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.

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