Park Sunho, Na Ju Yong, Gwon Yonghyun, Kim Woochan, Kang Ju Yeon, Seon Jong Keun, Kim Jangho
Department of Convergence Biosystems Engineering, Chonnam National University, Gwangju, 61186, Republic of Korea; Department of Rural and Biosystems Engineering, Chonnam National University, Gwangju, 61186, Republic of Korea; Interdisciplinary Program in IT-Bio Convergence System, Chonnam National University, Gwangju 61186, Republic of Korea.
Department of Orthopedics, Chonnam National University Medical School & Hospital, Hwasun 58128, Republic of Korea.
Biomaterials. 2023 Oct;301:122287. doi: 10.1016/j.biomaterials.2023.122287. Epub 2023 Aug 22.
Microfracture technique for treating articular cartilage defects usually has poor clinical outcomes due to critical heterogeneity and extremely limited in quality. To improve the effects of current surgical technique (i.e., microfracture technique), we propose the transplantable stem cell nanobridge scaffold, acting as a protective bridge between host tissue and defected cartilage as well as microfracture-derived cells. Nanobridge scaffolds have a sophisticated nanoaligned structure with freestanding and flexible shapes for imposing direct structural guidance to cells including transplanted stem cells and host cells, and it can induce not only chondrocyte migration but also stem cell differentiation, maturation, and growth factor secretion. The transplantable stem cell nanobridge scaffold is capable of reconstructing the defected cartilage with homogeneous architecture and highly enhanced adhesive stress similar with native cartilage tissue by the synergistic effects of stem cells-based chondro-induction and nanotopography-based chondro-conduction. Our findings demonstrate a significant advancement in the traditional treatment technique by using a nanoengineered tool for achieving successful cartilage regeneration.
用于治疗关节软骨缺损的微骨折技术通常因严重的异质性和质量极度有限而临床效果不佳。为了提高当前手术技术(即微骨折技术)的效果,我们提出了可移植干细胞纳米桥支架,它可作为宿主组织与缺损软骨以及微骨折衍生细胞之间的保护桥。纳米桥支架具有复杂的纳米排列结构,具有独立且灵活的形状,可为包括移植干细胞和宿主细胞在内的细胞提供直接的结构引导,并且它不仅可以诱导软骨细胞迁移,还可以诱导干细胞分化、成熟和生长因子分泌。通过基于干细胞的软骨诱导和基于纳米形貌的软骨传导的协同作用,可移植干细胞纳米桥支架能够重建具有均匀结构和与天然软骨组织相似的高度增强的粘附应力的缺损软骨。我们的研究结果表明,通过使用纳米工程工具实现成功的软骨再生,传统治疗技术取得了重大进展。