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下颌角骨折中新型三维锁定微型接骨板的设计:一项体外研究。

Novel Design of Interlocking 3-Dimensional Miniplate in Mandibular Angle Fractures: An In Vitro Study.

机构信息

Doctoral Program in Medical Sciences Faculty of Medicine Universitas Indonesia.

Division of Plastic Reconstructive and Aesthetic Surgery, Department of Surgery.

出版信息

J Craniofac Surg. 2024;35(5):1591-1596. doi: 10.1097/SCS.0000000000010372. Epub 2024 Jun 3.

Abstract

The evolution of osteosynthesis has led to the development of novel miniplate designs, including 3-dimensional (3D) miniplates, which offer improved biomechanical stability. However, mandible fractures resulting from the high impact have a complex fracture configuration. Hence, the authors developed interlocking 3D miniplate to overcome the difficulty in miniplate and screw placement to avoid critical anatomic structures, that is, dental roots and nerve, while still providing stability for the fracture fragments. The interlocking 3D miniplates can be formed according to the specific needs by adjusting the horizontal and vertical cross struts configuration. This study describes a design process of interlocking 3D miniplates and evaluates biomechanical performance compared to standard miniplates. Finite element analysis was performed to evaluate the design's stress state using human and goat mandible models under various loading conditions. After the authors, established that our design was feasible for fabrication, the authors developed the prototype for biomechanical testing. Biomechanical testing was conducted on 10 goat mandibles to compare stability and displacement under various load between the interlocking 3D miniplate and the standard miniplate configuration. Biomechanical testing revealed reduced displacement in all directions with the interlocking 3D miniplate compared to the standard miniplate. Furthermore, there was a significant difference in all loads in the buccal-lingual displacement ( P <0.05). The novel interlocking 3D miniplate design shows an adequate ability to provide stability for fixation for mandibular fractures, as evidenced by finite element analysis and biomechanical testing. Further research is necessary to validate these findings and explore the clinical application of interlocking 3D miniplates in mandibular fracture management.

摘要

接骨术的发展导致了新型微型板设计的出现,包括三维(3D)微型板,其提供了更好的生物力学稳定性。然而,由于高冲击力导致的下颌骨骨折具有复杂的骨折形态。因此,作者开发了锁定 3D 微型板,以克服微型板和螺钉放置的困难,避免关键解剖结构,即牙根部和神经,同时仍为骨折碎片提供稳定性。锁定 3D 微型板可以根据具体需要通过调整水平和垂直交叉支柱的配置来形成。本研究描述了一种锁定 3D 微型板的设计过程,并对其与标准微型板的生物力学性能进行了评估。使用人体和山羊下颌骨模型,在各种加载条件下进行有限元分析,以评估设计的应力状态。在确定我们的设计适合制造后,作者开发了用于生物力学测试的原型。对 10 只山羊下颌骨进行生物力学测试,比较锁定 3D 微型板和标准微型板在各种载荷下的稳定性和位移。生物力学测试结果表明,与标准微型板相比,锁定 3D 微型板在所有方向上的位移都减小了。此外,在颊舌向位移方面,所有载荷均存在显著差异(P<0.05)。有限元分析和生物力学测试表明,新型锁定 3D 微型板设计具有足够的能力为下颌骨骨折提供固定稳定性。需要进一步的研究来验证这些发现,并探索锁定 3D 微型板在下颌骨骨折治疗中的临床应用。

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