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A computer modeling tool for optimizing Meniscus Allograft Transplantation

A computer modeling tool for optimizing Meniscus Allograft Transplantation
用于优化同种异体半月板移植的计算机建模工具
批准号:
8300238
负责人:
XUDONG ZHANG
金额:
$7.27万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-08-15 至 2013-07-31

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中文摘要
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DESCRIPTION (provided by applicant): Meniscus allograft transplantation has become a viable treatment option for selected symptomatic patients who have undergone a complete or near-complete meniscectomy. Preliminary basic and clinical studies have suggested that meniscus allograft transplantation may help alleviate pain and improve knee function. However, the efficacy of transplantation to restore normal meniscus function compromised by meniscectomy has not been rigorously evaluated. There has been a scarcity of converging evidence from both clinical and basic science studies. Critically lacking are quantitative in vivo data and mechanistic descriptions of how meniscus allograft transplantation affects the knee joint function and mechanics. Such data and knowledge bases not only provide direct, most relevant scientific evidence for optimizing the clinical care, but also are much needed for guiding the development of tissue-engineered meniscus constructs. The proposed research is the first attempt to develop such a knowledge base by studying the effects of meniscus allograft transplantation on tibiofemoral kinematics and contact congruency in vivo and in silico. Our long-term goal is to establish a biomechanical science base and a computerized clinical utility for designing individual-optimized meniscus allograft transplantation. Our specific aims are (1) to characterize the in vivo changes in tibiofemoral kinematics and contact congruency in patients before and after treatment with meniscal transplant surgery during daily activities (level walking, squatting), and (2) to develop and validate a computational in silico model that describes mechanistically the effects of meniscus transplantation of varied characteristics on joint kinematics and contact congruency. We will measure 10 patients' tibiofemoral kinematics using a dynamic biplane radiography system, muscle activations using a wireless EMG system, and whole-body kinematics- kinetics using an optical motion capture system along with an instrumented treadmill. We will obtain high- resolution computed tomography (CT) and magnetic resonance imaging (MRI) scans of the patients. With the data, we will develop patient-specific models using an approach combining forward dynamic simulation and finite element modeling. We will validate the model based on both within-patient and cross-patient predictions. Successful fulfillment of these research aims will build a new biomechanical science foundation and a validated modeling framework for our future pursuit of individual-optimized meniscus transplantation that not only restores joint congruency but also promotes long-term joint health. PUBLIC HEALTH RELEVANCE: Meniscectomy is the most common orthopaedic surgical procedure performed in the United States and has deleterious consequences such as osteoarthritis and muscle dysfunction. Although meniscus transplant surgery has become a viable treatment option to restore normal meniscus function compromised by meniscectomy, its efficacy has not been rigorously evaluated. This grant application seeks to study the effects of meniscus allograft transplantation on tibiofemoral kinematics and contact mechanics using computer models developed from in vivo data.
期刊论文(5)
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会议论文
In vivo tibiofemoral skeletal kinematics and cartilage contact arthrokinematics during decline walking after isolated meniscectomy.
孤立半月板切除术后下降行走过程中的体内胫股骨骨骼运动学和软骨接触关节运动学。
DOI: 10.1016/j.medengphy.2017.10.014
发表时间: 2018
期刊: Medical engineering & physics
影响因子: 2.2
作者: [Zheng,Liying, Carey,Robert, Thorhauer,Eric, Tashman,Scott, Harner,Christopher, Zhang,Xudong]
通讯作者: Zhang,Xudong
Integrating dynamic stereo-radiography and surface-based motion data for subject-specific musculoskeletal dynamic modeling.
集成动态立体放射摄影和基于表面的运动数据,用于特定对象的肌肉骨骼动态建模。
DOI: 10.1016/j.jbiomech.2014.08.009
发表时间: 2014
期刊: Journal of biomechanics
影响因子: 2.4
作者: [Zheng,Liying, Li,Kang, Shetye,Snehal, Zhang,Xudong]
通讯作者: Zhang,Xudong
DOI: 10.1371/journal.pone.0096515
发表时间: 2014
期刊: PloS one
影响因子: 3.7
作者: [Zheng L, Harner CD, Zhang X]
通讯作者: Zhang X
New Biomechanical Knowledge Base and Digital Design Tool for Prevention of Occupational Neck Disorders
New Biomechanical Knowledge Base and Digital Design Tool for Prevention of Occupational Neck Disorders
In Vivo Dynamic Lumbar Vertebral Motion and Disc Deformation During Lifting Tasks
In Vivo Dynamic Lumbar Vertebral Motion and Disc Deformation During Lifting Tasks
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