回避干预期间的膝关节外展力矩波形和效应大小:为未来研究提供充分支持的关键观点。

IF 2.4 3区 医学 Q3 BIOPHYSICS
Journal of biomechanics Pub Date : 2025-10-01 Epub Date: 2025-08-08 DOI:10.1016/j.jbiomech.2025.112896
Hazel Tucker, Jos Vanrenterghem, Todd C Pataky, Mark A Robinson
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引用次数: 0

摘要

膝关节外展力矩(KAM)常被作为干预研究的目标,以降低前交叉韧带损伤的风险。像KAM这样的结果变量应该是可重复的,并能对变化做出反应。本研究批判性地评估了KAM作为回避干预的结果变量的适用性。首先,通过系统的文献检索,从日内技术操作或长期干预研究中提取峰值KAM效应量。效应大小从小到大变化很大。其次,对干预研究的权力报告实践进行了评估,发现通常不可重复。第三,对KAM剖面进行数字化处理,建立报告的KAM信号的一致性,并建立具有代表性的KAM剖面。最后,将一天内技术操作和长期干预的中位数KAM效应大小分别与代表性KAM剖面相结合,以假设KAM减少输入到波形级样本量估计分析。观察到中位KAM效应大小减少的样本量在一天内的技术操作中为~ 255,在长期干预中为~ 360。干预研究往往观察到的效应量小于其功效分析中计算的效应量。支持假设的具有中位效应的KAM减少研究所需的样本量有些令人望而却步。这些结果支持了越来越多的证据,即KAM不是设计和评估干预研究的合适的主要结果指标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knee abduction moment waveforms and effect sizes during sidestepping interventions: A critical perspective to inform adequately powered future studies.

The knee abduction moment (KAM) is often chosen as target of intervention studies to reduce anterior cruciate ligament injury risk. Outcome variables such as the KAM should be reproducible and responsive to change. This study critically evaluated the suitability of the KAM as an outcome variable for sidestepping interventions. Firstly, peak KAM effect sizes from either a within-day technique manipulation or long-term intervention studies were extracted using a systematic literature search. Effect sizes varied substantially from small to large effects. Secondly, power reporting practice across intervention studies was evaluated and was found to be generally not reproducible. Thirdly, KAM profiles were digitised to establish the consistency of reported KAM signals and to establish a representative KAM profile. Lastly, median KAM effect sizes from a within-day technique manipulation and long-term interventions were separately combined with the representative KAM profile for a hypothetical KAM reduction input to a waveform-level sample size estimation analysis. Sample sizes to observe a reduction of the median KAM effect size were ∼255 for a within-day technique manipulation and ∼360 long-term interventions. Intervention studies tended to observe smaller effect sizes than were calculated in their power analysis. Sample sizes needed to power hypothetical KAM reduction studies with median effect sizes were somewhat prohibitive. These results support the accumulating evidence that the KAM is not a suitable primary outcome measure against which intervention studies should be designed and evaluated.

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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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