Peng Mingxing, Zhao Qilong, Wang Min, Du Xuemin
Institute of Biomedical & Health Engineering, Shenzhen Institute of Advanced Technology (SIAT), Chinese Academy of Sciences (CAS), Shenzhen, 518055, China.
University of Chinese Academy of Sciences, China.
Nanoscale. 2023 Mar 30;15(13):6105-6120. doi: 10.1039/d3nr00281k.
Tissue engineering and regenerative medicine have offered promising alternatives for clinical treatment of body tissue traumas, losses, dysfunctions, or diseases, where scaffold-based strategies are particularly popular and effective. Over the decades, scaffolds for tissue regeneration have been remarkably evolving. Nevertheless, conventional scaffolds still confront grand challenges in bio-adaptions in terms of both tissue-scaffold and cell-scaffold interplays, for example complying with complicated three-dimensional (3D) shapes of biological tissues and recapitulating the ordered cell regulation effects of native cell microenvironments. Benefiting from the recent advances in "intelligent" biomaterials, reconfigurable scaffolds have been emerging, demonstrating great promise in addressing the bio-adaption challenges through altering their macro-shapes and/or micro-structures. This mini-review article presents a brief overview of the cutting-edge research on reconfigurable scaffolds, summarizing the materials for forming reconfigurable scaffolds and highlighting their applications for adaptive tissue regeneration. Finally, the challenges and prospects of reconfigurable scaffolds are also discussed, shedding light on the bright future of next-generation reconfigurable scaffolds with upgrading adaptability.
组织工程与再生医学为临床治疗身体组织创伤、缺损、功能障碍或疾病提供了有前景的替代方案,其中基于支架的策略尤为流行且有效。几十年来,用于组织再生的支架一直在显著发展。然而,传统支架在组织-支架和细胞-支架相互作用的生物适应性方面仍面临巨大挑战,例如要符合生物组织复杂的三维(3D)形状并重现天然细胞微环境的有序细胞调节作用。受益于“智能”生物材料的最新进展,可重构支架不断涌现,在通过改变其宏观形状和/或微观结构来应对生物适应性挑战方面展现出巨大潜力。这篇综述文章简要概述了可重构支架的前沿研究,总结了用于形成可重构支架的材料,并突出了它们在适应性组织再生中的应用。最后,还讨论了可重构支架的挑战与前景,为具有更高适应性的下一代可重构支架的光明未来提供了启示。