Yu Le, Cavelier Sacha, Hannon Brett, Wei Mei
Department of Chemical and Biomolecular Engineering, Ohio University, Athens, OH, 45701, USA.
Biomedical Engineering Program, Ohio University, Athens, OH, 45701, USA.
Bioact Mater. 2023 Feb 2;25:122-159. doi: 10.1016/j.bioactmat.2023.01.012. eCollection 2023 Jul.
Osteochondral (OC) repair is an extremely challenging topic due to the complex biphasic structure and poor intrinsic regenerative capability of natural osteochondral tissue. In contrast to the current surgical approaches which yield only short-term relief of symptoms, tissue engineering strategy has been shown more promising outcomes in treating OC defects since its emergence in the 1990s. In particular, the use of multizonal scaffolds (MZSs) that mimic the gradient transitions, from cartilage surface to the subchondral bone with either continuous or discontinuous compositions, structures, and properties of natural OC tissue, has been gaining momentum in recent years. Scrutinizing the latest developments in the field, this review offers a comprehensive summary of recent advances, current hurdles, and future perspectives of OC repair, particularly the use of MZSs including bilayered, trilayered, multilayered, and gradient scaffolds, by bringing together onerous demands of architecture designs, material selections, manufacturing techniques as well as the choices of growth factors and cells, each of which possesses its unique challenges and opportunities.
由于天然骨软骨组织具有复杂的双相结构和较差的内在再生能力,骨软骨(OC)修复是一个极具挑战性的课题。与目前只能带来短期症状缓解的手术方法不同,自20世纪90年代组织工程策略出现以来,在治疗OC缺损方面已显示出更有前景的结果。特别是,近年来,使用模拟从软骨表面到软骨下骨具有连续或不连续组成、结构和特性的天然OC组织梯度转变的多区支架(MZS)的做法越来越受到关注。通过审视该领域的最新进展,本综述全面总结了OC修复的最新进展、当前障碍和未来前景,特别是MZS的应用,包括双层、三层、多层和梯度支架,同时汇集了架构设计、材料选择、制造技术以及生长因子和细胞选择等诸多要求,其中每一项都有其独特的挑战和机遇。