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Completed

NCT Number: NCT07273500

Precision Exercise in Obese Children With Bronchial Asthma

This investigation recruited 72 pediatric patients with a confirmed bronchial asthma diagnosis. Participants were randomized into three cohorts: a control group undertaking under 75 minutes of weekly aerobic activity, a low-dose group completing 150 minutes/week, and a high-dose group performing 300 minutes/week. Exercise intensity was maintained between 50-70% of the age- adjusted maximum heart rate across 3-4 supervised sessions per week for a 12-week intervention period.

Pre- and post-intervention analyses included measurements of adipose-tissue- derived adipokines, circulating inflammatory markers, body composition, and pulmonary function parameters.

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Key information

Age range

8 year–18 year

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

Ragab K. Elnaggar

Al Kharj, Riyadh Region, Saudi Arabia

About this study

Study Population and Recruitment

A total of 72 pediatric patients with bronchial asthma were enrolled from the Pulmonary Medicine/Critical Care and Allergy-Immunology departments of King Khalid Hospital and two additional tertiary care centers in Riyadh, Saudi Arabia. Eligible participants were children aged 8 to 18 years with a diagnosis of moderate, clinically stable BA and a body mass index ranging from 30.0 to 35.0 kg/m². Further inclusion criteria stipulated the absence of lower limb or spinal deformities, stable medication regimens for the preceding three months, and no participation in structured physical activity for at least six months prior to the study. Exclusion criteria encompassed acute exacerbation of asthma symptoms, the presence of other chronic pulmonary diseases, and any pre- existing cardiovascular or musculoskeletal disorder that could impede exercise training.

Outcome Measures

Adiposity and Inflammatory Biomarkers: Serum concentrations of key adipokines-specifically total adiponectin, high-molecular-weight adiponectin, leptin, and resistin-were analyzed. Concurrently, systemic inflammatory mediators, including interleukin-6 and high-sensitivity C-reactive protein, were quantified using commercially available enzyme-linked immunosorbent assay kits.

Body Composition Analysis: A multi-frequency bioelectrical impedance analysis (BIA) device was employed to determine body composition indices. The parameters assessed included body fat percentage, fat mass, fat-free mass, total body water, and basal metabolic rate.

Pulmonary Function Testing: Spirometric evaluations were conducted with a calibrated spirometer to measure forced expiratory volume in one second (FEV1) and forced vital capacity (FVC). The FEV1/FVC ratio was subsequently calculated from these values.

Intervention Protocol

All participants underwent a standardized respiratory re-training program for 12 consecutive weeks. This intervention was administered in 30-minute sessions, three times per week, and comprised diaphragmatic breathing, breath-holding and control exercises, pursed-lip breathing, inspiratory muscle strengthening, postural correction, and relaxation techniques.

Participants were then allocated into three distinct groups, each receiving an additional, varying dose of aerobic training superimposed on the core respiratory program:

Control Group: This group performed supplemental aerobic exercise at a moderate intensity (50-70% of age-predicted maximum heart rate) for a consistent total of less than 75 minutes per week, spread across three sessions.

Low-Dose Group: This cohort engaged in aerobic training at the same moderate intensity, with a target cumulative duration of 150 minutes per week. The duration was progressively increased from a baseline of 90 minutes in the first week by 30 minutes each subsequent week, stabilizing at the target dose by the third week.

High-Dose Group: This group followed the same moderate-intensity aerobic protocol but with a target weekly volume of 300 minutes. A similar progressive ramp-up was implemented, starting at 90 minutes weekly and increasing by 30 minutes per week until the target was achieved in the eighth week, after which it was maintained.

Who can participate

Healthy volunteers accepted: No

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Age of 8-18 years
  • Body mass index ranging from 30 to 35 kg/m2
  • Verified asthma diagnosis per the Global Initiative for Asthma (GINA) criteria
  • Moderate Onset
  • Clinically Stable
  • Maintained medication dosages in the past three months
  • Free of lower limb or spinal deformities
  • Not engaging in regular exercise regimens in the past six months.

Exclusion criteria

  • Exacerbated asthma symptoms
  • Chronic lung comorbidities
  • Cardiovascular or musculoskeletal conditions expected to hinder the training.

Treatment and study plan

Respiratory Re-training

Other

The standardized respiratory re-training protocol was administered in 30-minute sessions, three times per week, over a consecutive 12-week period. The regimen incorporated diaphragmatic breathing, breath-holding and control techniques, pursed-lip breathing, respiratory muscle strengthening, postural correction, and relaxation exercises.

Low-dose Aerobic Training

Other

A moderate-intensity aerobic regimen (50-70% of maximum heart rate) maintained at a consistent total weekly volume of 150 minutes.

High-dose Aerobic Training

Other

A moderate-intensity aerobic regimen (50-70% of maximum heart rate) maintained at a consistent total weekly volume of 300 minutes.

Primary outcomes

  1. Leptin

    Time frame: 2 months

    Serum leptin concentration was evaluated as a primary adipokine. It was assayed using a commercially available enzyme-linked immunosorbent assay kit, with pre- and post-training results expressed in nanograms per milliliter (ng/mL).

  2. Total Adiponectin

    Time frame: 2 months

    Serum total adiponectin concentration was quantified as a key adiposity biomarker, pre- and post-training. It was measured using a commercially available enzyme-linked immunosorbent assay kit, with results reported in micrograms per milliliter (µg/mL)

  3. High-molecular-weight Adiponectin

    Time frame: 2 months

    The serum concentration of the high-molecular-weight isoform of adiponectin was analyzed pre- and post-training. It was quantified using a commercial enzyme-linked immunosorbent assay, with levels reported in micrograms per milliliter (µg/mL).

  4. Resistin

    Time frame: 2 months

    Serum resistin concentration was assessed as an adipokine of interest. Levels were determined from pre- and post-training blood samples using a commercial enzyme-linked immunosorbent assay kit, with concentrations reported in nanograms per milliliter (ng/mL).

  5. Interleukin-6

    Time frame: 2 months

    Systemic concentration of the inflammatory cytokine interleukin 6 was evaluated. Pre- and post-training levels were quantified using a commercially available enzyme-linked immunosorbent assay kit, with results reported in picograms per milliliter (pg/mL).

  6. High-sensitivity C-reactive protein

    Time frame: 2 months

    Systemic concentration of high-sensitivity C-reactive protein was assessed as a marker of low-grade inflammation. Pre- and post-training levels were quantified using a commercially available enzyme-linked immunosorbent assay kit, with results reported in milligrams per liter (mg/L).

  7. Body fat percentage

    Time frame: 2 months

    Body fat percentage was evaluated as a key body composition metric. Pre- and post-training measurements were conducted using a bioelectrical impedance analysis device, with results expressed as a percentage (%).

  8. Fat Mass

    Time frame: 2 months

    Total body fat mass was assessed as a component of body composition. It was measured pre- and post-intervention using a bioelectrical impedance analysis device, with values reported in kilograms (kg).

  9. Fat-free mass

    Time frame: 2 months

    Fat-free mass was evaluated as an indicator of lean body tissue. Pre- and post-training measurements were obtained using a bioelectrical impedance analysis device, with results recorded in kilograms (kg).

  10. Total body water

    Time frame: 2 months

    Total body water was quantified as a fundamental body composition parameter. Pre- and post-training measurements were conducted using a bioelectrical impedance analysis device, with results expressed in liters (L).

  11. Basal Metabolic Rate

    Time frame: 2 months

    Basal metabolic rate was estimated as a measure of resting energy expenditure. Pre- and post-training assessments were conducted using a bioelectrical impedance analysis device, with results reported in kilocalories per day (kcal/day).

  12. Forced Expiratory Volume in One Second

    Time frame: 2 months

    Forced expiratory volume in one second (FEV#) was assessed as a primary spirometric parameter of airway function. Pre- and post-training measurements were obtained using a calibrated spirometer, with results expressed as a percentage of the predicted value (% pred) based on established reference standards.

  13. Forced Vital Capacity

    Time frame: 2 months

    Forced vital capacity (FVC) was evaluated as a key measure of lung volume. Pre- and post-training assessments were performed using a calibrated spirometer, with results expressed as a percentage of the predicted value (% pred).

  14. Forced Expiratory Volume in One Second (FEV1) / Forced Vital Capacity (FVC) Ratio

    Time frame: 2 months

    The ratio of forced expiratory volume in one second to forced vital capacity (FEV1/FVC) was calculated as an indicator of airflow limitation. This derived value was determined from pre- and post-training spirometric maneuvers and is expressed as a ratio (decimal value).

Sponsors and collaborators

Lead sponsor

Cairo University

Other

Collaborators

  • Prince Sattam Bin Abdulaziz University

Registry information

Official study title

Precision Exercise Prescription for Obese Children With Bronchial Asthma: a Dose-dependent Study on Adiposity Biomarkers, Body Composition, and Respiratory Efficiency

Important dates

Study start
2023
Primary completion
2024
Study completion
2025
First posted
Dec 9, 2025
Registry last updated
Dec 24, 2025

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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