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Ankle Robotics for Error Augmentation After Stroke

2026年8月31日 更新者:Kelly Westlake、University of Maryland, Baltimore

The goal of this pilot clinical trial is to test whether training with a portable ankle robot improves ankle push-off and walking speed in adults with chronic stroke who have ankle weakness. The study will also evaluate whether the device is safe and practical to use during walking rehabilitation.

The main questions it aims to answer are:

Does training with the portable ankle robot improve paretic ankle propulsion during walking? Does training with the portable ankle robot improve walking speed at self-selected and fast walking speeds?

Participants will:

Complete 30 training sessions of treadmill and overground walking while wearing the portable ankle robot, 3 to 4 times per week over 8 to 9 weeks Complete walking and movement assessments before training, after 15 sessions, and after 30 sessions Walk at self-selected and fast speeds while researchers measure ankle propulsion, gait symmetry, and walking speed

調査の概要

状態

招待による登録

介入・治療

詳細な説明

This is a single-arm pilot study evaluating robotic error augmentation of paretic ankle propulsion during gait training in adults with chronic stroke. Ten participants with chronic (>6 months) stroke and residual ankle weakness will complete 30 training sessions using the AMBLE portable ankle exoskeleton. Assessments are conducted at baseline, after 15 sessions, and after 30 sessions. The hypothesis is that 30 sessions of robot-assisted treadmill gait training enhances paretic ankle plantarflexion propulsive torque and gait symmetry.

Approximately half of stroke survivors are left with chronic mobility disability, typically involving ankle weakness that impairs walking and increases fall risk. Current care relies on ankle-foot orthoses, functional electrical stimulation, canes, and walkers, none of which address the underlying deficit in ankle motor control. Weakness of the paretic plantarflexors limits push-off during late stance, reducing forward propulsion and contributing to reduced walking speed and gait asymmetry.

The investigators previously developed the AMBLE, a lightweight portable ankle exoskeleton that uses impedance-based control with real-time gait event detection to deliver torque synchronized to specific phases of the gait cycle. Prior work by this group using laboratory-based and portable ankle robotics targeted dorsiflexion, demonstrating reduced foot drop and improved overground walking in both early and chronic stroke, and the present study extends an ongoing investigation of the device (NCT04594837). Paretic plantarflexion propulsion has not previously been targeted with the AMBLE. Recent engineering modifications enable graded resistance during the push-off phase of gait, permitting investigation of whether error augmentation applied to paretic ankle propulsion can enhance forward propulsion during walking.

Training sessions consists of two 10-minute bouts of treadmill walking at progressively increasing speed and one 10-minute bout of overground walking as able, with the robot donned on the paretic leg. Plantarflexion resistance is delivered through the ankle robot and calibrated individually, increased as tolerated up to the level just below the point at which hip circumduction or instability emerges. Resistance is applied after attainment of steady-state walking speed and intermittently removed at predetermined intervals to sample voluntary paretic ankle power. Treadmill speed is then progressed toward a target of 70-85% heart rate reserve and RPE 15-18, recorded every 3-5 minutes. Seated rest of 2-3 minutes is provided between bouts.

Visual feedback of ankle propulsion power is delivered through a tablet-based application on a faded schedule: continuously during weeks 1-2, for 1 minute every 5 minutes during weeks 3-4, for 1 minute at the end of each 10-minute bout during weeks 5-6, and as terminal summary feedback during seated rest in weeks 7-9.

Assessments include the 10-meter walk test at self-selected and fastest comfortable speeds; overground gait biomechanics using an instrumented walkway for spatiotemporal parameters and gait symmetry and two force plates for propulsive torque during push-off; and paretic and non-paretic ankle power normalized to body mass with kinetic symmetry, collected during unassisted walking with the device in evaluation mode. The Fugl-Meyer Assessment for the Lower Extremity is administered at baseline. Baseline and post-training measures will be compared using paired t-tests or nonparametric equivalents. Findings will provide preliminary effect estimates to inform the design of a larger trial.

研究の種類

介入

入学 (推定)

10

段階

  • 適用できない

連絡先と場所

このセクションには、調査を実施する担当者の連絡先の詳細と、この調査が実施されている場所に関する情報が記載されています。

研究場所

    • Maryland
      • Baltimore、Maryland、アメリカ、21201
        • Allied Health Research Building
      • Baltimore、Maryland、アメリカ、21042
        • Allied Health Research Building

参加基準

研究者は、適格基準と呼ばれる特定の説明に適合する人を探します。これらの基準のいくつかの例は、人の一般的な健康状態または以前の治療です。

適格基準

就学可能な年齢

  • 大人
  • 高齢者

健康ボランティアの受け入れ

いいえ

説明

Inclusion Criteria:

  • Chronic stroke, more than 6 months post-stroke
  • Clinical evidence of hemiparetic gait
  • Ankle dorsiflexion and plantarflexion strength on the affected side graded 1/5 (trace contraction) to 4/5 (reduced strength) on manual muscle testing
  • Able to independently complete the 10-Meter Walk Test at a walking speed less than 1.0 m/s, with or without an assistive device

Exclusion Criteria:

  • Self-reported unstable angina, myocardial infarction within the past 3 months, congestive heart failure (NYHA Class II), or hemodynamically significant valvular disease
  • Self-reported hypertension that is a contraindication to routine physical therapy (greater than 160/100 mmHg on two assessments)
  • Self-reported hospitalization within the past 3 months for severe medical illness
  • Self-reported symptomatic peripheral arterial occlusive disease
  • Self-reported orthopedic conditions or chronic pain that significantly alter gait function
  • Self-reported pulmonary or renal failure
  • Self-reported active cancer
  • Self-reported history of a non-stroke neuromuscular disorder restricting gait
  • Aphasia or cognitive functioning that confounds participation, defined as unable to follow two-step commands or by judgment of the evaluating therapist
  • Self-reported history of cerebellar stroke or observable cerebellar signs
  • Self-reported botulinum toxin prescribed for the lower extremities within the previous 3 months

研究計画

このセクションでは、研究がどのように設計され、研究が何を測定しているかなど、研究計画の詳細を提供します。

研究はどのように設計されていますか?

デザインの詳細

  • 主な目的:処理
  • 割り当て:なし
  • 介入モデル:単一グループの割り当て
  • マスキング:なし(オープンラベル)

武器と介入

参加者グループ / アーム
介入・治療
実験的:AMBLE Robotic Gait Training
Participants with chronic stroke will receive a 30-session gait training program using the AMBLE portable robotic ankle exoskeleton. Training will include treadmill and overground walking with individualized robotic resistance to improve ankle plantarflexion during push-off. Robotic assistance will be adjusted throughout the intervention based on participant performance and tolerance to promote active motor recovery and improve walking function.
The AMBLE is a portable robotic ankle exoskeleton designed to provide individualized assistance and/or resistance during gait training. The device uses adaptive impedance-based control and real-time gait detection to provide dorsiflexion assistance during swing and plantarflexion assistance or resistance during push-off based on participant performance. It is used during treadmill and overground walking to promote recovery of ankle motor control and walking function.

この研究は何を測定していますか?

主要な結果の測定

結果測定
メジャーの説明
時間枠
Peak ankle plantarflexion propulsive torque during walking
時間枠:Baseline (prior to intervention), 5 weeks after intervention initiation (following approximately 15 sessions), and 10 weeks after intervention initiation (following approximately 30 sessions)
Peak ankle plantarflexion propulsive torque will be measured using force plates during overground walking to quantify propulsion generated by the paretic limb during the push-off phase of gait.
Baseline (prior to intervention), 5 weeks after intervention initiation (following approximately 15 sessions), and 10 weeks after intervention initiation (following approximately 30 sessions)

二次結果の測定

結果測定
メジャーの説明
時間枠
Self-selected walking speed
時間枠:Baseline (prior to intervention), 5 weeks after intervention initiation (following approximately 15 training sessions), and 10 weeks after intervention initiation (following approximately 30 training sessions)
Self-selected walking speed will be assessed using the 10-Meter Walk Test and reported in meters per second.
Baseline (prior to intervention), 5 weeks after intervention initiation (following approximately 15 training sessions), and 10 weeks after intervention initiation (following approximately 30 training sessions)
Fast walking speed
時間枠:Baseline (prior to intervention), 5 weeks after intervention initiation (following approximately 15 training sessions), and 10 weeks after intervention initiation (following approximately 30 training sessions)
Maximum comfortable walking speed will be assessed using the 10-Meter Walk Test and reported in meters per second.
Baseline (prior to intervention), 5 weeks after intervention initiation (following approximately 15 training sessions), and 10 weeks after intervention initiation (following approximately 30 training sessions)
Step Length Symmetry Ratio During Overground Walking Measured by Instrumented Walkway
時間枠:Baseline (prior to intervention), 5 weeks after intervention initiation (following approximately 15 training sessions), and 10 weeks after intervention initiation (following approximately 30 training sessions)
Step length symmetry ratio computed as paretic step length divided by non-paretic step length from spatiotemporal data collected during overground walking on a GAITRite instrumented walkway. A ratio of 1.0 indicates perfect symmetry between limbs; values below 1.0 indicate shorter paretic steps and values above 1.0 indicate longer paretic steps. Values are averaged across [N] walkway passes at self-selected walking speed at each assessment timepoint. Unit of Measure: ratio
Baseline (prior to intervention), 5 weeks after intervention initiation (following approximately 15 training sessions), and 10 weeks after intervention initiation (following approximately 30 training sessions)

協力者と研究者

ここでは、この調査に関係する人々や組織を見つけることができます。

捜査官

  • 主任研究者:Kelly Westlake, PhD, PT、University of Maryland, Baltimore

出版物と役立つリンク

研究に関する情報を入力する責任者は、自発的にこれらの出版物を提供します。これらは、研究に関連するあらゆるものに関するものである可能性があります。

研究記録日

これらの日付は、ClinicalTrials.gov への研究記録と要約結果の提出の進捗状況を追跡します。研究記録と報告された結果は、国立医学図書館 (NLM) によって審査され、公開 Web サイトに掲載される前に、特定の品質管理基準を満たしていることが確認されます。

主要日程の研究

研究開始 (実際)

2025年6月16日

一次修了 (推定)

2027年7月1日

研究の完了 (推定)

2027年12月1日

試験登録日

最初に提出

2026年8月17日

QC基準を満たした最初の提出物

2026年8月31日

最初の投稿 (実際)

2026年9月4日

学習記録の更新

投稿された最後の更新 (実際)

2026年9月4日

QC基準を満たした最後の更新が送信されました

2026年8月31日

最終確認日

2026年8月1日

詳しくは

本研究に関する用語

その他の研究ID番号

  • HP-00108406

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個々の参加者データ (IPD) を共有する予定はありますか?

いいえ

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