In vitro and in vivo degradation behavior of an assembled magnesium alloy suture anchor for ligament-bone reconstruction.

IF 9.6
Delin Ma, Zhaotong Sun, Qichao Zhao, Yuan Zhang, Wancheng Li, Jie Wang, Yijing Chen, Minghui Zhao, Jun Wang, Junfei Huang, Wenxiang Li, Shijie Zhu, Liguo Wang, Xiaochao Wu, Shaokang Guan
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Abstract

Biodegradable magnesium alloys suture anchors face rapid anchor eyelet degradation, compromising mechanical strength. In this study, an assembled-structure magnesium alloy suture anchor was proposed to mitigate the fast failure of anchor eyelet. In vitro and in vivo experiments were conducted to evaluate the degradation behavior and biomechanical performance of assembled ZE21C magnesium alloy suture anchors. In vitro, mechanical tests revealed stable fixation with a pull-out force of 123.1 ± 5.9 N and fracture strength of 213.3 ± 3.6 N, ensuring no risk of anchor breakage under physiological loads. Immersion in Hanks' solution demonstrated the screw and tail regions degraded progressively over 14 days, while the anchor eyelet retained structural integrity. The in vivo degradation behavior mirrored in vitro findings and suture anchor maintained its mechanical integrity for 12 weeks post-surgery. Micro-CT and histological analyses confirmed successful functional recovery and fibrocartilage regeneration at the ligament-bone interface. Gas cavities observed post-implantation resolved by week 12 without anchor dislocation. The rapid degradation of threaded region released magnesium ions to facilitate osteogenesis, while the slower degradation of anchor eyelet maintained structural integrity for stable fixation. The gradual decline in fracture force of eyelet parts remained higher than the initial pull-out force within 12 weeks implantation. Furthermore, progressive integration occurred in the connection of assembled anchor further highlighted its reliable fixation performance. This study offers a framework for further design and research of biodegradable magnesium alloy suture anchors for clinical applications. STATEMENT OF SIGNIFICANCE: Achieving clinical efficacy for biodegradable magnesium alloy anchors requires maintaining long-term mechanical stability post-surgery. Delaying degradation at suture-contact anchor eyelet can prolong service life. In this study, we designed an assembled anchor with external full threads to enhance fixation strength while preventing body fluid infiltration into internal anchor eyelet to retard its degradation. Multi-scale in vitro/vivo studies revealed that rapid degradation of external threads promoted bone-tissue integration, whereas slower-degrading anchor eyelet preserved structural stability. Notably, the fracture strength at 12 weeks post-implantation remained superior to the initial pull-out strength. These findings demonstrate the potential for broadening clinical applications of magnesium alloy anchors in future trials.

用于韧带-骨重建的组装镁合金缝合锚的体外和体内降解行为。
可生物降解镁合金缝合锚面临快速锚孔降解,损害机械强度。在本研究中,提出了一种组合式结构的镁合金缝合锚,以减轻锚孔的快速失效。通过体外和体内实验,评价组装后的ZE21C镁合金缝合锚钉的降解行为和生物力学性能。体外力学试验结果显示,锚钉稳定固定,拔出力为123.1±5.9 N,断裂强度为213.3±3.6 N,确保在生理载荷下锚钉无断裂风险。在Hanks溶液中浸泡14天后,螺钉和尾部区域逐渐退化,而锚钉孔保持结构完整性。体内降解行为反映了体外研究结果,缝合锚在术后12周内保持其机械完整性。显微ct和组织学分析证实了韧带-骨界面成功的功能恢复和纤维软骨再生。植入后观察到的气体空洞在第12周消失,无锚脱位。螺纹区的快速降解释放镁离子促进成骨,而锚钉孔的缓慢降解保持结构完整性以稳定固定。植入12周内,孔眼部分断裂力逐渐下降,仍高于初始拔出力。此外,装配锚在连接过程中发生的渐进式整合进一步突出了其可靠的固定性能。本研究为进一步设计和研究用于临床应用的可生物降解镁合金缝合锚钉提供了框架。意义声明:实现生物可降解镁合金锚钉的临床疗效需要保持术后长期的机械稳定性。延缓与缝合线接触的锚孔降解,可延长使用寿命。在本研究中,我们设计了一种具有外螺纹的组合锚,以提高固定强度,同时防止体液渗入内锚孔,减缓其降解。多尺度体外/体内研究表明,快速降解的外螺纹促进了骨组织的整合,而降解较慢的锚定孔则保持了结构的稳定性。值得注意的是,植入后12周的断裂强度仍然优于最初的拔出强度。这些发现显示了在未来的试验中扩大镁合金锚的临床应用的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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