神经肌肉骨骼建模管道:OpenSim基于matlab的模型个性化和治疗优化功能。

IF 5.2 2区 医学 Q1 ENGINEERING, BIOMEDICAL
Claire V Hammond, Spencer T Williams, Marleny M Vega, Di Ao, Geng Li, Robert M Salati, Kayla M Pariser, Mohammad S Shourijeh, Ayman W Habib, Carolynn Patten, Benjamin J Fregly
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引用次数: 0

摘要

包括骨关节炎、中风、脊髓损伤和创伤性脑损伤在内的神经肌肉骨骼损伤影响了大约19%的美国成年人。由于每个患者独特的治疗需求,标准化的干预措施产生了次优的功能结果。在利用计算模型开发个性化治疗方面已经取得了长足的进步,但研究人员和临床医生还没有跨越基础研究和临床应用之间的“死亡之谷”。本文介绍了神经肌肉骨骼建模(NMSM)管道,这是两个基于matlab的工具集,为OpenSim添加了模型个性化和治疗优化功能。这两个工具集通过使用个性化神经肌肉骨骼模型和预测模拟,促进了神经肌肉骨骼损伤个性化治疗的计算设计。模型个性化工具集包含四个工具,用于个性化1)关节结构模型,2)肌肉-肌腱模型,3)神经控制模型和4)地面接触模型。治疗优化工具集包含三个工具,用于使用患者个性化的神经肌肉骨骼模型和直接搭配最优控制方法预测和优化患者不同治疗方案的功能结果。支持用户定义的成本、约束和模型修改功能,便于模拟大量可能的处理方法。本文提出了一个NMSM管道用例,用于中风后行走功能受损的个体,其目标是预测如何改变受试者的神经控制,以在不增加代谢成本的情况下提高行走速度。首先,使用模型个性化工具集从通用的OpenSim全身模型和实验步行数据(视频动作捕捉、地面反应和肌电图)开始,以受试者自选的速度开发个性化的受试者神经肌肉骨骼模型。接下来,将治疗优化工具集与个性化模型一起使用,以预测受试者如何更有效地利用现有的肌肉协同作用,以减少瘫腿和非瘫腿之间的肌肉激活差异。该软件预测,受试者可以通过改变现有的肌肉协同作用招募,在不增加单位时间代谢成本的情况下,将步行速度提高60%。这种假设的治疗方法展示了NMSM Pipeline工具如何允许研究人员与临床医生合作开发个体患者的个性化神经肌肉骨骼模型,并为设计个性化治疗方法进行预测模拟,从而最大限度地提高患者治疗后的功能结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Neuromusculoskeletal Modeling Pipeline: MATLAB-based model personalization and treatment optimization functionality for OpenSim.

Neuromusculoskeletal injuries including osteoarthritis, stroke, spinal cord injury, and traumatic brain injury affect roughly 19% of the U.S. adult population. Standardized interventions have produced suboptimal functional outcomes due to the unique treatment needs of each patient. Strides have been made to utilize computational models to develop personalized treatments, but researchers and clinicians have yet to cross the "valley of death" between fundamental research and clinical usefulness. This article introduces the Neuromusculoskeletal Modeling (NMSM) Pipeline, two MATLAB-based toolsets that add Model Personalization and Treatment Optimization functionality to OpenSim. The two toolsets facilitate computational design of individualized treatments for neuromusculoskeletal impairments through the use of personalized neuromusculoskeletal models and predictive simulation. The Model Personalization toolset contains four tools for personalizing 1) joint structure models, 2) muscle-tendon models, 3) neural control models, and 4) foot-ground contact models. The Treatment Optimization toolset contains three tools for predicting and optimizing a patient's functional outcome for different treatment options using a patient's personalized neuromusculoskeletal model and direct collocation optimal control methods. Support for user-defined cost, constraint, and model modification functions facilitate simulation of a vast number of possible treatments. An NMSM Pipeline use case is presented for an individual post-stroke with impaired walking function, where the goal was to predict how the subject's neural control could be changed to improve walking speed without increasing metabolic cost. First the Model Personalization toolset was used to develop a personalized neuromusculoskeletal model of the subject starting from a generic OpenSim full-body model and experimental walking data (video motion capture, ground reaction, and electromyography) collected from the subject at his self-selected speed. Next the Treatment Optimization toolset was used with the personalized model to predict how the subject could recruit existing muscle synergies more effectively to reduce muscle activation disparities between the paretic and non-paretic legs. The software predicted that the subject could increase his walking speed by 60% without increasing his metabolic cost per unit time by modifying existing muscle synergy recruitment. This hypothetical treatment demonstrates how NMSM Pipeline tools could allow researchers working collaboratively with clinicians to develop personalized neuromusculoskeletal models of individual patients and to perform predictive simulations for designing personalized treatments that maximize a patient's post-treatment functional outcome.

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来源期刊
Journal of NeuroEngineering and Rehabilitation
Journal of NeuroEngineering and Rehabilitation 工程技术-工程:生物医学
CiteScore
9.60
自引率
3.90%
发文量
122
审稿时长
24 months
期刊介绍: Journal of NeuroEngineering and Rehabilitation considers manuscripts on all aspects of research that result from cross-fertilization of the fields of neuroscience, biomedical engineering, and physical medicine & rehabilitation.
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