异性去细胞化 ECM(dECM)似乎是支持肌肉再生和修复的最有前途的材料之一。另一方面,3D 打印技术能够制造具有精细和详细微观结构的支架以及具有高结构复杂性的患者特异性植入物。为了寻找创新的仿生解决方案来开发用于治疗 SM 丧失的工程化肌肉构建体,本文回顾了最近(过去 5 年)关于基于 SM dECM 的支架和用于 SM 再生的 3D 打印技术的报告。还提出了用于肌肉再生的 3D 打印 SM dECM 基支架的可能设计输入。