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Automatic Prosthetic Foot Stiffness Modulation to Improve Balance in the Real World

Automatic Activity-Dependent and Phase-Varying Prosthetic Foot Stiffness Modulation to Improve Balance Control in Individuals With Lower-Limb Amputations in the Real World

The goal of this clinical trial is to determine if automatic stiffness modulation improves balance control in ambulatory individuals with below-knee amputations in real-world conditions. The main question this clinical trial will answer is:

• Can a user-specific automatic stiffness prosthesis improve balance control compared to user's fixed stiffness prosthesis that was clinically prescribed?

Participants will perform free-ranging ambulatory activities outside the laboratory that include nine ambulatory activities of daily living (walking at different speeds, turning, ramp ascent/descent, while carrying a load, and while walking on uneven terrain) while wearing, in random order, 1) a fixed stiffness prosthesis that was clinically prescribed and 2) an automatic stiffness prosthesis that uses an open source ankle configured to implement a user- and activity-specific automatic stiffness modulation control scheme intended to improve balance control.

研究概览

详细说明

Individuals with lower limb amputations are at higher risk of falling compared to able-bodied and other clinical populations and are more likely to sustain life-altering injuries. The higher fall risk is primarily due to the loss of muscles crossing the ankle, which are critical to maintaining balance control. Prosthetic devices are designed to provide appropriate stiffness for needed stability and support. While research has shown the optimal stiffness to maintain balance varies across ambulatory activities (e.g., straight walking versus turning), most clinically prescribed prosthetic devices are passive and only provide a fixed stiffness level. The one commercially available, powered prosthetic ankle-foot, has not been shown to restore balance control. Thus, a prosthetic device that actively adjusts ankle stiffness across different ambulatory activities is critically needed to advance the field and improve balance control for those with lower-limb amputations. The goal of this clinical trial is to identify prosthesis stiffness that optimizes balance control in individuals with below knee amputations as they perform typical ambulatory activities of daily living. By matching the ankle stiffness to the task requirements, the investigators believe balance control will significantly improve and fall risk will decrease for those with lower-limb amputations.

Each participant will be fit with a novel prosthesis that includes a low-profile prosthetic foot whose stiffness category will be determined by their body weight and activity level (standard clinical practice), a prosthetic foot whose stiffness category is two categories stiffer, and another whose stiffness is two categories less stiff. Participants will continue to use their existing prosthetic socket and suspension system, but their pylon length will be adjusted as needed. While wearing the different study prostheses in randomized order, nine ambulatory activities will be performed in a motion capture laboratory.

  1. Walking on level ground at self-selected speed.
  2. Walking on level ground at 15% slower than self-selected speed.
  3. Walking on level ground at 15% faster than self-selected speed.
  4. Walking up an 8% slope at self-selected speed.
  5. Walking down an 8% slope at self-selected speed.
  6. Walking on level ground at self-selected speed while carrying a 5 kg load in one hand on their prosthetic side.
  7. Walking on level but uneven terrain at self-selected speed.
  8. Walking around 2-meter diameter circle at self-selected speed with the prosthetic side on the inside of the circle.
  9. Walking around 2-meter diameter circle at self-selected speed with the prosthetic side on the outside of the circle.

Ambulatory activities 1 through 6 will be performed on an instrumented treadmill. The load to be carried in activity 6 will be configured as a grocery bag with handles. Activity 7 will be performed on a rocky terrain treadmill. Activities 8 and 9 will be performed overground across five force plates embedded in the laboratory floor while following the outline of a 2-meter diameter circle. Rest breaks during all activities will be provided as needed.

The data from this experiment will be used to calculate the peak-to-peak range of the frontal plane whole-body angular momentum (a measure of balance control). The investigators will use these calculations to determine a user- and activity-specific automatic stiffness modulation control scheme intended to improve balance control.

Each participant will then be randomized to wear their fixed stiffness prosthesis or the automatic stiffness prosthesis. Subjects will be fit with the IMU sensors on their ankles, wrists, and upper torso. The automatic stiffness prosthesis will be programmed to emulate the user-specific and activity-specific automatic stiffness modulation control scheme. Subjects will be provided at least 10 minutes to walk about the laboratory to learn how the study prosthesis performs. Subjects, wearing the study prosthesis (fixed or automatic stiffness), will then walk a defined course about the hospital facility (both indoors and outdoors) in which each of the laboratory-based ambulatory activities will be represented. A study investigator will accompany the subject at a following distance of ~5 meters while video recording their gait. After completing the defined course, the subject will return to the laboratory where they will complete the Prosthetic Limb Users Survey of Mobility and the Activities-Specific Balance Confidence Scale questionnaires to assess their perceived functional mobility and balance confidence. The subject will then don the other study prosthesis (fixed or automatic stiffness) and then repeat the walk about the defined course and complete the two questionnaires a second time.

The results of this experiment will determine if automatic stiffness modulation improves the balance control of those with lower-limb amputation as they perform typical ambulatory activities of daily living using both biomechanical analyses and self-report assessments of perceived functional mobility and balance confidence.

The investigators hypothesize that the automatic stiffness prosthesis will provide improved balance control in real-world environments compared to the user's fixed stiffness prosthesis that was clinically prescribed. The investigators further hypothesize that the Prosthetic Limb Users Survey of Mobility score reported after wearing the automatic stiffness prosthesis will be greater than the score reported after wearing the fixed stiffness prosthesis, and the Activities-Specific Balance Confidence Scale score reported after wearing the automatic stiffness prosthesis will be greater than the score reported after wearing the fixed stiffness prosthesis.

研究类型

介入性

注册 (估计的)

20

阶段

  • 不适用

联系人和位置

本节提供了进行研究的人员的详细联系信息,以及有关进行该研究的地点的信息。

学习地点

    • Washington
      • Seattle、Washington、美国、98108
        • VA Puget Sound Healthcare System
        • 首席研究员:
          • Glenn K Klute, PhD
        • 接触:
        • 接触:
        • 首席研究员:
          • Richard R Neptune, PhD

参与标准

研究人员寻找符合特定描述的人,称为资格标准。这些标准的一些例子是一个人的一般健康状况或先前的治疗。

资格标准

适合学习的年龄

  • 成人
  • 年长者

接受健康志愿者

不

描述

Inclusion Criteria:

  • Unilateral transtibial (below-knee) amputation
  • Been fit with a prosthesis and used it for at least 6 months
  • Wear the prosthesis for 4 or more hours on average per day
  • Be at least one-year post-amputation
  • Able to walk on a treadmill

Exclusion Criteria:

  • Presence of disorder, pain, or injury other than amputation that interferes with gait
  • Current skin irritation or injury on residual limb
  • Use of an assistive device for walking (cane, walker, etc.)

学习计划

本节提供研究计划的详细信息,包括研究的设计方式和研究的衡量标准。

研究是如何设计的?

设计细节

  • 主要用途:治疗
  • 分配:随机化
  • 介入模型:交叉作业
  • 屏蔽:双倍的

武器和干预

参与者组/臂
干预/治疗
实验性的:Fixed stiffness prosthesis then automatic stiffness prosthesis

A within-subject crossover experiment will be conducted to determine if differences in balance control (peak-to-peak range of frontal plane whole body angular momentum) exist between two study prostheses. The two study prostheses include (1) the participant's fixed stiffness prosthesis and (2) a novel, automatic stiffness prosthesis. The order in which participants wore the study prostheses was randomized.

The study will be conducted over 2 weeks. All participants will walk a defined course (both indoors and outdoors) about a hospital facility.

Participants in this group will wear their fixed stiffness prosthesis first and then the automatic stiffness prosthesis.

The participant's clinically prescribed prosthesis whose stiffness category is determined by the person's body weight and activity level (standard clinical practice).
A novel prosthesis whose user-specific and activity-specific stiffness profile is automatically modulated based on their ambulatory activity.
实验性的:Automatic stiffness prosthesis then fixed stiffness prosthesis

A within-subject crossover experiment will be conducted to determine if differences in balance control (peak-to-peak range of frontal plane whole body angular momentum) exist between two study prostheses. The two study prostheses include (1) the participant's fixed stiffness prosthesis and (2) a novel, automatic stiffness prosthesis. The order in which participants wore the study prostheses was randomized.

The study will be conducted over 2 weeks. All participants will walk a defined course (both indoors and outdoors) about a hospital facility.

Participants in this group will wear the automatic stiffness prosthesis and then their fixed stiffness prosthesis.

The participant's clinically prescribed prosthesis whose stiffness category is determined by the person's body weight and activity level (standard clinical practice).
A novel prosthesis whose user-specific and activity-specific stiffness profile is automatically modulated based on their ambulatory activity.

研究衡量的是什么?

主要结果指标

结果测量
措施说明
大体时间
额面全身角动量峰峰值范围
大体时间:研究访问期间(约3小时)
额面全身角动量是在没有外力或扭矩的情况下人在额面中旋转的程度的量度。 峰峰值范围量化了该指标的变化程度,并用于描述一个人的平衡情况。
研究访问期间(约3小时)

次要结果测量

结果测量
措施说明
大体时间
Prosthetic Limb Users Survey of Mobility
大体时间:During study visit (approximately 3 hours)
The Prosthetic Limb Users Survey of Mobility is a self-report instrument designed to measure the mobility of adults with lower limb amputations, utilizing a set of calibrated questions to assess perceived mobility in various activities. The Prosthetic Limb Users Survey of Mobility has been recommended by the National Institute of Child Health and Human Development as a core Common Data Element for lower-limb loss research as outcome measures to assess mobility.
During study visit (approximately 3 hours)
Activities-Specific Balance Confidence Scale
大体时间:During study visit (approximately 3 hours)
The Activities-Specific Balance Confidence Scale is a 16-item self-report questionnaire that measures an individual's confidence in performing daily activities without losing balance or feeling unsteady. It is widely used to identify individuals at risk of falls and to guide interventions aimed at improving balance and mobility. The Activities-Specific Balance Confidence Scale has been recommended by National Institute of Child Health and Human Development as a core Common Data Element for lower-limb loss research as an outcome measure to assess balance.
During study visit (approximately 3 hours)

合作者和调查者

在这里您可以找到参与这项研究的人员和组织。

研究记录日期

这些日期跟踪向 ClinicalTrials.gov 提交研究记录和摘要结果的进度。研究记录和报告的结果由国家医学图书馆 (NLM) 审查,以确保它们在发布到公共网站之前符合特定的质量控制标准。

研究主要日期

学习开始 (估计的)

2026年11月1日

初级完成 (估计的)

2027年11月1日

研究完成 (估计的)

2028年11月1日

研究注册日期

首次提交

2026年8月10日

首先提交符合 QC 标准的

2026年8月25日

首次发布 (实际的)

2026年8月28日

研究记录更新

最后更新发布 (实际的)

2026年8月28日

上次提交的符合 QC 标准的更新

2026年8月25日

最后验证

2026年8月1日

更多信息

与本研究相关的术语

其他研究编号

  • 1817327-27
  • 1R01HD111514-01A1 (美国 NIH 拨款/合同)

计划个人参与者数据 (IPD)

计划共享个人参与者数据 (IPD)?

是的

IPD 计划说明

De-identified data sets of all individual participant data collected throughout the trial will be made available, in machine-readable format, on the Eunice Kennedy Shriver National Institute of Child Health and Human Development Data and Specimen Hub. The de-identification procedures will follow 164.514(a) of the Health Insurance Portability and Accountability Act Privacy Rule.

IPD 共享时间框架

Publication-associated datasets will be submitted to Data and Specimen Hub at least 4 months prior to publication so that data can be shared on or before the initial publication date. The full study dataset will be submitted to Data and Specimen Hub at least 6 months prior to the end of the award period. The Data and Specimen Hub do not currently have any data deprecation or sunsetting protocols, allowing shared data to be preserved for the foreseeable future.

IPD 共享访问标准

The Data and Specimen Hub are a National Institutes of Health controlled-access data repository. The Eunice Kennedy Shriver National Institute of Child Health and Human Development Data and Specimen Hub Data Access Committee reviews all requests to access Data and Specimen Hub data from identity-verified requesters to determine whether the proposed use is scientifically and ethically appropriate and does not conflict with constraints or research data use limitations identified by the institutions that submitted the research data. The Recipient's institution and the Recipient must sign and agree to the terms and conditions in the N Eunice Kennedy Shriver National Institute of Child Health and Human Development Data and Specimen Hub Data Use Agreement for accessing research data.

IPD 共享支持信息类型

  • 研究方案
  • 国际碳纤维联合会

药物和器械信息、研究文件

研究美国 FDA 监管的药品

不

研究美国 FDA 监管的设备产品

是的

在美国制造并从美国出口的产品

不

此信息直接从 clinicaltrials.gov 网站检索,没有任何更改。如果您有任何更改、删除或更新研究详细信息的请求,请联系 register@clinicaltrials.gov. clinicaltrials.gov 上实施更改,我们的网站上也会自动更新.

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