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Reference Values of Aerobic Fitness in the Contemporary Paediatric Population

Reference Values of Aerobic Fitness in the Contemporary Paediatric Population: VO2max Z-scores

Status
Completed
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT04876209
Acronym
SAIN&NORMES
Enrollment
950
Registered
2021-05-06
Start date
2019-11-01
Completion date
2021-05-01
Last updated
2023-10-27

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

Conditions

Healthy, Obese

Keywords

Cardiopulmonary exercise test, Z score, Pediatric, VO2max, VE/VCO2 slope

Brief summary

In most pediatric medical conditions, tremendous progress in pediatrics has significantly improved the overall prognosis and transferred the mortality from childhood to adulthood. Nevertheless, chronic diseases remain the leading cause of death and physical inactivity appears to be a major aggravating factor. Yet, a good physical activity has a positive impact on quality of life and prevents future health morbidities, such as obesity and cardiovascular disease. Therefore, after focusing on the survival of children with chronic diseases, more attention is being given to health-related quality of life and secondary prevention. In this context, the cardio-pulmonary exercise test (CPET), which is a non-invasive and dynamic examination, has become the gold standard to identify subjects with impaired physical capacity and to identify the causes of their limitations (muscular, cardiac, respiratory, behavioral, etc.). Moreover, CPET is the key examination to enroll patients in personalized physical rehabilitation programs (muscle deconditioning, respiratory limitation, etc.). Despite a growing interest in CPET and individualized rehabilitation programs for chronic diseases, the investigators still face the lack of reference values for pediatric CPET. In current practice, many CPET pediatric laboratories use the reference values of maximum oxygen uptake (VO2max) defined by Cooper et al. in 1984, from a cohort of 109 healthy children. However, their equations are linear and based on weight only. Non linear equations and the use of other anthropometric variables may be relevant in pediatrics. For instance, in the current era, normal CPET pediatric values should consider the prevalence of overweight and obesity in childhood general population (respectively 30% and 10% in Europa and 35% and 25% in North America), as well as in the population of children with chronic disease. In the past decade, our group has developed a research program on physical capacity in children, with a focus on pediatric CPET and physical rehabilitation, from a cohort of nearly 1000 exercise tests in children. The lack of reliable pediatric reference values for VO2max, and all CPET variables as well, has become an important issue. In this study, the investigators aim to define pediatric reference CPET values from a large cohort of 6 to 17 year-old children, using several anthropometric variables to define the most appropriate Z-scores equations (part 1). The investigators will also validate the Z-scores equations using an independent population (part 2).

Detailed description

This cross-sectional study included healthy children from 6 to 17 years old and obese children with no other comorbidities other than those due to metabolic syndrome (hypertension, dyslipidemia, type 2 diabetes sleep apnea, hepatic steatosis). Patients refuse the use of medical data will be excluded. Part 1 - Z-score equations: After description of the study sample, the regression method will be identified (linear, polynomial, logarithmic, spline, etc.). The main anthropometric determinants (age, gender, height, weight, BMI) will be tested, and the mathematical models that best fit to the data will be identified (use of the adjusted coefficient of determination R2). The models will calculate, for each subject, the difference between the value predicted by the model and the value actually observed (residuals of the model). The occurrence of heteroscedasticity (e.g. the circumstance in which the variability of a variable is unequal across the range of values of a second variable that predicts it) will be tested. The Z-scores will be measured by the difference between predicted values and observed values divided by the calculated standard deviation. Part 2- Validation of Z-score equations from an independent population The validity of the Z-score equations will be tested on a cohort of 100 pediatric in 6 to 18 year-old children, from pediatric CPET laboratories that did not participate in the part 1 study. The CPET variables may be retrospectively collected from existing database or prospectively collected, but no CPET should be performed for the only purpose of the research (observational study)

Interventions

None listed

Sponsors

Department of Paediatric Cardiology and Congenital Heart Disease, German Heart Centre Munich, Germany.
CollaboratorUNKNOWN
Department of Cardiology Children's Hospital, Boston, United State.
CollaboratorUNKNOWN
University Hospital, Montpellier
Lead SponsorOTHER

Study design

Observational model
COHORT
Time perspective
RETROSPECTIVE

Eligibility

Sex/Gender
ALL
Age
6 Years to 17 Years
Healthy volunteers
Yes

Inclusion criteria

Part 1 - Z-score equations: Healthy children: Inclusion criteria * Child from 6 to 17 years old having performed a cardio-respiratory exercise test for chest pain, dyspnea on exertion, heart murmur and whose results do not find: * congenital heart disease (normal echocardiography and ECG) * respiratory disease (normal FEV1 and FVC) * Child having performed a maximal cardio-respiratory stress exercise until exhaustion.

Exclusion criteria

* Child taking long-term drug treatment * Child with chronic disease * Parents' refusal to use medical data. Obese children: Inclusion criteria * Child with BMI\>85e percentile * Child from 6 to 17 years old having performed a cardio-respiratory exercise test for checkup and whose results do not find: * congenital heart disease (normal echocardiography and ECG) * Child having performed a maximal cardio-respiratory stress exercise until exhaustion.

Design outcomes

Primary

MeasureTime frameDescription
identify the parameters of an equation for calculating VO2max Z-scoresday 1identify the parameters of an equation for calculating VO2max Z-scores (potentially using age, sex, height, weight or skin surface area)
estimate the parameters of an equation for calculating VO2max Z-scoresday 1estimate the parameters of an equation for calculating VO2max Z-scores (potentially using age, sex, height, weight or skin surface area)

Secondary

MeasureTime frameDescription
estimate the parameters of an equation for calculating ventilatory anaerobic threshold Z-scores1 dayestimate the parameters of an equation for calculating ventilatory anaerobic threshold Z-scores (potentially using age, sex, height, weight or skin surface area)
identify the parameters of an equation for calculating VE/VCO2 slope Z-scores1 dayidentify the parameters of an equation for calculating VE/VCO2 slope Z-scores (potentially using age, sex, height, weight or skin surface area)
estimate the parameters of an equation for calculating VE/VCO2 slope Z-scores1 dayestimate the parameters of an equation for calculating VE/VCO2 slope Z-scores (potentially using age, sex, height, weight or skin surface area)
identify the parameters of an equation for calculating oxygen uptake efficiency slope Z-scores1 dayidentify the parameters of an equation for calculating oxygen uptake efficiency slope Z-scores (potentially using age, sex, height, weight or skin surface area)
estimate the parameters of an equation for calculating oxygen uptake efficiency slope Z-scores1 dayestimate the parameters of an equation for calculating oxygen uptake efficiency slope Z-scores (potentially using age, sex, height, weight or skin surface area)
identify the parameters of an equation for calculating oxygen pulse Z-scores1 dayidentify the parameters of an equation for calculating oxygen pulse Z-scores (potentially using age, sex, height, weight or skin surface area)
estimate the parameters of an equation for calculating oxygen pulse Z-scores1 dayestimate the parameters of an equation for calculating oxygen pulse Z-scores (potentially using age, sex, height, weight or skin surface area)
validity of the VO2max Z-score equationsday 1validity of the VO2max Z-score equations will be tested from cohort from pediatric CPET laboratories that did not participate in the part 1 study. To analyze this, we will compare the difference between the measured VO2max and the VO2max predicted by the Wassermann equation (Wassermann's predicted value - observed value) and the difference between the measured VO2max and the VO2max predicted by our equation (Gavotto's predicted value - observed value)
stimate the parameters of an equation for calculating maximal respiratory frequency Z-scores1 dayestimate the parameters of an equation for calculating maximal respiratory frequency Z-scores (potentially using age, sex, height, weight or skin surface area)
identify the parameters of an equation for calculating maximal maximal tidal volume Z-scores1 dayidentify the parameters of an equation for calculating maximal maximal tidal volume Z-scores (potentially using age, sex, height, weight or skin surface area)
estimate the parameters of an equation for calculating maximal maximal tidal volume Z-scores1 dayestimate the parameters of an equation for calculating maximal maximal tidal volume Z-scores (potentially using age, sex, height, weight or skin surface area)
identify the parameters of an equation for calculating breath reserve Z-scores1 dayidentify the parameters of an equation for calculating breath reserve Z-scores (potentially using age, sex, height, weight or skin surface area)
estimate the parameters of an equation for calculating breath reserve Z-scores1 dayestimate the parameters of an equation for calculating breath reserve Z-scores (potentially using age, sex, height, weight or skin surface area)
estimate the parameters of an equation for calculating maximal pet end tidal CO2 Z-scores1 dayestimate the parameters of an equation for calculating maximal pet end tidal CO2 Z-scores (potentially using age, sex, height, weight or skin surface area)
identify the parameters of an equation for calculating maximal pet end tidal CO2 Z-scores1 dayidentify the parameters of an equation for calculating maximal pet end tidal CO2 Z-scores (potentially using age, sex, height, weight or skin surface area)
identify the parameters of an equation for calculating maximal respiratory frequency Z-scores1 dayidentify the parameters of an equation for calculating maximal respiratory frequency Z-scores (potentially using age, sex, height, weight or skin surface area)
identify the parameters of an equation for calculating ventilatory anaerobic threshold Z-scores1 dayidentify the parameters of an equation for calculating ventilatory anaerobic threshold Z-scores (potentially using age, sex, height, weight or skin surface area)

Countries

France

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 10, 2026