Childhood obesity is associated with reduced cardiorespiratory fitness, impaired exercise tolerance, and altered respiratory mechanics. This randomized controlled trial investigated whether combining inspiratory muscle training with functional high-intensity interval training improves diaphragm morphology, respiratory muscle strength, pulmonary function, aerobic fitness, and functional exercise capacity in boys with obesity. Fifty boys aged 10-12 years were randomly assigned to six weeks of combined inspiratory muscle training and functional high-intensity interval training or usual activity.
This prospective, two-arm, randomized controlled trial investigated the effects of a six-week combined inspiratory muscle training and functional high-intensity interval training program in boys aged 10-12 years with obesity. Fifty participants were randomly allocated in a 1:1 ratio to either a combined training group or a usual-activity control group. The intervention consisted of progressive inspiratory muscle training performed five days per week and functional high-intensity interval training performed three non-consecutive days per week for six weeks. Inspiratory muscle training was performed using a threshold pressure-loading device. Training commenced at 30% of maximal inspiratory pressure and increased by 5% each week, reaching 55% of maximal inspiratory pressure in week 6. Each session consisted of two sets of 30 inspiratory efforts. Functional high-intensity interval training was performed three times per week. Each approximately 35-40-minute session consisted of a standardized warm-up, a functional high-intensity interval circuit, and a cool-down. The circuit included wall sit, incline push-up, seated knee-to-chest exercise, shadow boxing, Superman exercise, and low-step-up exercise. Training intensity was progressively increased by manipulating work-to-rest ratios and circuit volume. The control group continued habitual daily activities without participating in structured exercise or respiratory muscle training during the six-week study period. Primary outcomes were diaphragm thickening fraction, inspiratory diaphragm thickness, and expiratory diaphragm thickness. Secondary outcomes included maximal inspiratory pressure, maximal expiratory pressure, forced vital capacity, forced expiratory volume in one second, FEV₁/FVC ratio, six-minute walk distance, estimated VO₂max, body composition, and perceived exertion. Assessments were performed at baseline and after the six-week intervention under standardized laboratory conditions between 15:00 and 17:00. Diaphragm ultrasonography was performed by a radiologist blinded to group allocation
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
SUPPORTIVE_CARE
Masking
SINGLE
Enrollment
50
Inspiratory muscle training was performed using a threshold pressure-loading device (POWERbreathe). Participants trained once daily, five days per week, for six consecutive weeks. Each session consisted of two sets of 30 inspiratory efforts. Training began at 30% of maximal inspiratory pressure in week 1, with the training load progressively increased by 5% each week to reach 55% of maximal inspiratory pressure in week 6. Training pressure was reassessed weekly, and all sessions were supervised by a certified exercise specialist.
Functional high-intensity interval training was performed three times per week on non-consecutive days for six weeks. Each session lasted approximately 35-40 minutes and consisted of an approximately 8-minute warm-up, a functional high-intensity interval circuit, and an approximately 5-minute cool-down. The circuit included wall sit, incline push-up, seated knee-to-chest exercise, shadow boxing, Superman exercise, and low-step-up exercise. Training intensity was progressively increased by manipulating work-to-rest ratios and the number of circuit cycles. Perceived exertion was monitored using the Borg CR-10 scale.
Gumushane Üniversity
Trabzon, Gümüşhane Province, Turkey (Türkiye)
Inspiratory Diaphragm Thickness
Inspiratory diaphragm thickness (DTins) was measured by ultrasound at the end of maximal inspiration at the zone of apposition of the right hemidiaphragm. Three measurements were obtained and averaged. The measurement represents an ultrasound-derived index of diaphragm morphology.
Time frame: 6 weeks
Diaphragm Thickening Fraction
Diaphragm thickening fraction (DTf) was assessed using diaphragm ultrasonography and calculated as \[(end-inspiratory diaphragm thickness - end-expiratory diaphragm thickness) / end-expiratory diaphragm thickness\] × 100. Measurements were obtained from the right hemidiaphragm at the zone of apposition. Three measurements were obtained in each respiratory phase and averaged for analysis.
Time frame: 6 weeks
Expiratory Diaphragm Thickness
Expiratory diaphragm thickness (DTexp) was measured by ultrasound at the end of maximal expiration at the zone of apposition of the right hemidiaphragm. Three measurements were obtained and averaged. The measurement represents an ultrasound-derived index of diaphragm morphology.
Time frame: 6 week
Maximal Inspiratory Pressure
Maximal inspiratory pressure (MIP) was measured using a handheld mouth pressure meter according to ATS/ERS recommendations. Measurements were performed from residual volume, and the best reproducible values were recorded in cmH₂O.
Time frame: 6 week
Maximal Expiratory Pressure
Maximal expiratory pressure (MEP) was measured using a handheld mouth pressure meter according to ATS/ERS recommendations. Measurements were performed from total lung capacity, and the best reproducible values were recorded in cmH₂O.
Time frame: 6 week
Forced Vital Capacity
Forced vital capacity (FVC) was measured using spirometry according to ATS/ERS recommendations.
Time frame: 6 week
Forced Expiratory Volume in One Second
Forced expiratory volume in one second (FEV₁) was measured using spirometry according to ATS/ERS recommendations.
Time frame: 6 week
FEV₁/FVC Ratio
The FEV₁/FVC ratio was calculated from spirometric measurements obtained according to ATS/ERS recommendations.
Time frame: 6 week
Six-Minute Walk Distance
Functional exercise capacity was assessed using the Six-Minute Walk Test. Participants walked for six minutes along a pre-measured, flat, straight corridor at a self-selected comfortable pace. The total distance covered in meters was recorded.
Time frame: 6 week
Estimated VO2max
Estimated maximal oxygen uptake (VO₂max) was calculated from six-minute walk distance and body mass index using the validated prediction equation developed for children and adolescents with obesity: VO₂max = 26.9 + (0.014 × 6MWD \[m\]) - (0.38 × BMI \[kg/m²\]). VO₂max values were estimated and were not directly measured by cardiopulmonary exercise testing.
Time frame: 6 week
Body Mass Index
Body composition was assessed using a multi-frequency bioelectrical impedance analyzer. Body mass index (BMI) and BMI z-score were assessed according to standardized procedures.
Time frame: 6 week
Rating of Perceived Exertion
Perceived exercise intensity was assessed using the Borg Category Ratio-10 Rating of Perceived Exertion scale. Participants were familiarized with the scale before the intervention, and RPE was recorded immediately after each functional HIIT session throughout the six-week intervention period.
Time frame: 6 week
Height
Body composition was assessed using a multi-frequency bioelectrical impedance analyzer. Height was assessed according to standardized procedures.
Time frame: 6 Week
Weight
Body composition was assessed using a multi-frequency bioelectrical impedance analyzer. Weight was assessed according to standardized procedures.
Time frame: 6 Week
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