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Effects Of Low-Load Blood Flow Restriction Training Of The Upper Extremity In Patients With Chronic Obstructive Pulmonary Disease

Без фазы С лечением Chronic Obstructive Pulmonary Disease (COPD) Blood Flow Restriction Training (BFRT)

Ориентир для пациента и семьи

Простыми словами

Автоматическая сводка по структурированным данным реестра. Она помогает сориентироваться, но не заменяет официальный протокол или оценку врача.

Что изучают
В протоколе указаны: Low-Load Blood Flow Restriction Training (LL-BFRT) + Aerobic Exercise, Sham Low-Load Blood Flow Restriction Training (LL-BFRT) + Aerobic Exercise.
Кому может быть актуально
Состояния в реестре: Chronic Obstructive Pulmonary Disease (COPD), Blood Flow Restriction Training (BFRT). Базовые параметры: 40 лет — 80 лет · Все.
Что важно проверить
Возраст, диагноз и пол — только базовые ориентиры. Предыдущее лечение, анализы и другие обязательные условия указаны ниже в критериях участия.
Где проводится
Turkey (Türkiye)
Следующий шаг
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Обзор

Chronic Obstructive Pulmonary Disease (COPD) is characterized by persistent airflow limitation, progressive dyspnea, and peripheral muscle dysfunction, significantly impairing functional capacity and quality of life. Although the combined implementation of aerobic and resistance exercises is recommended in pulmonary rehabilitation programs, early-onset ventilatory limitation in individuals with COPD often hinders tolerance to high exercise intensities. This limitation increases the need for alternative exercise approaches targeting peripheral muscle adaptations. Low-load blood flow restriction training (LL-BFRT), which enables improvements in muscle strength with low mechanical loads, has emerged as a potential option for this patient population. However, evidence regarding the effects of LL-BFRT in individuals with COPD-particularly on upper extremity muscles-remains limited. The aim of this study is to comparatively investigate the effects of LL-BFRT and sham-BFRT, both administered in addition to an aerobic exercise program in individuals diagnosed with stage II and III COPD, on upper extremity muscle strength, upper extremity functional capacity, activities of daily living performance, quality of life, functional exercise capacity, muscle oxygenation, and respiratory parameters. The study is designed as a randomized controlled, single-blind, quasi-experimental interventional trial. The expected outcomes are that LL-BFRT may enhance upper extremity muscle strength and functional capacity, improve activities of daily living and quality of life, and increase exercise tolerance due to its applicability at low mechanical loads. Furthermore, findings related to muscle oxygenation and respiratory parameters are anticipated to provide clinical evidence regarding the physiological effects of LL-BFRT on peripheral muscle adaptations. These results are expected to guide the integration of LL-BFRT as an alternative and safe approach in upper extremity exercise prescription within pulmonary rehabilitation programs, support clinical decision-making processes, and establish a scientific foundation for future research.

Подробное описание

Chronic Obstructive Pulmonary Disease (COPD) is a common, preventable, and treatable disease characterized by persistent respiratory symptoms and irreversible airflow limitation resulting from airway and/or alveolar abnormalities, usually caused by prolonged exposure to noxious particles or gases (1). COPD represents one of the leading causes of mortality among chronic respiratory diseases and is recognized as a major global health problem, affecting approximately 10% of the adult population, with an increasing incidence associated with population aging. According to the 2017 Global Burden of Disease (GBD) Study, the global mortality rate attributable to COPD was 41.9 deaths per 100,000 population, accounting for 5.7% of all-cause mortality. The mortality rate was reported as 46.7 per 100,000 in men and 37.0 per 100,000 in women (2).

The progressive and persistent airflow limitation in COPD, together with reduced parenchymal elasticity, increases ventilatory demand and imposes an excessive load on the respiratory muscles. Hyperinflation further reduces the effective contractile range of these muscles, creating a vicious cycle in which mechanoreceptor stimulation enhances ventilatory drive and exacerbates dyspnea. Increased dyspnea and impaired respiratory muscle function limit the performance of activities of daily living (ADLs), leading to substantial reductions in physical performance (3).

Skeletal muscle dysfunction is a frequent systemic manifestation of COPD. Reductions in peripheral muscle strength involving the upper and lower extremities as well as the trunk significantly limit exercise capacity and functional performance, negatively affecting overall health status. Importantly, impaired muscle strength has been identified as a strong predictor of morbidity, mortality, disability, and exacerbation risk, independent of the degree of airway obstruction (4).

During upper extremity activities, individuals with COPD frequently experience marked dyspnea and dynamic hyperinflation, which significantly restrict functional independence and highlight the clinical importance of upper extremity functional capacity (5). Compared with healthy peers, individuals with COPD demonstrate reduced performance during upper limb activities and report substantial difficulty. This limitation is partly attributable to altered respiratory mechanics, as upper extremity muscles also function as accessory respiratory muscles. Consequently, dyspnea intensifies during upper limb activity, often leading to premature termination of exercise (6).

Given the dyspnea-inducing nature of upper extremity use and its negative impact on activity tolerance, preserving and improving upper extremity function constitutes a critical rehabilitation target in COPD. Indeed, as emphasized in the most recent joint official statement by the American Thoracic Society (ATS) and the European Respiratory Society (ERS), the inclusion of upper extremity exercise training in pulmonary rehabilitation programs is strongly supported for individuals with COPD (7).

Pulmonary rehabilitation programs commonly incorporate aerobic modalities such as arm ergometry, as well as resistance-based approaches using multi-station systems, elastic bands, or free weights to target upper extremity function (8). Although aerobic exercise forms the cornerstone of pulmonary rehabilitation, its effects on muscle strength and mass are considered limited. Therefore, combined aerobic and resistance exercise approaches are recommended to more effectively address peripheral muscle dysfunction (9).

However, whether currently tolerated training intensities-often limited by ventilatory constraints-are sufficient to optimally target peripheral muscle dysfunction remains controversial. Both the ATS and ERS have highlighted the need for innovative rehabilitation strategies capable of targeting peripheral muscle dysfunction at lower mechanical loads (10). Traditional moderate-to-high intensity resistance training may be effective but is often poorly tolerated in individuals with COPD due to dyspnea, early fatigue, and ventilatory limitation, thereby limiting adherence and long-term participation (11).

In this context, low-load blood flow restriction training (LL-BFRT) has emerged as a promising alternative. Despite the use of low mechanical loads, LL-BFRT induces localized ischemia and increased metabolic stress, leading to significant gains in muscle strength and hypertrophy. This method may represent a viable option for individuals with COPD who are unable to tolerate high mechanical loads (12).

Although evidence supporting LL-BFRT primarily derives from studies conducted in healthy individuals and predominantly targeting lower extremity muscles (12-14), data regarding its application to upper extremity muscles in individuals with COPD remain limited. Considering that upper limb activities impose greater ventilatory demand and trigger dyspnea earlier, the potential advantages of LL-BFRT in this region warrant investigation. This research gap underscores the necessity of evaluating the effectiveness of LL-BFRT-based upper extremity resistance training in COPD.

Aim of the Study The aim of this study is to comparatively investigate the effects of LL-BFRT and sham-BFRT, administered in addition to an aerobic exercise program, on upper extremity muscle strength, upper extremity functional capacity, performance of activities of daily living, quality of life, functional exercise capacity, muscle oxygenation, and pulmonary function parameters in individuals diagnosed with stage II and III COPD.

Interventions Participants in both groups will undergo an exercise program twice weekly for 8 weeks.

Both groups will perform upper extremity aerobic exercise using an arm cycle ergometer. Each session will begin with a 5-minute warm-up at 0 Watts, followed by 20 minutes of aerobic exercise at 60-70% of age-predicted maximum heart rate. Initial resistance will be set between 35-50 Watts and maintained within this range according to individual exercise tolerance. Dyspnea will be monitored using the Modified Borg Scale. A 5-minute cool-down at 0 Watts will follow the aerobic phase.

Intervention Group (LL-BFRT) In addition to aerobic exercise, participants in the intervention group will receive LL-BFRT. A pneumatic cuff will be placed proximally on the upper extremity. Occlusion pressure will be set at 30-40% of arterial occlusion pressure (AOP). Resistance will be set at 30% of one-repetition maximum (1RM). Exercises will follow a standardized 4-set protocol (30-15-15-15 repetitions) with 45-second inter-set rest periods, during which cuff pressure will be maintained.

Targeted muscle groups will include the biceps brachii, triceps brachii, and anterior deltoid. After completion of each exercise, cuff pressure will be released for a 5-minute reperfusion period before proceeding to the next exercise. Dyspnea will be closely monitored using the Modified Borg Scale, and exercise will be terminated if dyspnea reaches ≥6, indicating exercise intolerance.

Control Group (Sham-BFRT) Participants in the control group will receive the same aerobic exercise protocol and identical resistance exercise structure. However, cuff pressure during sham-BFRT will be set at a level insufficient to produce therapeutic blood flow restriction.

Assessments Demographic data including age, sex, height, and weight will be recorded. Body mass index (BMI) will be calculated. Smoking history will be documented in pack-years. Disease duration and COPD stage (according to GOLD classification) will be determined from medical records. Oxygen therapy and inhaled treatment use will be recorded. Exacerbation frequency, defined as the number of exacerbations and hospital admissions within the past 12 months, will also be documented.

This study is expected to provide evidence regarding the clinical efficacy and physiological mechanisms of LL-BFRT in improving upper extremity function in individuals with COPD and to inform exercise prescription within pulmonary rehabilitation programs.

Вмешательства

  • Другое Low-Load Blood Flow Restriction Training (LL-BFRT) + Aerobic Exercise
    Participants will undergo an 8-week upper extremity aerobic exercise program combined with low-load blood flow restriction training (LL-BFRT). The aerobic exercise will be performed using an arm cycle ergometer at 60-70% of age-predicted maximum heart rate for 20 minutes, preceded and followed by 5 minutes of unloaded cycling. In addition, LL-BFRT will be applied to the proximal upper extremity with a pneumatic cuff at 30-40% of arterial occlusion pressure. Resistance exercises will be performed
  • Другое Sham Low-Load Blood Flow Restriction Training (LL-BFRT) + Aerobic Exercise
    Participants will undergo the same 8-week upper extremity aerobic exercise program as the intervention group. Aerobic exercise will be performed using an arm cycle ergometer at 60-70% of age-predicted maximum heart rate for 20 minutes, preceded and followed by 5 minutes of unloaded cycling. In addition, sham blood flow restriction training will be applied with a pneumatic cuff placed proximally on the upper extremity. The cuff pressure will be set at a level insufficient to produce therapeutic b

Первичные конечные точки

  • Upper Extremity Functional Capacity [Срок оценки: Pre- and post-intervention (week 8).]
Вторичные конечные точки (6)
  • Pulmonary Function Assessment [Срок оценки: Pre- and post-intervention (week 8).]
  • Muscle Strength Assestment [Срок оценки: Pre-post ıntervention (week 8)]
  • Activity Of Daily Living Assestment [Срок оценки: Pre-post ıntervention (week 8)]
  • Quality Of Life Assestment [Срок оценки: Pre-post ıntervention (week 8)]
  • Functional Capacity [Срок оценки: Pre-post ıntervention (week 8)]
  • Muscle Oxygenation Measurement [Срок оценки: Pre-post ıntervention (week 8)]

Критерии участия

Критерии включения

  • Individuals aged 40-80 years with stage 2 and 3 COPD diagnosed according to GOLD criteria
  • Clinically stable COPD (no exacerbation in the last 6 weeks)
  • Stable medical treatment for at least 4 weeks
  • No orthopedic or neurological problems that would prevent them from performing upper extremity exercises
  • Resting SpO2 ≥ 88%
  • Able to understand and follow verbal instructions in Turkish
  • Individuals with a Montreal Cognitive Assessment Scale (MoCa) score ≥ 24 will be included.

Критерии исключения

  • Uncontrolled hypertension
  • Severe arrhythmia
  • Recent MI
  • Deep vein thrombosis
  • Peripheral vascular disease
  • Presence of infection or open wound
  • Having undergone upper extremity surgery within the last 6 months
  • Cognitive impairment or cooperation problems will be among the exclusion criteria

Критерии приведены из реестра в оригинале (на английском). Окончательную оценку соответствия проводит исследовательский центр.

Здоровые добровольцы: Нет

Дизайн исследования

Распределение
Рандомизированное
Модель
Параллельные группы
Маскирование
Простое слепое
Основная цель
Другое

Центры проведения

Turkey (Türkiye) · 1 центр
  • Malatya Education and Research Hospital — Malatya

Публикации

  • Crum EM, O'Connor WJ, Van Loo L, Valckx M, Stannard SR. Validity and reliability of the Moxy oxygen monitor during incremental cycling exercise. Eur J Sport Sci. 2017 Sep;17(8):1037-1043. doi: 10.1080/17461391.2017.1330899. Epub 2017 May 30. PMID 28557670
  • Huang CT, Ruan SY, Tsai YJ, Chien JY, Yu CJ. Lung fluid content during 6MWT in patients with COPD with and without comorbid heart failure. BMJ Open Respir Res. 2024 Mar 30;11(1):e002000. doi: 10.1136/bmjresp-2023-002000. PMID 38555101
  • Liang WM, Chen JJ, Chang CH, Chen HW, Chen SL, Hang LW, Wang JD. An empirical comparison of the WHOQOL-BREF and the SGRQ among patients with COPD. Qual Life Res. 2008 Jun;17(5):793-800. doi: 10.1007/s11136-008-9326-5. Epub 2008 May 24. PMID 18500580
  • Deshpande C, Alaparthi GK, Krishnan S, Chakravarthy Bairapareddy K, Ramakrishna A, Acharya V. Comparison of Londrina activities of daily living protocol and Glittre ADL test on cardio-pulmonary response in patients with COPD: a cross-sectional study. Multidiscip Respir Med. 2020 Dec 4;15(1):694. doi: 10.4081/mrm.2020.694. eCollection 2020 Jan 28. PMID 33324483
  • Chamorro C, Arancibia M, Trigo B, Arias-Poblete L, Jerez-Mayorga D. Absolute Reliability and Concurrent Validity of Hand-Held Dynamometry in Shoulder Rotator Strength Assessment: Systematic Review and Meta-Analysis. Int J Environ Res Public Health. 2021 Sep 3;18(17):9293. doi: 10.3390/ijerph18179293. PMID 34501883
  • Johanson ME, Lateva ZC, Jaramillo J, Kiratli BJ, McGill KC. Triceps Brachii in Incomplete Tetraplegia: EMG and Dynamometer Evaluation of Residual Motor Resources and Capacity for Strengthening. Top Spinal Cord Inj Rehabil. 2013 Fall;19(4):300-10. doi: 10.1310/sci1904-300. PMID 24244095
  • Yesilyaprak SS, Ozden F. An acute bout of foam rolling of the biceps brachii does not affect upper extremity sensorimotor function: a randomized trial. BMC Musculoskelet Disord. 2025 Nov 13;26(1):1044. doi: 10.1186/s12891-025-09173-y. PMID 41233773
  • Arne M, Lisspers K, Stallberg B, Boman G, Hedenstrom H, Janson C, Emtner M. How often is diagnosis of COPD confirmed with spirometry? Respir Med. 2010 Apr;104(4):550-6. doi: 10.1016/j.rmed.2009.10.023. PMID 19931443

Идентификаторы

NCT: NCT07469111 · 4006

Первоисточники (государственные реестры)

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