Bai Hongyu, Liu Lu, Luo Zhiwen, Wan Renwen, Chen Jiwu
Department of Sports Medicine, Shanghai General Hospital, Shanghai Jiao Tong University, Shanghai, 200080, China.
Department of Sports Medicine, Huashan Hospital, Fudan University, Shanghai, 200040, China.
Mater Today Bio. 2025 Jun 2;33:101924. doi: 10.1016/j.mtbio.2025.101924. eCollection 2025 Aug.
Skeletal muscle, the largest organ in the human body, plays vital roles in movement, heat generation, and internal organ protection. While healthy muscle can regenerate effectively, its regenerative capacity declines in conditions like congenital muscular dystrophy, severe trauma, or aging. Two-dimensional (2D) nanomaterials, with unique physicochemical properties such as high surface area, excellent biocompatibility, and tunable mechanical and electrical properties, have shown great promise in different forms of muscle injury, particularly in volumetric muscle loss (VML). Recent studies highlight their diverse applications in muscle regeneration, acting as cell recruitment platforms, drug delivery carriers, structural scaffolds, and anti-inflammatory agents. Additionally, their biological effects and intelligent responsiveness are emerging as key features. Despite these advances, safety concerns regarding toxicity and biodegradability remain a challenge for clinical application. To unlock the full potential of 2D materials, further research is needed, especially through interdisciplinary collaboration to better understand their biological effects. By addressing safety issues and harnessing their multifunctional and intelligent characteristics, 2D nanomaterials can offer a more effective and sustainable approach to skeletal muscle repair, paving the way for next-generation therapies in regenerative medicine.
骨骼肌是人体最大的器官,在运动、产热和保护内脏器官方面发挥着至关重要的作用。虽然健康的肌肉能够有效地再生,但其再生能力在诸如先天性肌营养不良、严重创伤或衰老等情况下会下降。二维(2D)纳米材料具有高表面积、优异的生物相容性以及可调节的机械和电学性质等独特的物理化学性质,在不同形式的肌肉损伤中,尤其是在大面积肌肉缺损(VML)方面显示出了巨大的潜力。最近的研究突出了它们在肌肉再生中的多种应用,可作为细胞招募平台、药物递送载体、结构支架和抗炎剂。此外,它们的生物学效应和智能响应性正成为关键特性。尽管取得了这些进展,但关于毒性和生物降解性的安全问题仍然是临床应用的一个挑战。为了充分发挥二维材料的潜力,还需要进一步的研究,特别是通过跨学科合作来更好地了解它们的生物学效应。通过解决安全问题并利用其多功能和智能特性,二维纳米材料可以为骨骼肌修复提供一种更有效和可持续的方法,为再生医学的下一代疗法铺平道路。