| Literature DB >> 24282204 |
Christopher J Gore1, Ken Sharpe, Laura A Garvican-Lewis, Philo U Saunders, Clare E Humberstone, Eileen Y Robertson, Nadine B Wachsmuth, Sally A Clark, Blake D McLean, Birgit Friedmann-Bette, Mitsuo Neya, Torben Pottgiesser, Yorck O Schumacher, Walter F Schmidt.
Abstract
OBJECTIVE: To characterise the time course of changes in haemoglobin mass (Hbmass) in response to altitude exposure.Entities:
Keywords: Altitude; Statistical review
Mesh:
Substances:
Year: 2013 PMID: 24282204 PMCID: PMC3903147 DOI: 10.1136/bjsports-2013-092840
Source DB: PubMed Journal: Br J Sports Med ISSN: 0306-3674 Impact factor: 13.800
Data sources
| Reference | Altitude mode | Altitude (m) | Duration (h) | Sport | Calibre of athletes | N at altitude | N in control | Number of measures per participant |
|---|---|---|---|---|---|---|---|---|
| Clark | LHTL | 3000 | 294 | Cycling | International | 12 m | – | 7 |
| Frese and Friedmann-Bette | Classic | 1300–1650 | 480–528 | Running | Junior | 7 f, 4 m | 2 f, 6 m | 2–6 |
| Garvican | LHTL | 3000 | 416 | Cycling | International | 12 f | – | 8–12 |
| Garvican | Classic | 2760 | 456 | Cycling | International | 8 m | 7 m | 5–9 |
| Garvican-Lewis | LHTL | 3000 | 154–266 | Water polo | International | 9 f | – | 4 |
| Gough | Classic LHTL | 2100–2320 | 204–504 | Swimming | International | 3 f, 14 m | – | 2–4 |
| Humberstone | LHTL | 3000 | 238 | Triathlon | International | 2 f, 5 m | 6 f, 11 m | 4 |
| McLean | Classic | 2130 | 456 | Football | National | 21 m | 9 m | 3–9 |
| Classic | 2100 | 432 | Football | National | 23 m | – | 4–6 | |
| Neya | Classic | 1300 | 504 | Running | Collegiate | 7 m | – | 3 |
| Pottgiesser | Classic | 1816 | 504 | Cycling | International | 7 m | – | 3 |
| Robertson | LHTL | 3000 | 294 | Running | National | 4 f, 6 m | 3 f, 5 m | 6–12 |
| Robertson | LHTL | 3000 | 294 | Running | National | 2 f, 6 m | 2 f, 7m | 6 |
| Saunders | LHTL | 3000 | 294 | Race walking | International | 3 f, 3 m | 6 f, 5 m | 7 |
| Wachsmuth | Classic | 2320 | 672 | Swimming | International | 6 f, 13 m | – | 2–5 |
| Wachsmuth | Classic | 3600 | 288 | Football | Junior | 17 m | 16 m | 3–5 |
| Wachsmuth | Classic | 2300 | 504 | Swimming | National | 3 f, 6 m | 3 f, 4 m | 3–7 |
| Total | 73 f, 175 m | 28 f, 75 m |
f, females; LHTL, live high train low; m, males.
Figure 1Estimates of the change in haemoglobin mass (Hbmass) during live high train low (LHTL, n=24) and classic (n=16) altitude exposure. Fitted lines are for the linear and quadratic models. Dashed lines are the upper and lower 95% confidence limits of the quadratic model. The relative weightings of estimates are indicated by symbol size and border thickness—the largest symbols are for the highest weighted estimates, the estimates with the smallest SEs. †The study at 1360 m,13 and has been omitted from the reported analyses.
Parameter estimates for changes in ln(Hbmass) from baseline (prealtitude) values during altitude exposure, derived via linear mixed modelling, and their interpretation in terms of percentage changes (increases) in Hbmass
| Model/parameter | Change in ln(Hbmass) from prevalues | Percentage of increase in Hbmass | ||||
|---|---|---|---|---|---|---|
| Estimate | 95% CI | p Value | Time at altitude (h) | Estimate | 95% CI | |
| Linear* | ||||||
| slope | 1.07×10−4 | (0.94×10−4 to 1.20×10−4) | <0.001 | 100 | 1.08 | (0.94 to 1.21) |
| Quadratic* | ||||||
| Linear | 1.39×10−4 | (1.10×10−4 to 1.69×10−4) | <0.001 | 100 | 1.33 | (1.10 to 1.56) |
| Quadratic | −7.59×10−8 | (−13.95×10−8 to −1.23×10−8) | 0.021 | 200 | 2.52 | (2.14 to 2.89) |
| 300 | 3.56 | (3.13 to 4.00) | ||||
| Time as a factor (h) | ||||||
| 18–24 | 0.22×10−4 | (−0.80×10−4 to 1.23×10−4) | 0.664 | 18–24 | 0.22 | (−0.80 to 1.24) |
| 96–112 | 1.29×10−4 | (0.66×10−4 to 1.93×10−4) | <0.001 | 96–112 | 1.30 | (0.66 to 1.95) |
| 144–224 | 2.41×10−4 | (1.82×10−4 to 3.01×10−4) | <0.001 | 144–224 | 2.44 | (1.84 to 3.06) |
| 266–294 | 3.25×10−4 | (2.50×10−4 to 4.00×10−4) | <0.001 | 266–294 | 3.30 | (2.53 to 4.08) |
| 312–364 | 3.89×10−4 | (3.09×10−4 to 4.70×10−4) | <0.001 | 312–364 | 3.97 | (3.14 to 4.81) |
| 408–456 | 4.00×10−4 | (2.91×10−4 to 5.09×10−4) | <0.001 | 408–456 | 4.08 | (2.95 to 5.22) |
| 504–672 | 6.28×10−4 | (4.96×10−4 to 7.59×10−4) | <0.001 | 504–672 | 6.48 | (5.09 to 7.89) |
*For the linear and quadratic models, the time at altitude is measured in hours so that, for example, the linear model implies an increase in ln(Hbmass) of 0.0107/100 h, which translates to an increase of 1.08% in Hbmass.
p Values refer to testing whether the associated parameter is equal to zero.
Hbmass, haemoglobin mass; ln(Hbmass); natural log of Hbmass.
Figure 2Estimates of the change in haemoglobin mass (Hbmass) after live high train low (LHTL, n=15) and classic (n=21) altitude exposure. The relative weightings of estimates are indicated by symbol size and border thickness—the largest symbols are for the highest weighted studies which have the smallest SEs. †Outliers, the estimate at day 4 from Frese and Friedmann-Bette,28 and the estimate at day 7 from Neya et al.24 ‡The other three estimates from Frese and Friedmann-Bette28 (classic altitude and filled triangles) omitted from the reported analysis. Dotted (≤20 days) and dashed (>20 days) lines are the modelled estimates indicated in table 3.
Estimates of changes in Hbmass from baseline (prealtitude) to postaltitude values derived via linear mixed modelling
| Condition | Percentage of increase in Hbmass | ||
|---|---|---|---|
| Estimate | 95% CI | p Value | |
| ≤20 days (after LHTL or classic) | 3.41 | (2.89 to 3.92) | <0.001 |
| >20 days after LHTL | 1.51 | (0.43 to 2.59) | 0.009 |
| >20 days after classic | 0.24 | (−0.55 to 1.04) | 0.523 |
p Values refer to testing whether the associated parameter is equal to zero.
Hbmass, haemoglobin mass; LHTL, live high train low.
Figure 3Estimates of the within-subject coefficient of variation (CV (%)) of haemoglobin mass (Hbmass) obtained using all of the pairwise differences in natural log of Hbmass (ln(Hbmass)) over time from the 17 studies using either repeated measures on control participants or the prealtitude replicates on the altitude participants. A total of 80 estimates were obtained from 1003 paired differences. Three studies provided 51 estimates as a consequence of frequent serial measures on their control participants and duplicate measures at baseline on their altitude participants: Garvican et al29 (n=25), Robertson et al20 (n=12) and Saunders et al21 (n=14). The lower panel is a repeat of the upper panel expanding the first 40 days, with the symbol sizes indicating how many pairwise observations (on individuals) were used to generate the estimate; a small symbol indicates ≤7 observations, a medium symbol 8–14 observations and a large symbol ≥15 observations. A dashed line on both panels shows the fitted models; for x (days) ≤7whereas for x >7 Superscripted symbols indicate studies with the five largest estimates, each of which was >4%; ‡Frese and Friedmann-Bette,28 §Garvican et al29 and †Saunders et al.21
Figure 4Estimated median and estimated between-subject ‘true’ change in haemoglobin mass (Hbmass) in response to altitude exposure. The solid line refers to the same quadratic model as in figure 1 with dashed lines being the upper and lower 95% individual response limits. Where the lower limit of the individual responses was estimated to be negative, it has been truncated at zero.