Talar and Calcaneal Coordinate Axes Definitions across Foot Pathologies

IF 2.4 3区 医学 Q3 BIOPHYSICS Journal of biomechanics Pub Date : 2024-08-30 DOI:10.1016/j.jbiomech.2024.112298
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Abstract

The understanding of foot and ankle biomechanics is improving as new technology provides more detailed information about the motion of foot and ankle bones with biplane fluoroscopy, as well as the ability to analyze the hindfoot under weightbearing conditions with weightbearing computed tomography. Three-dimensional anatomical coordinate systems are necessary to describe the 3D alignment and kinematics of the foot and ankle. The lack of standard coordinate systems across research study sites can significantly alter experimental data analyses used for pre-surgical evaluation and post-operative outcome assessments. Clinical treatment paradigms are changing based on the expanding knowledge of complex pes planovalgus morphologies or progressive collapsing foot deformity, which is present in both neurologic and non-neurologic populations. Four patient cohorts were created from 10 flexible PCFD, 10 rigid PCFD, 10 adult cerebral palsy, and 10 asymptomatic control patients. Six coordinate systems were tested on both the talus and calcaneus for all groups. The aim of this study was to evaluate axes definitions for the subtalar joint across four different patient populations to determine the influence of morphology on the implementation of previously defined coordinate systems. Different morphologic presentations from various pathologies have a substantial impact on coordinate system definitions, given that numerous axes definitions are defined through geometric fits or manual landmark selection. Automated coordinate systems that align with clinically relevant anatomic planes are preferred. Principal component axes are automatic, but do not align with clinically relevant planes and should not be used for such analysis where anatomic planes are critical.

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不同足部病变的距骨和钙基坐标轴定义
新技术通过双平面透视提供了有关足部和踝关节骨骼运动的更详细信息,并能通过负重计算机断层扫描分析负重条件下的后足,因此人们对足部和踝关节生物力学的理解正在不断提高。三维解剖坐标系是描述足踝三维排列和运动学的必要条件。不同研究场所缺乏标准坐标系会严重改变用于术前评估和术后结果评估的实验数据分析。随着人们对复杂趾外翻形态或进行性塌足畸形的认识不断加深,临床治疗范式也在发生变化,这种畸形既存在于神经系统疾病患者中,也存在于非神经系统疾病患者中。我们创建了四个患者队列,包括 10 名柔性 PCFD 患者、10 名刚性 PCFD 患者、10 名成人脑瘫患者和 10 名无症状对照组患者。对所有组别的距骨和小腿骨进行了六种坐标系统测试。这项研究的目的是评估四个不同患者群体的距下关节轴定义,以确定形态学对之前定义的坐标系统实施的影响。由于许多轴线定义都是通过几何拟合或手动选择地标来定义的,因此各种病症的不同形态表现对坐标系定义有很大影响。与临床相关解剖平面相一致的自动坐标系统是首选。主成分坐标轴是自动的,但不能与临床相关平面对齐,因此不应在解剖平面至关重要的情况下用于此类分析。
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来源期刊
Journal of biomechanics
Journal of biomechanics 生物-工程:生物医学
CiteScore
5.10
自引率
4.20%
发文量
345
审稿时长
1 months
期刊介绍: The Journal of Biomechanics publishes reports of original and substantial findings using the principles of mechanics to explore biological problems. Analytical, as well as experimental papers may be submitted, and the journal accepts original articles, surveys and perspective articles (usually by Editorial invitation only), book reviews and letters to the Editor. The criteria for acceptance of manuscripts include excellence, novelty, significance, clarity, conciseness and interest to the readership. Papers published in the journal may cover a wide range of topics in biomechanics, including, but not limited to: -Fundamental Topics - Biomechanics of the musculoskeletal, cardiovascular, and respiratory systems, mechanics of hard and soft tissues, biofluid mechanics, mechanics of prostheses and implant-tissue interfaces, mechanics of cells. -Cardiovascular and Respiratory Biomechanics - Mechanics of blood-flow, air-flow, mechanics of the soft tissues, flow-tissue or flow-prosthesis interactions. -Cell Biomechanics - Biomechanic analyses of cells, membranes and sub-cellular structures; the relationship of the mechanical environment to cell and tissue response. -Dental Biomechanics - Design and analysis of dental tissues and prostheses, mechanics of chewing. -Functional Tissue Engineering - The role of biomechanical factors in engineered tissue replacements and regenerative medicine. -Injury Biomechanics - Mechanics of impact and trauma, dynamics of man-machine interaction. -Molecular Biomechanics - Mechanical analyses of biomolecules. -Orthopedic Biomechanics - Mechanics of fracture and fracture fixation, mechanics of implants and implant fixation, mechanics of bones and joints, wear of natural and artificial joints. -Rehabilitation Biomechanics - Analyses of gait, mechanics of prosthetics and orthotics. -Sports Biomechanics - Mechanical analyses of sports performance.
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