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Differences in Ankle Sprain Risk Factors, Anterior Talofibular Ligament, Calcaneofibular Ligament and Lower Leg Muscles' Size Among Athletes With and Without Ankle Sprain Injury History: A Retrospective Study

2026年5月5日 更新者:Nilüfer Kılıç Cerbezer、Yeditepe University

This study aims to comprehensively explore the relationship between changes in muscle architecture and connective tissue structure in athletes with ankle sprains and the intrinsic biomechanical risk factors observed in these individuals. The main goal of the research is to compare the risk factors associated with ankle sprains, characteristics of lower extremity muscle architecture, and structural features of the anterior talofibular ligament (ATFL) between athletes with and without a history of ankle sprains. Additionally, the study seeks to identify intrinsic factors that may lead to lateral ankle sprains and to investigate the link between these factors and structural changes related to chronic ankle instability. Overall, the study aims to contribute scientifically to the early detection of sprain risk in athletes and the development of personalised preventative intervention strategies.

The hypotheses of the study are as follows:

Hypothesis 1: In athletes with a history of ankle sprains, the strength of the muscles surrounding the ankle differs from that of their uninjured ankles and ankles of the athletes without a history of sprains.

Hypothesis 2: Athletes with a history of ankle sprains have a different level of proprioception (position sense) compared to athletes without a history of sprains.

Hypothesis 3: Athletes with a history of ankle sprains have different muscle and ligament sizes compared to their uninjured legs and the legs of athletes without a history of sprains.

Hypothesis 4: Dynamic balance differs between athletes with a history of ankle sprains and those without a history of ankle sprains.

調査の概要

詳細な説明

Ankle instability exhibits a significant propensity to evolve into a chronic condition. Chronic ankle instability (CAI), defined by enduring residual symptoms following a sprain, recurrent sprains, and perceived instability, occurs in approximately 10% to 40% of cases. According to research conducted by Van Rijn and colleagues, between 5% and 33% of patients continued to experience pain one year subsequent to an ankle sprain, and one-third of the participants reported at least one re-sprain three years thereafter (4, 6).

Research indicates that a minimum of 73% of individuals who have sustained an ankle sprain exhibit persistent symptoms, including pain, a sensation of instability, proprioceptive disturbances, and impairments in neuromuscular control (7, 8). This condition presents a significant risk of both re-injury and the development of CAI. A history of multiple sprains and recurrent feelings of instability are identified as CAI, and the ongoing nature of this condition increases joint damage and the likelihood of osteoarthritis (9). The treatment and prevention of these injuries are costly and hinder athletes' return to training and competition (10).

Numerous intrinsic risk factors have been identified in the literature concerning the incidence and recurrence of lateral ankle sprains. These risk factors include a previous sprain history, gender, height, body weight, anatomical foot posture, alignment abnormalities (e.g., pes cavus, genu varum), joint laxity, joint range of motion, muscle strength, proprioception, reaction time, and postural control (11). Current studies show that, although there are differences in performance levels between genders, there is no significant difference in exposure to injury risk (12, 13). Conversely, it is stated that a direct relationship exists between height, body weight, ankle laxity, muscle strength, and postural control and lateral sprains (7). When assessed in terms of muscle strength, weakness in the ankle and hip muscles is an important risk factor for the development of LAS. Research shows that athletes with more than 15% strength asymmetry, especially during the pre-season, face a higher risk of sprain compared to those without such asymmetry. Postural balance disorders are also regarded as a significant intrinsic risk factor in the development of LAS. In conclusion, ankle sprains are common injuries among athletes and can lead to significant functional impairments. Identifying intrinsic risk factors for these injuries and implementing targeted preventive strategies through individual assessments are essential for both injury prevention and reducing the development of OAS. A review of current literature shows that there are limited studies that thoroughly examine changes in the architecture and functional performance of the muscles around the ankle in athletes who have experienced recurrent ankle sprains. This study aims to comprehensively explore the relationship between changes in muscle architecture and connective tissue structure in athletes with ankle sprains and the intrinsic biomechanical risk factors observed in these individuals.

研究の種類

観察的

入学 (実際)

60

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

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

健康ボランティアの受け入れ

はい

サンプリング方法

非確率サンプル

調査対象母集団

This study is a retrospective, cross-sectional investigation conducted to evaluate the relationship between intrinsic risk factors, including muscle and ligament sizes, dynamic balance, postural stability, proprioception and ankle instability in athletes diagnosed with chronic ankle instability (CAI). Participants will be equally recruited into the group with athletes who have a lateral ankle sprain history (LAS Group) and the Control group, with consideration for gender stratification (groups will have the same number of males and females).

説明

Inclusion Criteria:

  1. At least 5 years of active participation in any sport.
  2. Age between 18 and 35.
  3. A history of at least two clinically diagnosed LAS episodes with inflammatory symptoms like pain and swelling.
  4. The last sprain occurred at least 3 months before the study start, and the participant has fully returned to their sport.
  5. No previous surgeries affecting

Exclusion Criteria:

  1. Any history of ankle fracture.
  2. Surgery or systemic disease impacting sensorimotor function in the lower limb.
  3. Neurological disorders.
  4. Recent (within a month) acute injury to the lower extremity.
  5. Visual or vestibular issues that impair balance or coordination.

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

コホートと介入

グループ/コホート
Control group
The control group will include athletes who have no history of ankle injuries.
Ankle Instability Group
The group will consist of athletes diagnosed with chronic ankle instability (CAI).

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
動的バランス評価
時間枠:15分
STARバランステストの短く実用的なバリエーションであるYバランステストは、動的安定性を評価するために使用されます。 アスリートは、Pliskyらによって定義されたテスト手順に従ってYバランステストを実行します。 長さ125 cmの3つの白いバンドが地面に貼り付けられてY形状を形成し、90°で2つの大きな角度が135°で2つの大きな角度があり、センチメートルスケールのマーキングが手で帯域に追加されます。両方とも正中線と整列した矢状面。 参加者は、体に隣接する腸骨の紋章のレベルで手を立て、地面で測定するために足を測定するように求められます。
15分
姿勢の安定性評価
時間枠:20分
アスリートの姿勢の安定性と圧力センター(COP)評価は、Prokin Force Platform(Prokin PK 252)を使用して実行されます。 Prokin PK 252は、静的および動的バランスの評価とトレーニングに使用される固有受容システムです。 この研究では、「静的および動的安定性評価プログラム」を使用して、身体に配置された安定測定プラットフォームとセンサーを介して参加者の静的状態姿勢に関する詳細かつ正確なデータを提供します[47]。 テスト中、参加者の立ち位置は足の肩幅が離れて決定され、足の位置はプラットフォームのxおよびy軸の線を参照として使用して、元のポイントから等しい距離で整列します。 このテストは、2つのサブテストで実施されます。目を開けて目を閉じています。
20分
Muscle and Ligament Size Assessment
時間枠:1 hour
Muscle and ATFL thickness will be measured using an HS60 ultrasound system (Samsung Medicine, Gangwon-do, Korea) with a 5-13 MHz linear probe. Muscle cross-sectional area (MCA) of the ankle muscles will be assessed under two conditions: resting and maximal voluntary contraction (MVC), using B-mode ultrasound. All measurements will be taken by a physical therapist experienced in musculoskeletal ultrasound. Participants will lie on a medical bed with legs fully extended, the ankle in a neutral position, and muscles relaxed during imaging.
1 hour
Proprioception Assessment
時間枠:15 minute
An ankle joint position sense test will be administered to assess deficiencies in ankle proprioception. An electronic goniometer will be used to assess ankle joint position sense. The reliability of this test among recreational athletes with ankle instability has been reported as ICC = 0.94-0.98 [45]. Athletes will be seated with their knees flexed at 90°, and their eyes will be closed to eliminate visual cues. The ankle subtalar joint (STJN) will be held in a neutral position, and the goniometer will be set to zero. The ankle will be passively moved through 10° dorsiflexion, 10° eversion, 15° plantar flexion, or 15° inversion, and then returned to the neutral position [46]. Participants will then be asked to actively perform these movements as closely as possible to the previous movements. Three repeated measurements will be taken for each test angle, and deviations from the target angle will be recorded.
15 minute
Muscle Strength Assessment
時間枠:15 minute
Isometric muscle strength measurements of the tibialis anterior, peroneus longus and brevis, gastrocnemius, and gluteus medius muscle groups will be performed using a MicroFET digital handheld dynamometer. Measurements will be conducted with participants positioned supine, side-lying, and prone on an examination table [34]. For each muscle group, participants will be asked to perform three maximal voluntary contractions lasting 5 seconds each, with a 1-minute rest between contractions. All measurements will be conducted by the same examiner, and all three recorded values will be used for data analysis.
15 minute

二次結果の測定

結果測定
メジャーの説明
時間枠
足と足首の能力測定(FAAM)
時間枠:15分
アスリートの物理機能は、トルコ版の足と足首の能力測定(FAAM)を使用して評価されます。 FAAMは、足と足首に関連する筋骨格の問題を抱える個人の物理的機能を評価するために開発された自己報告測定ツールです。 FAAMは、日常生活(ADL)サブスケールの21項目のアクティビティと8項目のスポーツサブスケールを含む、合計29のアイテムで構成されています。 スポーツサブスケールは、スポーツ関連の活動を実行する能力を評価するためのスポーツ固有のサブクラスを提供します。 各質問は、0(実行できない)から4(困難なく実行できる)の範囲の5ポイントのリッカートスケールを使用して採点されます。 ADLサブスケールの最大スコアは84、スポーツサブスケールの最大スコアは32です。 合計スコアは、0%から100%の範囲のスコアの割合として計算され、より高いスコアは関数のレベルが高いことを示しています[48]。
15分
Cumberland Ankle Instability Tool (CAIT)
時間枠:10 minute
Cumberland Ankle Instability Tool Developed in 2006, the Cumberland Ankle Instability Tool 17 (CAIT) was the first to provide a numerical value measuring the level of ankle instability based on individuals' perceptions [41]. The CAIT scale, designed to assess functional ankle instability levels, consists of 9 questions; the maximum total score is 30 and the minimum is 0. A lower total score indicates more severe functional ankle instability. Test-retest reliability was found to be excellent at 0.96. The CAIT is the first tool to validly and reliably assess functional ankle instability. In the study, the cutoff score was set at 27.5, with a sensitivity of 82.9% and a specificity of 74.7%. Finally, the CAIT score has the potential to predict the risk of re-sprain in individuals with functional ankle instability. Individuals with a sprained ankle and a low CAIT score have a higher likelihood of re-sprain, while those with a high CAIT score have a lower likelihood of re-sprain [42].
10 minute

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スポンサー

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5月15日

一次修了 (実際)

2025年5月15日

研究の完了 (実際)

2025年5月15日

試験登録日

最初に提出

2026年5月5日

QC基準を満たした最初の提出物

2026年5月5日

最初の投稿 (実際)

2026年5月12日

学習記録の更新

投稿された最後の更新 (実際)

2026年5月12日

QC基準を満たした最後の更新が送信されました

2026年5月5日

最終確認日

2026年5月1日

詳しくは

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医薬品およびデバイス情報、研究文書

米国FDA規制医薬品の研究

いいえ

米国FDA規制機器製品の研究

いいえ

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