Overweight and obesity are major public health challenges worldwide, and their prevalence increases with age, partly because of age-related metabolic and hormonal changes. Beyond total fat mass, abdominal and particularly visceral fat accumulation is strongly associated with chronic low-grade inflammation, insulin resistance, hypertension and cardiovascular disease. Men are more likely to display an android fat distribution, while premenopausal women generally show a more protective gynoid distribution. However, declining sex hormone concentrations after menopause promote abdominal and visceral fat accumulation, increasing cardiometabolic risk. Physical activity is a cornerstone of overweight and obesity management. High-intensity interval training (HIIT) is an effective strategy for reducing total, abdominal and visceral fat and may produce greater benefits than moderate-intensity continuous training. Since 2016, our team has conducted several studies and reviews showing that HIIT performed on a cycle ergometer or treadmill, alone or combined with resistance training, reduces total and abdominal fat mass in people with overweight or obesity, regardless of age, sex or hormonal status. HIIT can also be performed under real or simulated hypoxic conditions to enhance cardiovascular, respiratory, circulatory, haematological and skeletal muscle adaptations. The Live Low-Train High model allows participants to live under normoxic conditions while being exposed to hypoxia only during exercise. Hypoxic HIIT has proved feasible and safe in people with metabolic disorders or physical deconditioning, including at simulated altitudes of 4,000-5,000 m. However, only two studies have suggested that hypoxic HIIT may enhance fat mass loss in people with overweight or obesity. Neither specifically assessed abdominal or visceral fat, and neither focused on postmenopausal women. Several mechanisms may contribute to HIIT-induced fat loss, including increased catecholaminergic stimulation and lipid oxidation during recovery, excess post-exercise oxygen consumption and changes in appetite regulation. The gut microbiota may also contribute to the regulation of adipose tissue and cardiometabolic health. Physical activity can increase bacterial diversity and promote beneficial taxa, particularly short-chain fatty acid-producing bacteria. Our previous HIIT studies identified associations between changes in selected bacteria and reductions in total or abdominal fat mass. Hypoxic exposure may also alter gut microbiota composition and abundance, with effects depending on the severity and type of hypoxia. This study will assess the effects of a 3-month cycle-ergometer HIIT programme, performed three times per week under hypoxic versus normoxic conditions, in adults aged 50-75 years with overweight or obesity. The primary objective is to determine whether hypoxic HIIT produces a greater reduction in abdominal and visceral fat mass than the same training performed in normoxia. Secondary outcomes will include total and regional fat and lean mass; fasting glucose, insulin, HbA1c and HOMA-IR; total cholesterol, triglycerides, HDL-C, LDL-C, ApoB, ApoA1 and the ApoB/ApoA1 ratio; high-sensitivity C-reactive protein and fibrinogen; systolic and diastolic blood pressure; blood biophysical properties; and faecal microbiota richness, diversity and taxonomic composition. Lipid oxidation during prolonged moderate-intensity exercise, maximal oxygen uptake and maximal aerobic power will also be assessed before and after the intervention. We hypothesise that hypoxic training will enhance improvements in body composition, metabolic and cardiovascular risk factors, aerobic fitness and lipid oxidation compared with normoxic training. We further hypothesise that hypoxia will modify faecal microbiota composition and that changes in selected bacterial taxa will be associated with changes in body composition and cardiovascular risk markers. The ultimate aim is to improve the management of adults aged 50-75 years with overweight or obesity by developing an effective 3-month HIIT programme performed under controlled hypoxic conditions.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
NONE
Enrollment
32
Participants will complete 36 cycle-ergometer HIIT sessions over 12 weeks (three sessions per week) under normobaric hypoxia (FiO₂: 15%; simulated altitude: 3,000 m). Each session will include a 5-minute warm-up followed by 60 repetitions of 8 seconds of acceleration at approximately 80-85 rpm and 12 seconds of deceleration at approximately 60 rpm. The 8-second efforts will be performed at 75-80% of maximal aerobic power.
Participants will complete 36 cycle-ergometer HIIT sessions over 12 weeks (three sessions per week) under normoxic conditions (FiO₂: 21%). Each session will include a 5-minute warm-up followed by 60 repetitions of 8 seconds of acceleration at approximately 80-85 rpm and 12 seconds of deceleration at approximately 60 rpm. The 8-second efforts will be performed at 75-80% of maximal aerobic power.
CREPS Auvergne Rhône-Alpes / Vichy
Bellerive-sur-Allier, France
RECRUITINGRelative Change in Total Abdominal Fat Mass
Total abdominal fat mass will be measured by dual-energy X-ray absorptiometry (DXA) at baseline and after the 12-week intervention. The relative change will be calculated as: (abdominal fat mass at 12 weeks - abdominal fat mass at baseline) / abdominal fat mass at baseline. More negative values indicate a greater reduction in abdominal fat mass. The change will be compared between the hypoxic and normoxic HIIT groups.
Time frame: Baseline and immediately after the 12-week intervention
Relative Change in Body Mass
Description: Body mass will be measured in kilograms at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between the hypoxic and normoxic HIIT groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Visceral Abdominal Fat Mass
Description: Visceral abdominal fat mass will be measured by DXA at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Total Lean Mass
Description: Total lean mass will be measured in kilograms by DXA at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Waist-to-Hip Ratio
Description: The waist-to-hip ratio will be calculated by dividing waist circumference by hip circumference at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in metabolic Plasma parameters (TG, HBA1C, glucose, insulin, HDL, LDL)
Fasting concentration will be measured at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Whole Blood Viscosity
Whole blood viscosity will be assessed using standardised haemorheological procedures at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Red Blood Cell Deformability
Description: Red blood cell deformability will be assessed using standardised haemorheological procedures at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Red Blood Cell Aggregation
Description: Red blood cell aggregation will be assessed using standardised haemorheological procedures at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Change in the Relative Abundance of Prespecified Gut Bacterial Taxa
Description: The relative abundance of prespecified bacterial taxa will be determined from faecal microbiota samples collected at baseline and after the 12-week intervention. Changes in relative abundance will be compared between the hypoxic and normoxic HIIT groups.
Time frame: Baseline and after 12 weeks of intervention
Change in Faecal Gut Microbiota Alpha Diversity
Description: Alpha-diversity indices reflecting within-sample bacterial richness and diversity will be calculated from faecal microbiota samples collected at baseline and after the 12-week intervention. Changes will be compared between the hypoxic and normoxic HIIT groups.
Time frame: Baseline and after 12 weeks of intervention
Change in Faecal Gut Microbiota Beta Diversity
Description: Beta diversity, reflecting differences in bacterial community composition, will be assessed using faecal samples collected at baseline and after the 12-week intervention. Changes in community composition will be compared between the hypoxic and normoxic HIIT groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Maximal Aerobic Power
Description: Maximal aerobic power, expressed in watts, will be determined during a maximal exercise test at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Lipid Oxidation Rate During Submaximal Exercise
Description: Lipid oxidation rate, expressed in grams per minute, will be calculated by indirect calorimetry during 45 minutes of fasted exercise performed at 50% of V̇O₂max, at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
Relative Change in Carbohydrate Oxidation Rate During Submaximal Exercise
Description: Carbohydrate oxidation rate, expressed in grams per minute, will be calculated by indirect calorimetry during 45 minutes of fasted exercise performed at 50% of V̇O₂max, at baseline and after the 12-week intervention. Relative change will be calculated as: (week 12 value - baseline value) / baseline value and compared between groups.
Time frame: Baseline and after 12 weeks of intervention
This platform is for informational purposes only and does not constitute medical advice. Always consult a qualified healthcare professional.