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临床试验/NCT07691528
NCT07691528已完成不适用

Effects of Biofeedback Training on Knee Proprioception in Individuals With a History of Knee Injury: A Pilot Study

Marshall University1 个研究点 分布在 1 个国家目标入组 14 人开始时间: 2024年1月30日最近更新:
适应症

试验速览

阶段
不适用
状态
已完成
入组人数
14
试验地点
1
主要终点
Dispersion Index (DI) from the Action-Perception Coupling (APC) Task

研究概览

简要总结

The goal of this clinical trial was to learn if a localized knee exercise program with visual and auditory feedback improves joint awareness (proprioception) and movement quality in young adults with a history of knee injuries. It also evaluated the feasibility and safety of performing these exercises. The main questions it aimed to answer were:

  1. Does targeted knee training with instant audio and visual warnings improve joint position awareness and decrease movement fear?
  2. Is a supervised laboratory biofeedback training program more effective at improving knee function and movement consistency than an independent home training program?
  3. How reliable is a manual goniometer compared to an isokinetic machine when measuring joint position errors? Researchers used a crossover design where every participant completed both the home-based training program and the laboratory-based biofeedback program, separated by a two-week rest period, to compare the effectiveness of the two approaches.

Participants did:

  1. Complete two separate three-week training blocks (two sessions per week) performing squats, lunge patterns, and sidesteps.
  2. Attend testing sessions at the lab before and after each training block to evaluate balance, movement consistency, and joint position awareness.
  3. Wear smart shoe insoles and surface body sensors during testing and laboratory training to track force and joint angles.
  4. Keep a log of exercises and note any side effects when training independently at home.

详细描述

Fourteen healthy young adults between the ages of 18-35 years were recruited from the student body of the department, friends and families of the students, and by word of mouth. Participants reported to the research laboratory for baseline testing. A randomized crossover design was utilized for this study. Inclusion criteria required that participants had at least one prior injury or trauma to the knee sustained no less than one year prior to enrollment, with any formal physical therapy concluding no less than 6 months prior. Participants were also required to be in generally good health, able to understand English, and capable of following verbal instructions. Exclusion criteria included a current neurological pathology, pregnancy, or any other lower extremity injury or traumatic event within the past year besides the index knee injury.

Upon arriving at the research laboratory, the study procedures were explained to the participants in detail, and they were allocated time to ask questions and decide on participation. Once informed consent was obtained, initial testing proceeded. A unique identification number (e.g., Knee01) was assigned to each participant for data de-identification and tracking. Participants first completed the Tampa Scale of Kinesiophobia (TSK-17) to quantify movement-related fear or fear of re-injury. Anthropometric measurements, including height and weight, were collected using a stadiometer, followed by leg length and lower leg length measurements via a tape measure. The dominant limb was determined by asking the participant to kick a soccer ball, and the history of the injured leg was documented. Participants were instructed to wear the same pair of athletic footwear during all subsequent laboratory and training sessions.

To evaluate knee joint proprioception, joint position sense (JPS) was assessed using an isokinetic dynamometer and a hand-held manual goniometer, with the more involved limb tested first. While seated on the isokinetic dynamometer, the machine passively moved the participant's limb to a target flexion angle (20° or 50°) with eyes open. The participant was instructed to memorize the joint position in space before the machine returned the limb to the starting resting position. Participants were then asked to actively recreate the target angle with eyes closed and hold the position while the dynamometer recorded the final angle. This protocol was repeated for three trials at each target angle (20° and 50°) on both limbs. For the manual goniometry assessment, participants sat on a treatment table with the knee joint line and lateral malleolus marked for consistent alignment. One research assistant positioned the goniometer to the target angle (20° or 50°) while a second assistant passively moved the participant's leg to allow them to perceive the reference position. The leg was returned to the resting position, and the participant actively recreated the target angle with eyes closed. The research assistants recorded the angle using the goniometer across three trials per target angle for both limbs.

Following JPS testing, seven Inertial Measurement Unit (IMU) sensors were secured via straps to the surface of the body (both feet, shanks, thighs, and the sacrum) to capture lower-body kinematics. Smart Insoles were placed inside the participants' shoes to record ground reaction force data. Participants executed a series of functional tasks: a double-leg quiet stance for 30 seconds, a single-leg quiet stance for 1 minute per limb (involved side first), three jump-landing trials, and the Y-Balance Test (involved side first). Participants then completed a dynamic action-perception coupling task starting with the involved limb. Participants were instructed to tap the top of hurdles set at varying heights (6-inch, 12-inch, and 18-inch) positioned either directly in front of or behind them. They performed the tapping task twice per hurdle with eyes looking forward, and then repeated the task with eyes closed. Finally, participants stood in front of the 18-inch hurdle with eyes closed while a research assistant moved them one step sideways. Participants were required to accurately locate and tap the hurdle with eyes closed in the correct direction for 10 consecutive trials. The entire testing session lasted approximately 1.5 hours.

Following baseline testing, participants were randomly assigned to either: 1) an independent home-based training program (Control group), or 2) a laboratory-based biofeedback training program (Feedback group). Both programs were completed twice weekly for 3 weeks.

研究设计

研究类型
Interventional
分配方式
Randomized
干预模型
Crossover
主要目的
Treatment
盲法
None

入排标准

年龄范围
18 Years 至 64 Years(Adult)
性别
All
接受健康志愿者

入选标准

  • Between the age of 18 to 64 years old.
  • If the participants have a prior injury to the knee, the injury must have occurred no less than one year ago with any physical therapy concluding no less than 6 months ago.
  • They are able to understand English and follow verbal instructions.

排除标准

  • People who have a current neurological or musculoskeletal pathology.
  • Pregnant women.
  • People who had other injury/traumatic event to the lower extremity in the last year besides the knee.

结局指标

主要结局

Dispersion Index (DI) from the Action-Perception Coupling (APC) Task

时间窗: Change from Baseline (Pre-Training 1) to Post-Training 1 (Week 3), and change from Pre-Training 2 (Week 5, following a 2-week washout) to Post-Training 2 (Week 8)

The Dispersion Index measures lower-limb joint coordination and movement consistency across the final 10 tapping repetitions of the APC task. Joint angle time-series data extracted from surface IMU sensors are used to construct a knee-hip angle-angle graph. Polar coordinate angles are calculated throughout the time series and normalized to 100% of the movement cycle. The spread of the polar coordinate angles is determined by calculating the difference between the maximum and minimum values at every 5% interval of the movement cycle. The average value of this spread is defined as the Dispersion Index (DI). A larger DI represents greater movement pattern dispersion (less consistency across repetitions), while a smaller DI indicates higher movement consistency and superior functional coordination.

Absolute Error of Knee Joint Position Sense

时间窗: Change from Baseline (Pre-Training 1) to Post-Training 1 (Week 3), and change from Pre-Training 2 (Week 5, following a 2-week washout) to Post-Training 2 (Week 8).

The absolute error (measured in degrees) represents the absolute difference between the target knee flexion angle (either 20° or 50°) and the angle actively replicated by the participant with their eyes closed. Lower values indicate better joint position sense and superior proprioceptive accuracy. Measurements were collected using both an isokinetic dynamometer and a manual hand-held goniometer across three trials per angle.

次要结局

  • Tampa Scale of Kinesiophobia (TSK-17) Score(Change from Baseline (Pre-Training 1) to Post-Training 1 (Week 3), and change from Pre-Training 2 (Week 5, following a 2-week washout) to Post-Training 2 (Week 8).)
  • Y-Balance Test Composite Score(Change from Baseline (Pre-Training 1) to Post-Training 1 (Week 3), and change from Pre-Training 2 (Week 5, following a 2-week washout) to Post-Training 2 (Week 8).)

研究者

申办方类型
Other
责任方
Principal Investigator
主要研究者

Huaqing Liang

Associate Professor

Marshall University

研究点 (1)

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