Do Triathletes Periodize Their Diet and Do Their Mineral Content, Body Composition and Aerobic Capacity Change during Training and Competition Periods?
Language English Country Switzerland Media electronic
Document type Observational Study, Journal Article
PubMed
36615663
PubMed Central
PMC9824709
DOI
10.3390/nu15010006
PII: nu15010006
Knihovny.cz E-resources
- Keywords
- aerobic capacity, elemental hair analysis, nutrition assessment, triathlon,
- MeSH
- Running * MeSH
- Bicycling MeSH
- Energy Intake MeSH
- Physical Endurance MeSH
- Oxygen MeSH
- Humans MeSH
- Minerals MeSH
- Swimming MeSH
- Body Composition MeSH
- Oxygen Consumption * MeSH
- Heart Rate MeSH
- Check Tag
- Humans MeSH
- Publication type
- Journal Article MeSH
- Observational Study MeSH
- Names of Substances
- Oxygen MeSH
- Minerals MeSH
The triathlon is a demanding endurance multisport, which may strongly affect the nutritional status of athletes. The aim of this study was to find whether there are any differences in energy value and nutrient intake, body mass and body composition, aerobic performance and hair mineral status between training and competition periods and to assess whether there is a link between hair mineral content and physical capacity and nutrition. This observational study covered 20 triathletes aged 32 ± 7 years. The results of our study indicated performance improvement during the competition period (longer time to exhaustion (p = 0.025) and lower maximal oxygen uptake at the ventilatory threshold (%VO2max_VT; p = 0.047)). However, no differences were recorded in nutrition and body composition between two training vs. competition periods. There was a significant depletion in hair iron content during the competition period (p = 0.010). Furthermore, there were significant relationships between hair calcium content and absolute maximal oxygen uptake and %VO2max_VT during the training period. It is necessary to introduce nutritional education in the group of triathletes focused on exercise-oriented nutritional periodization following the requirements of the training and competition periods, thus preventing the risk of nutrient deficiencies.
Department of Food and Nutrition Poznan University of Physical Education 61 871 Poznań Poland
Department of Human Nutrition and Dietetics Poznań University of Life Sciences 60 624 Poznań Poland
Department of Sports Dietetics Poznan University of Physical Education 61 871 Poznań Poland
See more in PubMed
Migliorini S. Triathlon Medicine. 1st ed. Springer; Cham, Switzerland: 2020.
Millet G.P., Vleck V.E., Bentley D.J. Physiological Requirements in Triathlon. J. Hum. Sport Exerc. 2011;6:184–204. doi: 10.4100/jhse.2011.62.01. DOI
Brunkhorst L., Kielstein H. Comparison of Anthropometric Characteristics between Professional Triathletes and Cyclists. Biol. Sport. 2013;30:269–273. doi: 10.5604/20831862.1077552. PubMed DOI PMC
Eime R.M., Young J.A., Harvey J.T., Charity M.J., Payne W.R. A Systematic Review of the Psychological and Social Benefits of Participation in Sport for Children and Adolescents: Informing Development of a Conceptual Model of Health through Sport. Int. J. Behav. Nutr. Phys. Act. 2013;10:98. doi: 10.1186/1479-5868-10-98. PubMed DOI PMC
Maughan R.J., Burke L.M., Dvorak J., Larson-Meyer D.E., Peeling P., Phillips S.M., Engebretsen L. IOC Consensus Statement: Dietary Supplements and the High-Performance Athlete. Br. J. Sports Med. 2018;52:439–455. doi: 10.1136/bjsports-2018-099027. PubMed DOI PMC
Jeukendrup A.E. Nutrition for Endurance Sports: Marathon, Triathlon, and Road Cycling. J. Sports Sci. 2011;29:S91–S99. doi: 10.1080/02640414.2011.610348. PubMed DOI
Kerksick C.M., Wilborn C.D., Roberts M.D., Smith-Ryan A., Kleiner S.M., Jäger R., Kreider R.B. ISSN Exercise & Sports Nutrition Review Update: Research & Recommendations. J. Int. Soc. Sports Nutr. 2018;15:38. PubMed PMC
Fraczek B., Gacek M., Pieta A., Tyrala F., Mazur-Kurach P., Karpecka E. Dietary Mistakes of Polish Athletes in Relation to the Frequency of Consuming Foods Recommended in the Swiss Food Pyramid for Active People. Rocz. Panstw. Zakl. Hig. 2020;71:97–104. PubMed
Ackland T.R., Lohman T.G., Sundgot-Borgen J., Maughan R.J., Meyer N.L., Stewart A.D., Müller W. Current Status of Body Composition Assessment in Sport: Review and Position Statement on Behalf of the Ad Hoc Research Working Group on Body Composition Health and Performance, under the Auspices of the I.O.C. Medical Commission. Sports Med. 2012;42:227–249. doi: 10.2165/11597140-000000000-00000. PubMed DOI
Burke L., Deakin V., Minehan M. Clinical Sports Nutrition. 6th ed. McGraw Hill; Sydney, Australia: 2021.
Durkalec-Michalski K., Podgórski T., Sokołowski M., Jeszka J. Relationship between Body Composition Indicators and Physical Capacity of the Combat Sports Athletes. Arch. Budo. 2016;12:247–256.
Durkalec-Michalski K., Nowaczyk P.M., Podgórski T., Kusy K., Osiński W., Jeszka J. Relationship between Body Composition and the Level of Aerobic and Anaerobic Capacity in Highly Trained Male Rowers. J. Sports Med. Phys. Fitness. 2019;59:1526–1535. doi: 10.23736/S0022-4707.19.08951-5. PubMed DOI
Kyle U.G., Bosaeus I., De Lorenzo A.D., Deurenberg P., Elia M., Gómez J.M., Composition of the ESPEN Working Group Bioelectrical Impedance Analysis--Part I: Review of Principles and Methods. Clin. Nutr. 2004;23:1226–1243. doi: 10.1016/j.clnu.2004.06.004. PubMed DOI
Bentzur K.M., Kravitz L., Lockner D.W. Evaluation of the BOD POD for Estimating Percent Body Fat in Collegiate Track and Field Female Athletes: A Comparison of Four Methods. J. Strength Cond. Res. 2008;22:1985–1991. doi: 10.1519/JSC.0b013e318185f196. PubMed DOI
Durkalec-Michalski K., Zawieja E.E., Zawieja B.E., Podgórski T. Evaluation of the Repeatability and Reliability of the Cross-Training Specific Fight Gone Bad Workout and Its Relation to Aerobic Fitness. Sci. Rep. 2021;11:7263. doi: 10.1038/s41598-021-86660-x. PubMed DOI PMC
Szponar L., Wolnicka K., Rychlik E. Album Fotografii Produktów i Potraw. 1st ed. Instytut Żywności i Żywienia; Warszawa, Poland: 2008.
Kunachowicz H., Przygoda B., Nadolna I., Przygoda B. Tabele Składu i Wartości Odżywczej Żywności. 1st ed. PZWL Wydawnictwo Lekarskie; Warsaw, Poland: 2020.
Jeukendrup A., Gleeson M. Sport Nutrition. Human Kinetics; Champaign, IL, USA: 2018.
Riebl S.K., Davy B.M. The Hydration Equation: Update on Water Balance and Cognitive Performance. ACSMs Health Fit. J. 2013;17:21–28. doi: 10.1249/FIT.0b013e3182a9570f. PubMed DOI PMC
Vitale K., Getzin A. Nutrition and Supplement Update for the Endurance Athlete: Review and Recommendations. Nutrients. 2019;11:1289. doi: 10.3390/nu11061289. PubMed DOI PMC
Jarosz M., Rychlik E., Stoś K., Charzewska J. Normy Żywienia dla Populacji Polski i ich Zastosowanie. 1st ed. Narodowy Instytut Zdrowia Publicznego—Państwowy Zakład Higieny; Warsaw, Poland: 2020.
Sellés-Pérez S., Fernández-Sáez J., Férriz-Valero A., Esteve-Lanao J., Cejuela R. Changes in Triathletes’ Performance and Body Composition During a Specific Training Period for a Half-Ironman Race. J. Hum. Kinet. 2019;67:185–198. doi: 10.2478/hukin-2018-0077. PubMed DOI PMC
Knechtle B., Wirth A., Rüst C.A., Rosemann T. The Relationship between Anthropometry and Split Performance in Recreational Male Ironman Triathletes. Asian J. Sports Med. 2011;2:23–30. doi: 10.5812/asjsm.34823. PubMed DOI PMC
Knechtle B., Wirth A., Knechtle P., Rosemann T., Rüst C.A., Bescos R. A Comparison of Fat Mass and Skeletal Muscle Mass Estimation in Male Ultra-Endurance Athletes Using Bioelectrical Impedance Analysis and Different Anthropometric Methods. Nutr. Hosp. 2011;26:1420–1427. PubMed
Knechtle B., Wirth A., Rosemann T. Predictors of Race Time in Male Ironman Triathletes: Physical Characteristics, Training, or Prerace Experience? Percept. Mot. Ski. 2010;111:437–446. doi: 10.2466/05.25.PMS.111.5.437-446. PubMed DOI
Knechtle B., Knechtle P., Andonie J.L., Kohler G. Influence of Anthropometry on Race Performance in Extreme Endurance Triathletes: World Challenge Deca Iron Triathlon 2006. Br. J. Sports Med. 2007;41:644–648. doi: 10.1136/bjsm.2006.035014. PubMed DOI PMC
Millet G.P., Dréano P., Bentley D.J. Physiological Characteristics of Elite Short- and Long-Distance Triathletes. Eur. J. Appl. Physiol. 2003;88:427–430. doi: 10.1007/s00421-002-0731-0. PubMed DOI
Thomas D.T., Erdman K.A., Burke L.M. Position of the Academy of Nutrition and Dietetics, Dietitians of Canada, and the American College of Sports Medicine: Nutrition and Athletic Performance. J. Acad. Nutr. Diet. 2016;116:501–528. doi: 10.1016/j.jand.2015.12.006. PubMed DOI
Stellingwerff T., Maughan R.J., Burke L.M. Nutrition for Power Sports: Middle-Distance Running, Track Cycling, Rowing, Canoeing/Kayaking, and Swimming. J. Sports Sci. 2011;29((Suppl. 1)):S79–S89. doi: 10.1080/02640414.2011.589469. PubMed DOI
Stellingwerff T., Morton J.P., Burke L.M. A Framework for Periodized Nutrition for Athletics. Int. J. Sport Nutr. Exerc. Metab. 2019;29:141–151. doi: 10.1123/ijsnem.2018-0305. PubMed DOI
Finstad E.W., Newhouse I.J., Lukaski H.C., McAuliffe J.E., Stewart C.R. The Effects of Magnesium Supplementation on Exercise Performance. Med. Sci. Sports Exerc. 2001;33:493–498. doi: 10.1097/00005768-200103000-00024. PubMed DOI
Burden R.J., Morton K., Richards T., Whyte G.P., Pedlar C.R. Is Iron Treatment Beneficial in, Iron-Deficient but Non-Anaemic (IDNA) Endurance Athletes? A Systematic Review and Meta-Analysis. Br. J. Sports Med. 2015;49:1389–1397. doi: 10.1136/bjsports-2014-093624. PubMed DOI
Burden R.J., Pollock N., Whyte G.P., Richards T., Moore B., Busbridge M., Pedlar C. Effect of Intravenous Iron on Aerobic Capacity and Iron Metabolism in Elite Athletes. Med. Sci. Sports Exerc. 2015;47:1399–1407. doi: 10.1249/MSS.0000000000000568. PubMed DOI
Rubeor A., Goojha C., Manning J., White J. Does Iron Supplementation Improve Performance in Iron-Deficient Nonanemic Athletes? Sports Health. 2018;10:400–405. doi: 10.1177/1941738118777488. PubMed DOI PMC
Peeling P., Binnie M.J., Goods P.S.R., Sim M., Burke L.M. Evidence-Based Supplements for the Enhancement of Athletic Performance. Int. J. Sport Nutr. Exerc. Metab. 2018;28:178–187. doi: 10.1123/ijsnem.2017-0343. PubMed DOI
Muros J.J., Knox E., Hinojosa-Nogueira D., Rufián-Henares J.Á., Zabala M. Profiles for Identifying Problematic Dietary Habits in a Sample of Recreational Spanish Cyclists and Triathletes. Sci. Rep. 2021;11:15193. doi: 10.1038/s41598-021-94660-0. PubMed DOI PMC
Masson G., Lamarche B. Many Non-Elite Multisport Endurance Athletes Do Not Meet Sports Nutrition Recommendations for Carbohydrates. Appl. Physiol. Nutr. Metab. 2016;41:728–734. doi: 10.1139/apnm-2015-0599. PubMed DOI
Mikulewicz M., Chojnacka K., Gedrange T., Górecki H. Reference Values of Elements in Human Hair: A Systematic Review. Environ. Toxicol. Pharmacol. 2013;36:1077–1086. doi: 10.1016/j.etap.2013.09.012. PubMed DOI
Zaitseva I.P., Zaitsev O.N. The Influence of Professional Physical Activity on the Element Status in the Hair of Young Athletes (Wrestlers) Hum. Physiol. 2019;45:69–74. doi: 10.1134/S0362119719010158. DOI
Zaborova V., Zolnikov O., Dzhakhaya N., Bueverova E., Sedova A., Kurbatova A., Heinrich K.M. The Study of the Relevance of Macro- and Microelements in the Hair of Young Wrestlers Depending on the Style of Wrestling. Front. Endocrinol. 2022;13:985297. doi: 10.3389/fendo.2022.985297. PubMed DOI PMC
Zaitseva I.P., Skalny A.A., Tinkov A.A., Berezkina E.S., Grabeklis A.R., Skalny A.V. The Influence of Physical Activity on Hair Toxic and Essential Trace Element Content in Male and Female Students. Biol. Trace Elem. Res. 2015;163:58–66. doi: 10.1007/s12011-014-0172-8. PubMed DOI
Nabatov A.A., Troegubova N.A., Gilmutdinov R.R., Sereda A.P., Samoilov A.S., Rylova N.V. Sport- and Sample-Specific Features of Trace Elements in Adolescent Female Field Hockey Players and Fencers. J. Trace Elem. Med. Biol. 2017;43:33–37. doi: 10.1016/j.jtemb.2016.11.002. PubMed DOI