Ahn Geunseon, Kim Jun-Young, Shim Jin-Hyung, An Sang-Hyun, Kim Junsik, Kim Changhwan, Lee In-Gyu, Shin Jung-Min, Lee Byunghoon
Research Institute, T&R Biofab Co., Ltd., Seongnam-si 13486, Republic of Korea.
Department of Orthopaedic Surgery, School of Medicine, Catholic University of Daegu, Daegu 42472, Republic of Korea.
Bioengineering (Basel). 2024 Nov 8;11(11):1129. doi: 10.3390/bioengineering11111129.
Void fillers are required for osseous gaps generated after orthopedic procedures as medial open-wedge high-tibial osteotomy (MOWHTO) to provide sufficient structural support and a rapid osteosynthesis. We developed a novel three-dimensional (3D) printing-based platform technology using the customized 3D scaffolds covered with polycaprolactone (PCL)/β-tri-calcium phosphates (β-TCP)/bone decellularized extracellular matrix (dECM) for use as bone substitute scaffold, which can be effectively exploited to estimate the calculated correction angle with preoperative simulations. PCL/β-TCP/bone dECM scaffolds demonstrated significantly higher cell contain levels in cell seeding efficiency, excellent proliferation capacity, and promotion of early osteogenic differentiation compared with PCL/β-TCP scaffolds. The scaffolds promoted bone mineralization at the early time points of an in vivo study (8 weeks) and exhibited biodegradable properties (38% for 16 weeks). The correction angle measured after osteotomy using 3D printed scaffolds was estimated with high accuracy with low errors (10.3° ± 0.9°) and was not significantly different even in the presence of lateral cortical hinge fractures. The customized 3D scaffold enriched with PCL/β-TCP/bone dECM yielded excellent cell seeding efficiency, proliferation capacity, early osteogenic differentiation, and bone mineralization outcomes. It is expected to solve the disadvantages related to bone union in MOWHTO and to replace autografts in the future.
在诸如内侧开放楔形高位胫骨截骨术(MOWHTO)等骨科手术后产生的骨间隙需要填充材料,以提供足够的结构支撑并实现快速骨合成。我们开发了一种基于三维(3D)打印的新型平台技术,使用覆盖有聚己内酯(PCL)/β-磷酸三钙(β-TCP)/骨脱细胞细胞外基质(dECM)的定制3D支架作为骨替代支架,该支架可有效地用于术前模拟以估计计算出的矫正角度。与PCL/β-TCP支架相比,PCL/β-TCP/骨dECM支架在细胞接种效率方面表现出明显更高的细胞容纳水平、出色的增殖能力以及对早期成骨分化的促进作用。在体内研究的早期时间点(8周),该支架促进了骨矿化,并表现出可生物降解的特性(16周时为38%)。使用3D打印支架截骨后测量的矫正角度估计精度高、误差小(10.3°±0.9°),即使存在外侧皮质铰链骨折也无显著差异。富含PCL/β-TCP/骨dECM的定制3D支架产生了出色的细胞接种效率、增殖能力、早期成骨分化和骨矿化结果。预计它将解决MOWHTO中与骨愈合相关的缺点,并在未来替代自体移植。