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Stability of hemoglobin mass over 100 days in active men
Annette Eastwood1, Will G Hopkins, Pitre C Bourdon
1South Australian Sports Inst., PO Box 219, Brooklyn Park, SA 5032, Australia. eastwood.annette@saugov.sa.gov.au
Insights
Measurement error for hemoglobin mass does not increase over extended periods. This finding supports using hemoglobin mass for long-term monitoring of training adaptations or potential erythropoietin misuse.
Area of Science:
- Sports Science
- Physiology
- Biochemistry
Background:
- Previous meta-analysis suggested increased hemoglobin mass variability with longer measurement intervals.
- Understanding hemoglobin mass fluctuations is crucial for monitoring athlete physiology.
Purpose of the Study:
- To investigate if measurement variability of hemoglobin mass increases over extended periods (100+ days).
- To assess the suitability of hemoglobin mass for long-term monitoring.
Main Methods:
- Hemoglobin mass was measured in six active men every 1-6 days for 100-114 days using the carbon monoxide method.
- Measurement error was analyzed by comparing pairwise changes to total error.
- Regression and spectral analysis quantified trends and periodicities; simulated data were used for comparison.
Main Results:
- Individual measurement error varied (1.4-2.7%), but total error did not significantly increase over 100 days for most subjects.
- Five subjects showed minimal difference between pairwise and total error, unlike simulated periodic data.
- One subject exhibited patterns consistent with hemoglobin restoration after blood donation.
Conclusions:
- Measurement error of hemoglobin mass remains stable over 100 days.
- Hemoglobin mass is suitable for long-term monitoring of physiological changes like training effects or doping.
- Individual differences in error and trends must be considered for accurate interpretation.
Abstract:
The purpose of this study was to investigate the suggestion in a recent meta-analysis that variability in hemoglobin mass increases when time between measurements increases from days to months. Hemoglobin mass of six active men was measured with the carbon monoxide method every 1-6 days for 100-114 days (42 +/- 3 measurements, mean +/- SD). Measurement error for each individual's series was estimated from the standard deviation of consecutive pairwise changes and compared with his total error (standard deviation of all values). Linear trends and periodicities in each series were quantified by regression and spectral analysis. Series with known random error and periodicity were also simulated and analyzed. There were clear differences in the pairwise error of measurement between subjects (range 1.4-2.7%). For five men, there was little difference between the total and pairwise errors; their mean ratio (1.06, 90% confidence limits 0.96-1.17) was less than ratios for simulated sinusoidal series with random error of 2%, amplitude of 2%, and periods of 20-100 days (ratios 1.13-1.21). Spectral analysis clearly revealed such periodicities in the simulated series but not in the series of these subjects. The sixth man, who had donated blood 12 days before commencing measurements, showed errors, trend, and periodicity consistent with gradual restoration of hemoglobin mass. Measurement error of hemoglobin mass does not increase over 100 days. Consequently, hemoglobin mass may be suitable for long-term monitoring of small changes that might occur with training or erythropoietin abuse, taking into consideration the small differences between athletes in errors and trends.
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