Department of Orthopaedic Surgery and Institute for Rare Diseases, Korea University Medical Center Guro Hospital, 148 Gurodong-ro, Guro-gu, Seoul 08308, Korea.
Division of Pediatric Orthopaedics, Seoul National University Children's Hospital, 101 Daehak-ro, Jongno-gu, Seoul 03080, Korea.
Int J Mol Sci. 2019 Aug 1;20(15):3761. doi: 10.3390/ijms20153761.
Because Mg-Ca-Zn alloys are biodegradable and obviate secondary implant removal, they are especially beneficial for pediatric patients. We examined the degradation performance of Mg-Ca-Zn alloys depending on the surface modification and investigated the in vivo effects on the growth plate in a skeletally immature rabbit model. Either plasma electrolyte oxidation (PEO)-coated ( = 18) or non-coated ( = 18) Mg-Ca-Zn alloy was inserted at the distal femoral physis. We measured the degradation performance and femoral segment lengths using micro-CT. In addition, we analyzed the histomorphometric and histopathologic characteristics of the growth plate. Although there were no acute, chronic inflammatory reactions in either group, they differed significantly in the tissue reactions to their degradation performance and physeal responses. Compared to non-coated alloys, PEO-coated alloys degraded significantly slowly with diminished hydrogen gas formation. Depending on the degradation rate, large bone bridge formation and premature physeal arrest occurred primarily in the non-coated group, whereas only a small-sized bone bridge formed in the PEO-coated group. This difference ultimately led to significant shortening of the femoral segment in the non-coated group. This study suggests that optimal degradation could be achieved with PEO-coated Mg-Ca-Zn alloys, making them promising and safe biodegradable materials with no growth plate damage.
由于 Mg-Ca-Zn 合金具有生物降解性且无需二次植入物取出,因此特别适用于儿科患者。我们研究了表面改性对 Mg-Ca-Zn 合金降解性能的影响,并在未成年兔模型中研究了其对生长板的体内影响。在股骨远端干骺端分别植入等离子体电解氧化(PEO)涂层( = 18)或未涂层( = 18)Mg-Ca-Zn 合金。我们使用 micro-CT 测量降解性能和股骨节段长度。此外,我们还分析了生长板的组织形态和组织病理学特征。尽管两组均无急性、慢性炎症反应,但它们对降解性能和骺板反应的组织反应存在显著差异。与未涂层合金相比,PEO 涂层合金的降解速度明显较慢,且氢气形成减少。根据降解速率,大的骨桥形成和骺板过早融合主要发生在未涂层组,而 PEO 涂层组仅形成小的骨桥。这种差异最终导致未涂层组的股骨节段显著缩短。本研究表明,PEO 涂层 Mg-Ca-Zn 合金可实现最佳降解,使其成为具有生长板损伤风险的有前途且安全的生物可降解材料。