Isolated finger flexor vs. exhaustive whole-body climbing tests? How to assess endurance in sport climbers?
Language English Country Germany Media print-electronic
Document type Journal Article
Grant support
Adventure activities and movement deficiency in youth
Grantová Agentura, Univerzita Karlova
PubMed
33591426
DOI
10.1007/s00421-021-04595-7
PII: 10.1007/s00421-021-04595-7
Knihovny.cz E-resources
- Keywords
- Intermittent exercise, Isometric contraction, Muscle oxygen, NIRS, Threshold,
- MeSH
- Spectroscopy, Near-Infrared MeSH
- Adult MeSH
- Physical Endurance physiology MeSH
- Mountaineering physiology MeSH
- Muscle, Skeletal physiology MeSH
- Humans MeSH
- Fingers physiology MeSH
- Hand Strength physiology MeSH
- Oxygen Consumption physiology MeSH
- Muscle Contraction physiology MeSH
- Muscle Fatigue physiology MeSH
- Check Tag
- Adult MeSH
- Humans MeSH
- Male MeSH
- Publication type
- Journal Article MeSH
PURPOSE: Sport climbing requires high-intensity finger flexor contractions, along with a substantial whole-body systemic oxygen uptake ([Formula: see text]O2) contribution. Although fatigue is often localised to the finger flexors, the role of systemic ̇[Formula: see text]O2 and local aerobic mechanisms in climbing performance remains unclear. As such, the primary purpose of this study was to determine systemic and local muscle oxygen responses during both isolated finger flexion and incremental exhaustive whole-body climbing tests. The secondary aim was to determine the relationship of isolated and whole-body climbing endurance tests to climbing ability. METHODS: Twenty-two male sport climbers completed a series of isometric sustained and intermittent forearm flexor contractions, and an exhaustive climbing test with progressive steepening of the wall angle on a motorised climbing ergometer. Systemic [Formula: see text]O2 and flexor digitorum profundus oxygen saturation (StO2) were recorded using portable metabolic analyser and near-infra red spectroscopy, respectively. RESULTS: Muscle oxygenation breakpoint (MOB) was identifiable during an incremental exhaustive climbing test with progressive increases in angle (82 ± 8% and 88 ± 8% [Formula: see text]O2 and heart rate climbing peak). The peak angle from whole-body treadwall test and impulse from isolated hangboard endurance tests were interrelated (R2 = 0.58-0.64). Peak climbing angle together with mean [Formula: see text]O2 and StO2 from submaximal climbing explained 83% of variance in self-reported climbing ability. CONCLUSIONS: Both systemic and muscle oxygen kinetics determine climbing-specific endurance. Exhaustive climbing and isolated finger flexion endurance tests are interrelated and suitable to assess climbing-specific endurance. An exhaustive climbing test with progressive wall angle allows determination of the MOB.
Institute of Sport Science University of Bern Bern Switzerland
Lattice Training Limited Chesterfield UK
School of Sport and Exercise University of Gloucestershire Gloucestershire UK
See more in PubMed
Baláš J, Panáčková M, Jandová S, Martin AJ, Strejcová B, Vomáčko L, Charousek J, Cochrane DJ, Hamlin M, Draper N (2014a) The effect of climbing ability and slope inclination on vertical foot loading using a novel force sensor instrumentation system. J Hum Kinet 44(1):75–81. https://doi.org/10.2478/hukin-2014-0112 PubMed DOI PMC
Baláš J, Panáčková M, Kodejška J, Cochrane D, Martin AJ (2014b) The role of arm position during finger flexor strength measurement in sport climbers. Int J Perform Anal Sport 14(2):345–354 DOI
Baláš J, Panáčková M, Strejcová B, Martin AJ, Cochrane D, Kaláb M, Kodejška J, Draper N (2014c) The relationship between climbing ability and physiological responses to rock climbing. Sci World J. https://doi.org/10.1155/2014/678387 DOI
Baláš J, Michailov M, Giles D, Kodejška J, Panáčková M, Fryer S (2016) Active recovery of the finger flexors enhances intermittent handgrip performance in rock climbers. Eur J Sport Sci 16(7):764–772. https://doi.org/10.1080/17461391.2015.1119198 PubMed DOI
Baláš J, Kodejška J, Krupková D, Hannsmann J, Fryer S (2018) Reliability of near-infrared spectroscopy for measuring intermittent handgrip contractions in sport climbers. J Strength Cond Res 32(2):494–501 DOI
Barstow TJ (2019) Understanding near infrared spectroscopy and its application to skeletal muscle research. J Appl Physiol 126(5):1360–1376. https://doi.org/10.1152/japplphysiol.00166.2018 PubMed DOI
Beaver WL, Wasserman K, Whipp BJ (1986) A new method for detecting anaerobic threshold by gas exchange. J Appl Physiol 60(6):2020–2027 DOI
Bertuzzi R, Franchini E, Kokubun E, Dal Molin P, Kiss MA (2007) Energy system contributions in indoor rock climbing. Eur J Appl Physiol 101(3):293–300. https://doi.org/10.1007/s00421-007-0501-0 PubMed DOI
Boone J, Vandekerckhove K, Coomans I, Prieur F, Bourgois JG (2016) An integrated view on the oxygenation responses to incremental exercise at the brain, the locomotor and respiratory muscles. Eur J Appl Physiol 116(11–12):2085–2102. https://doi.org/10.1007/s00421-016-3468-x PubMed DOI
Booth J, Marino F, Hill C, Gwinn T (1999) Energy cost of sport rock climbing in elite performers. Br J Sport Med 33:14–18 DOI
Chin LMK, Kowalchuk JM, Barstow TJ, Kondo N, Amano T, Shiojiri T, Koga S (2011) The relationship between muscle deoxygenation and activation in different muscles of the quadriceps during cycle ramp exercise. J Appl Physiol 111(5):1259–1265. https://doi.org/10.1152/japplphysiol.01216.2010 PubMed DOI PMC
Draper N, Dickson T, Blackwell G, Fryer S, Priestley S, Winter D, Ellis G (2011) Self-reported ability assessment in rock climbing. J Sport Sci 29(8):851–858. https://doi.org/10.1080/02640414.2011.565362 DOI
Draper N, Giles D, Schöffl V, Fuss FK, Watts PB, Wolf P, Baláš J, España-Romero V, Gonzales GB, Fryer S, Fanchii M, Vigouroux L, Seifert L, Donath L, Spoerri M, Bonetti K, Phillips KC, Stöcker U, Bourassa-Moreau F, Garrido I, Drum S, Beekmeyer S, Zilterner JL, Taylor N, Beeretz I, Mally F, Amca AM, Linhart C, Ac Abreu E (2016) Comparative grading scales, statistical analyses, climber descriptors and ability grouping: International Rock Climbing Research Association Position Statement. Sports Technol 8(3–4):88–94. https://doi.org/10.1080/19346182.2015.1107081 DOI
España-Romero V, Ortega Porcel F, Artero E, Jiménez-Pavón D, Gutiérrez Sainz A, Castillo Garzón M, Ruiz J (2009) Climbing time to exhaustion is a determinant of climbing performance in high-level sport climbers. Eur J Appl Physiol 107(5):517–525 DOI
Feldmann AM, Erlacher D, Pfister S, Lehmann R (2020) Muscle oxygen dynamics in elite climbers during finger-hang tests at varying intensities. Sci Rep 10(1):3040. https://doi.org/10.1038/s41598-020-60029-y PubMed DOI PMC
Fryer S, Stoner L, Dickson T, Draper SB, McCluskey MJ, Hughes JD, How SC, Draper N (2015a) Oxygen recovery kinetics in the forearm flexors of multiple ability groups of rock climbers. J Strength Cond Res 29(6):1633–1639 DOI
Fryer S, Stoner L, Scarrott C, Lucero A, Witter T, Love R, Dickson T, Draper N (2015b) Forearm oxygenation and blood flow kinetics during a sustained contraction in multiple ability groups of rock climbers. J Sport Sci 33(5):518–526. https://doi.org/10.1080/02640414.2014.949828 DOI
Fryer S, Giles D, Palomino IG, Puerta AD, España-Romero V (2018) Hemodynamic and cardiorespiratory predictors of sport rock climbing performance. J Strength Cond Res 32(12):3534–3541. https://doi.org/10.1519/jsc.0000000000001860 PubMed DOI
Fryer S, Giles D, Bird E, Stone K, Paterson C, Baláš J, Willems MET, Potter JA, Perkins IC (2020a) New Zealand blackcurrant extract enhances muscle oxygenation during repeated intermittent forearm muscle contractions in advanced and elite rock climbers. Eur J Sport Sci. https://doi.org/10.1080/17461391.2020.1827048 PubMed DOI
Fryer S, Paterson C, Perkins IC, Gloster C, Willems MET, Potter JA (2020b) New Zealand blackcurrant extract enhances muscle oxygenation during forearm exercise in intermediate-level rock climbers. Int J Sport Nutr Exerc Metab 30(4):258–263. https://doi.org/10.1123/ijsnem.2019-0365 PubMed DOI
Giles D, Chidley JB, Taylor N, Torr O, Hadley J, Randall T, Fryer S (2019) The determination of finger-flexor critical force in rock climbers. Int J Sport Physiol 14(7):972–979. https://doi.org/10.1123/ijspp.2018-0809 DOI
Giles D, Hartley C, Maslen H, Hadley J, Taylor N, Torr O, Chidley J, Randall T, Fryer S (2020) An all-out test to determine finger flexor critical force in rock climbers. Int J Sports Physiol. https://doi.org/10.1123/ijspp.2020-0637 DOI
Grassi B, Quaresima V, Marconi C, Ferrari M, Cerretelli P (1999) Blood lactate accumulation and muscle deoxygenation during incremental exercise. J Appl Physiol 87(1):348–355 DOI
Keir DA, Fontana FY, Robertson TC, Murias JM, Paterson DH, Kowalchuk JM, Pogliaghi S (2015) Exercise intensity thresholds: identifying the boundaries of sustainable performance. Med Sci Sports Exer 47(9)
Limonta E, Brighenti A, Rampichini S, Ce E, Schena F, Esposito F (2018) Cardiovascular and metabolic responses during indoor climbing and laboratory cycling exercise in advanced and elite climbers. Eur J Appl Physiol 118(2):371–379. https://doi.org/10.1007/s00421-017-3779-6 PubMed DOI
Macleod D, Sutherland DL, Buntin L, Whitaker A, Aitchison T, Watt I, Bradley J, Grant S (2007) Physiological determinants of climbing-specific finger endurance and sport rock climbing performance. J Sports Sci 25(12):1433–1443 DOI
Michailov M (2014) Workload characteristics, performance limiting factors and methods for strength and endurance training in rock climbing. Medicina Sportiva 18(3):97–106. https://doi.org/10.5604/17342260.1120661 DOI
Michailov M, Baláš J, Tanev SK, Andonov HS, Kodejška J, Brown L (2018) Reliability and validity of finger strength and endurance measurements in rock climbing. Res Q Exerc Sport 89(2):246–254. https://doi.org/10.1080/02701367.2018.1441484 PubMed DOI
Okushima D, Poole DC, Rossiter HB, Barstow TJ, Kondo N, Ohmae E, Koga S (2015) Muscle deoxygenation in the quadriceps during ramp incremental cycling: deep vs superficial heterogeneity. J Appl Physiol 119(11):1313–1319. https://doi.org/10.1152/japplphysiol.00574.2015 PubMed DOI
Philippe M, Wegst D, Muller T, Raschner C, Burtscher M (2012) Climbing-specific finger flexor performance and forearm muscle oxygenation in elite male and female sport climbers. Eur J Appl Physiol 112(8):2839–2847. https://doi.org/10.1007/s00421-011-2260-1 PubMed DOI
Rosponi A, Schena F, Leonardi A, Tosi P (2012) Influence of ascent speed on rock climbing economy. Sport Sci Health 7(2–3):71–80 DOI
Schweizer A, Hudek R (2011) Kinetics of crimp and slope grip in rock climbing. J Appl Biomech 27(2):116–121 DOI
Thompson E, Farrow L, Hunt J, Lewis M, Ferguson RA (2014) Brachial artery characteristics and micro-vascular filtration capacity in rock climbers. Eur J Sport Sci 15(4):296–304. https://doi.org/10.1080/17461391.2014.940560 PubMed DOI
van Beekvelt MCP, Borghuis MS, van Engelen BGM, Wevers RA, Colier W (2001) Adipose tissue thickness affects in vivo quantitative near-IR spectroscopy in human skeletal muscle. Clin Sci 101(1):21–28. https://doi.org/10.1042/cs20000247 DOI
Van Der Zwaard S, Jaspers RT, Blokland IJ, Achterberg C, Visser JM, Den Uil AR, Hofmijster MJ, Levels K, Noordhof DA, De Haan A, De Koning JJ, Van Der Laarse WJ, De Ruiter CJ (2016) Oxygenation threshold derived from near—infrared spectroscopy: reliability and its relationship with the first ventilatory threshold. PLoS ONE. https://doi.org/10.1371/journal.pone.0162914 PubMed DOI PMC
Vigouroux L, Quaine F (2006) Fingertip force and electromyography of finger flexor muscles during a prolonged intermittent exercise in elite climbers and sedentary individuals. J Sports Sci 24(2):181–186 DOI
Wang LX, Yoshikawa T, Hara T, Nakao H, Suzuki T, Fujimoto S (2006) Which common NIRS variable reflects muscle estimated lactate threshold most closely? Appl Physiol Nutr Metab 31(5):612–620. https://doi.org/10.1139/h06-069 PubMed DOI
Watts PB (2004) Physiology of difficult rock climbing. Eur J Appl Physiol 91:361–372 DOI
Watts PB, Drobish KM (1998) Physiological responses to simulated rock climbing at different angles. Med Sci Sports Exerc 30:1118–1122 DOI
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