Cote Valerie, Schwartz Marissa, Arbouin Vargas Jose F, Canfarotta Michael, Kavanagh Katherine R, Hamdan Usama, Valdez Tulio A
Advocate Children's Hospital, Division of Pediatric Otolaryngology, Oak Lawn, IL, USA; Global Smile Foundation, Norwood, MA, USA.
University of Connecticut School of Medicine, Division of Otolaryngology-Head and Neck Surgery, Farmington, CT, USA.
Int J Pediatr Otorhinolaryngol. 2018 Oct;113:292-297. doi: 10.1016/j.ijporl.2018.08.016. Epub 2018 Aug 16.
Cleft palate is one of the most common congenital anomalies, yet surgical repair remains challenging and can lead to significant complications in the hands of inexperienced surgeons. There is a great need for the development of a simulation model that will allow surgeons worldwide to learn and practice the intricate skills needed for cleft palate surgery.
Three-dimensional models of a soft palate cleft and an incomplete hard and soft palate cleft were developed using 3D printing and silicone casting. The cost and time of assembly of the 3D printed models were calculated. The models were then assessed for validity by cleft surgeons and trainees during a cleft mission in Ecuador. 3D models were assessed for resemblance to anatomy and tissue characteristics, the ability to incise the soft tissue, dissect and reposition the palatal flaps, and the ease of suture placement. Models were rated using the Likeness to Human Tissue Scale.
Cleft palate simulators were successfully developed using 3D printing and silicone casting. Participants reported that models provided a realistic representation of human anatomy and were adequate for novice surgeons to practice the procedure. The models were portable, low cost, and easily assembled.
The use of 3D printed haptic simulation models for teaching and learning cleft palate repair techniques could enhance skill acquisition and possibly improve surgical outcomes. In outreach settings, it could help achieve local, sustainable comprehensive care for cleft palate patients.
腭裂是最常见的先天性畸形之一,然而手术修复仍然具有挑战性,在经验不足的外科医生手中可能导致严重并发症。迫切需要开发一种模拟模型,使全球的外科医生能够学习和练习腭裂手术所需的复杂技能。
使用3D打印和硅胶铸造技术制作软腭裂以及不完全硬腭和软腭裂的三维模型。计算3D打印模型的组装成本和时间。然后在厄瓜多尔的一次腭裂治疗任务中,由腭裂外科医生和学员对模型的有效性进行评估。对3D模型进行评估,看其在解剖结构和组织特征方面的相似度、切开软组织、分离和重新定位腭瓣的能力以及缝合操作的难易程度。使用与人体组织相似度量表对模型进行评分。
通过3D打印和硅胶铸造成功开发出腭裂模拟器。参与者报告称,模型逼真地呈现了人体解剖结构,对于新手外科医生练习该手术来说足够了。这些模型便于携带、成本低且易于组装。
使用3D打印触觉模拟模型来教授和学习腭裂修复技术可以提高技能掌握程度,并可能改善手术效果。在推广环境中,它有助于为腭裂患者实现当地可持续的综合护理。