Erdemir Ahmet
Computational Biomodeling (CoBi) Core and Department of Biomedical Engineering, Cleveland Clinic, Cleveland, Ohio.
J Knee Surg. 2016 Feb;29(2):107-16. doi: 10.1055/s-0035-1564600. Epub 2015 Oct 7.
Virtual representations of the knee joint can provide clinicians, scientists, and engineers the tools to explore mechanical functions of the knee and its tissue structures in health and disease. Modeling and simulation approaches such as finite element analysis also provide the possibility to understand the influence of surgical procedures and implants on joint stresses and tissue deformations. A large number of knee joint models are described in the biomechanics literature. However, freely accessible, customizable, and easy-to-use models are scarce. Availability of such models can accelerate clinical translation of simulations, where labor-intensive reproduction of model development steps can be avoided. Interested parties can immediately utilize readily available models for scientific discovery and clinical care. Motivated by this gap, this study aims to describe an open source and freely available finite element representation of the tibiofemoral joint, namely Open Knee, which includes the detailed anatomical representation of the joint's major tissue structures and their nonlinear mechanical properties and interactions. Three use cases illustrate customization potential of the model, its predictive capacity, and its scientific and clinical utility: prediction of joint movements during passive flexion, examining the role of meniscectomy on contact mechanics and joint movements, and understanding anterior cruciate ligament mechanics. A summary of scientific and clinically directed studies conducted by other investigators are also provided. The utilization of this open source model by groups other than its developers emphasizes the premise of model sharing as an accelerator of simulation-based medicine. Finally, the imminent need to develop next-generation knee models is noted. These are anticipated to incorporate individualized anatomy and tissue properties supported by specimen-specific joint mechanics data for evaluation, all acquired in vitro from varying age groups and pathological states.
膝关节的虚拟模型可为临床医生、科学家和工程师提供工具,以探索膝关节在健康和疾病状态下的机械功能及其组织结构。诸如有限元分析等建模和仿真方法也为理解手术操作和植入物对关节应力和组织变形的影响提供了可能。生物力学文献中描述了大量的膝关节模型。然而,可免费获取、可定制且易于使用的模型却很稀缺。此类模型的可用性可加速模拟的临床转化,从而避免模型开发步骤中劳动密集型的重复工作。相关人员可立即将现成的模型用于科学发现和临床护理。受这一差距的推动,本研究旨在描述一种开源且免费可用的胫股关节有限元模型,即开放膝关节模型,它包括关节主要组织结构的详细解剖表示及其非线性力学特性和相互作用。三个用例展示了该模型的定制潜力、预测能力以及科学和临床实用性:被动屈曲时关节运动的预测、半月板切除术对接触力学和关节运动作用的研究以及前交叉韧带力学的理解。还提供了其他研究人员进行的科学和临床导向研究的总结。该开源模型被其开发者以外的团队使用,强调了模型共享作为基于模拟的医学加速器的前提。最后,指出了开发下一代膝关节模型的迫切需求。预计这些模型将纳入由特定标本的关节力学数据支持的个性化解剖结构和组织特性以供评估,所有这些数据均在体外从不同年龄组和病理状态获取。