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使用腓骨瓣并应用增材制造技术进行下颌骨重建的研究。

Study of mandible reconstruction using a fibula flap with application of additive manufacturing technology.

作者信息

Tsai Ming-June, Wu Ching-Tsai

机构信息

Mechanical Engineering Department, Cheng Kung University, No,1, University Road, Tainan 701, Taiwan.

出版信息

Biomed Eng Online. 2014 May 6;13:57. doi: 10.1186/1475-925X-13-57.

Abstract

BACKGROUND

This study aimed to establish surgical guiding techniques for completing mandible lesion resection and reconstruction of the mandible defect area with fibula sections in one surgery by applying additive manufacturing technology, which can reduce the surgical duration and enhance the surgical accuracy and success rate.

METHODS

A computer assisted mandible reconstruction planning (CAMRP) program was used to calculate the optimal cutting length and number of fibula pieces and design the fixtures for mandible cutting, registration, and arrangement of the fibula segments. The mandible cutting and registering fixtures were then generated using an additive manufacturing system. The CAMRP calculated the optimal fibula cutting length and number of segments based on the location and length of the defective portion of the mandible. The mandible cutting jig was generated according to the boundary surface of the lesion resection on the mandible STL model. The fibular cutting fixture was based on the length of each segment, and the registered fixture was used to quickly arrange the fibula pieces into the shape of the defect area. In this study, the mandibular lesion was reconstructed using registered fibular sections in one step, and the method is very easy to perform.

RESULTS AND CONCLUSION

The application of additive manufacturing technology provided customized models and the cutting fixtures and registered fixtures, which can improve the efficiency of clinical application. This study showed that the cutting fixture helped to rapidly complete lesion resection and fibula cutting, and the registered fixture enabled arrangement of the fibula pieces and allowed completion of the mandible reconstruction in a timely manner. Our method can overcome the disadvantages of traditional surgery, which requires a long and different course of treatment and is liable to cause error. With the help of optimal cutting planning by the CAMRP and the 3D printed mandible resection jig and fibula cutting fixture, this all-in-one process of mandible reconstruction furnishes many benefits in this field by enhancing the accuracy of surgery, shortening the operation duration, reducing the surgical risk, and resulting in a better mandible appearance of the patients after surgery.

摘要

背景

本研究旨在应用增材制造技术建立手术引导技术,以便在一次手术中完成下颌骨病变切除并用腓骨段重建下颌骨缺损区域,从而缩短手术时间,提高手术准确性和成功率。

方法

使用计算机辅助下颌骨重建规划(CAMRP)程序计算腓骨的最佳切割长度和块数,并设计用于下颌骨切割、配准和腓骨段排列的固定装置。然后使用增材制造系统生成下颌骨切割和配准固定装置。CAMRP根据下颌骨缺损部分的位置和长度计算最佳腓骨切割长度和段数。下颌骨切割夹具根据下颌骨STL模型上病变切除的边界表面生成。腓骨切割固定装置基于每个段的长度,配准固定装置用于将腓骨块快速排列成缺损区域的形状。在本研究中,使用配准的腓骨段一步重建下颌骨病变,该方法操作非常简便。

结果与结论

增材制造技术的应用提供了定制模型以及切割固定装置和配准固定装置,可提高临床应用效率。本研究表明,切割固定装置有助于快速完成病变切除和腓骨切割,配准固定装置能够排列腓骨块并及时完成下颌骨重建。我们的方法可以克服传统手术的缺点,传统手术需要漫长且不同的治疗过程,并且容易出错。借助CAMRP的最佳切割规划以及3D打印的下颌骨切除夹具和腓骨切割固定装置,这种下颌骨重建的一体化过程通过提高手术准确性、缩短手术时间、降低手术风险以及使患者术后下颌骨外观更佳,在该领域带来了诸多益处。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3efa/4094279/b09fa8243fbe/1475-925X-13-57-1.jpg

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