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Aerobic Interval and Moderate Continuous Exercise Training on Ventricular Functions

Aerobic Interval and Moderate Continuous Exercise Training on Ventricular Functions

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT04815460
Enrollment
54
Registered
2021-03-25
Start date
2016-07-01
Completion date
2017-06-30
Last updated
2021-03-25

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Exercise Training, Healthy, High Intensity Interval Training

Keywords

Stress echocardiography, Hypoxia test, Speckle-tracking echocardiography, High Intensity Interval Training

Brief summary

Hypoxic exposure increases right ventricular (RV) afterload by triggering pulmonary hypertension, with consequent effects on the structure and function of the RV. Improved myocardial contractility is a critical circulatory adaptation to exercise training. However, the types of exercise that enhance right cardiac mechanics during hypoxic stress have not yet been identified. This study investigated how high-intensity interval training (HIIT) and moderate-intensity continuous training (MICT) influence right cardiac mechanics during hypoxic exercise (HE).

Detailed description

Hypoxic exposure increases right ventricular (RV) afterload by triggering pulmonary hypertension, with consequent effects on the structure and function of the RV. Improved myocardial contractility is a critical circulatory adaptation to exercise training. However, the types of exercise that enhance right cardiac mechanics during hypoxic stress have not yet been identified. This study investigated how high-intensity interval training (HIIT) and moderate-intensity continuous training (MICT) influence right cardiac mechanics during hypoxic exercise (HE). The young and healthy sedentary males were randomly selected to engage in either HIIT (3-min intervals at 40% and 80% of VO2 oxygen uptake reserve) or MICT (sustained 60% of VO2 oxygen uptake reserve) for 30 min/day and 5 days/week for 6 weeks or were included in a control group (CTL) that did not engage in any exercise. Right cardiac mechanics during semiupright bicycle exercise tests under hypoxic conditions (i.e., 50 watts under 12% FiO2 for 3 min) were measured using two-dimensional speckle-tracking echocardiography. The primary outcome was the change in right cardiac mechanics during semiupright bicycle exercise under hypoxic conditions (i.e., 50 watts under 12% FiO2 for 3 min) as measured by two-dimensional speckle tracking echocardiography.

Interventions

Subjects performed HIIT (3-min intervals at 40% and 80%VO2peak) on a bicycle ergometer for 30 min/day, 5 days/week for 6 weeks.

Subjects performed MICT (sustained 60%VO 2max) on a bicycle ergometer for 30 min/day, 5 days/week for 6 weeks.

Sponsors

National Science and Technology Council, Taiwan
CollaboratorOTHER_GOV
Chang Gung University
CollaboratorOTHER
Chang Gung Memorial Hospital
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
SINGLE (Outcomes Assessor)

Eligibility

Sex/Gender
MALE
Age
20 Years to 30 Years
Healthy volunteers
Yes

Inclusion criteria

* Having a sedentary lifestyle (without regular exercise, exercise frequency ≤ once weekly, duration \< 20 min).

Exclusion criteria

* Exposed to high altitudes (\> 3000 m) for at least 1 year. * Smoker * Taking medications or vitamins * Having any cardiopulmonary/hematological risk.

Design outcomes

Primary

MeasureTime frameDescription
The changes of right cardiac mechanics during hypoxia stress echocardiography: Strain8 weeks1. Hypoxia stress echocardiography was collected under hypoxic conditions (12% FiO2) and used two-dimensional Speckle-tracking echocardiography. 2. The resting images were acquired after the subject was placed in the aforementioned position for 10 min. 3. The exercise images were conducted using semirecumbent cycling with a 50-Watt resistance for 3 min and acquired at the third minute of cycling to ensure that subjects had reached a steady-state HR (i.e., HR changes \<10 bpm within 10 s and \<110-120 bpm). 4. A modified apical four-chamber view was used to assess 2D-STE longitudinal and radial parameters of the RV and RA. 5. The RV strain was calculated using the average peak segmental values displayed by the software using a 6-segment model.
The changes of right cardiac mechanics during hypoxia stress echocardiography: Strain rate8 weeks1. Hypoxia stress echocardiography was collected under hypoxic conditions (12% FiO2) and used two-dimensional Speckle-tracking echocardiography. 2. The resting images were acquired after the subject was placed in the aforementioned position for 10 min. 3. The exercise images were conducted using semirecumbent cycling with a 50-Watt resistance for 3 min and acquired at the third minute of cycling to ensure that subjects had reached a steady-state HR (i.e., HR changes \<10 bpm within 10 s and \<110-120 bpm). 4. A modified apical four-chamber view was used to assess 2D-STE longitudinal and radial parameters of the RV and RA. 5. The RV strain rate was calculated using the average peak segmental values displayed by the software using a 6-segment model.

Secondary

MeasureTime frameDescription
Pulmonary vascular resistance (PVR)8 weeksPulmonary vascular resistance (PVR) was calculated using the formula PVR = (\[tricuspid regurgitation velocity/RVOT VTI\] × 10 + 0.16) 1. Tricuspid regurgitation velocity: Doppler imaging was used to measure peak tricuspid regurgitation velocities in systolic phase. 2. The RV outflow tract (RVOT): obtained from a parasternal short-axis base view modified apical four-chamber view, and the flow immediately proximal to the pulmonary artery valve during systole was detected to calculate both maximal velocity and pulsed-wave blood velocity time integral (VTI)
Cardiopulmonary fitness8 weeksTo assess cardiopulmonary fitness, cardiopulmonary exercise test (CPET) on a cycle ergometer was performed 4 days before and after the intervention. All subjects underwent exercise with a mask to measured oxygen consumption (VO2) breath by breath using a computer-based system (Master Screen CPX, Cardinal-health Germany).
Tricuspid annular plane systolic excursion (TAPSE)8 weeksTricuspid annular plane systolic excursion (TAPSE) measures the longitudinal excursion of the tricuspid annulus in one dimension, which was measured by M-mode.
RV diastolic function8 weeksDoppler imaging was used to measure peak tricuspid annular (E') and flow velocities (E) in early diastole.
The cavity diameters of RV8 weeksRV basal cavity diameter (RVD1), mid-cavity diameter (RVD2), and RV longitudinal diameter (RVD3), at end-diastole and end-systole, were evaluated in the modified apical four-chamber view.

Countries

Taiwan

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026