Submitted:
19 February 2026
Posted:
26 February 2026
You are already at the latest version
Abstract
Keywords:Â
1. Introduction
2. Materials and Methods
2.1. Participant Characteristics
2.2. Laboratory Assessment of Maximal Oxygen Uptake
2.3. Gas Exchange Assessment During Simulated Competition
2.4. Outcome Variables
2.5. Statistical Analysis
3. Results
3.1. Relative Oxygen Uptake During Latin Dances

3.2. Relative Oxygen Uptake During Standard Dances
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ANOVA | Analysis of Variance |
| CI | Confidence Interval |
| GG | GreenhouseâGeisser |
| RM-ANOVA | Repeated-Measures Analysis of Variance |
| SD | Standard Deviation |
| VE | Minute Ventilation |
| VOâ | Oxygen Uptake |
| VOâmax | Maximal Oxygen Uptake |
| VCOâ | Carbon Dioxide Production |
| WDSF | World DanceSport Federation |
References
- Effects of Education Programs on Dance Sport Performance in Youth Dancers. European Journal of Contemporary Education 2019, 8. [CrossRef]
- Igor, S.; Huang, D.; Olesia, K.; Andrii, D. SPECIFIC CHARACTERISTICS OF STABILITY OF FUNCTIONAL PROVISION OF SPECIAL WORKING CAPACITY OF DANCE ATHLETES. Sport Science and Human Health 2022, 7. [CrossRef]
- Liiv, H.; JĂŒrimĂ€e, T.; MĂ€estu, J.; Purge, P.; Hannus, A.; JĂŒrimĂ€e, J. Physiological Characteristics of Elite Dancers of Different Dance Styles. European Journal of Sport Science 2012, 14. [CrossRef]
- Pilch, W.; Tota, Ć.; Pokora, I.; Mateusz, G.; Piotrowska, A.; Olga, C.; Zuziak, R.; CzerwiĆska-Ledwig, O. Energy Expenditure and Lactate Concentration in Sports Dancers in a Simulated Final Round of the Standard Style Competition. Human Movement 2017, 18, 62. [CrossRef]
- KuliĆ, S.; Sienkiewicz-Dianzenza, E.; Stupnicki, R. Anaerobic Endurance of Dance Sport Athletes. Biomedical Human Kinetics 2020, 12, 141. [CrossRef]
- Maciejczyk, M.; FeÄ, A. Evaluation of Aerobic Capacity and Energy Expenditure in Folk Dancers. Human Movement 2013, 14, 76. [CrossRef]
- Soronovych, I.; Mu, C.; Huang, D.; ĐŃŃĐ”ĐœĐșo, Đ. SYSTEMATIC APPROACH TO THE IMPLEMENTATION OF MODELING AS A FEATURE OF MANAGING THE FUNCTIONAL CAPABILITIES AMONG QUALIFIED DANCE ATHLETES. Sport Science and Human Health2021, 5, 149. [CrossRef]
- Moreira-Reis, A.; MatĂ©-Muñoz, J.L.; HernĂĄndez-Lougedo, J.; GarcĂa-FernĂĄndez, P.; Elvar, J.R.H.; Pleguezuelos, E.; Carbonell, T.; Alva, N.; Garnacho-Castaño, M.V. Similar Slow Component of Oxygen Uptake and Ventilatory Efficiency between an Aerobic Dance Session on an Air Dissipation Platform and a Constant-Load Treadmill Test in Healthy Women. Biology 2022, 11, 1646. [CrossRef]
- Liu, X.; Liu, Y.; Pan, D.; Weng, X. How Expressive Ties Energize Competitive Performance in DanceSport Dyads: Unraveling the Role of Athlete Engagement in an Innovatively Applied Actor-Partner Interdependence Mediation Model. Frontiers in Psychology 2024, 15. [CrossRef]
- Beck, S.; Redding, E.; Wyon, M. Methodological Considerations for Documenting the Energy Demand of Dance Activity: A Review. Frontiers in Psychology 2015, 6, 568. [CrossRef]
- Zaletel, P. A Time Motion and Analysis of Partnering Skills in Latin-American Dance Using a Semi-Automatic Tracking System: A Case Study. Journal of Anthropology of Sport and Physical Education 2020, 4, 3. [CrossRef]
- Moreira-Reis, A.; MatĂ©-Muñoz, J.L.; HernĂĄndez-Lougedo, J.; GarcĂa-FernĂĄndez, P.; Pleguezuelos-Cobo, E.; Carbonell, T.; Alva, N.; Garnacho-Castaño, M.V. Cardiorespiratory, Metabolic and Muscular Responses during a Video-Recorded Aerobic Dance Session on an Air Dissipation Platform. International Journal of Environmental Research and Public Health 2020, 17, 9511. [CrossRef]
- Massidda, M.; Cugusi, L.; Ibba, M.; Tradori, I.; CalĂČ, C.M. Energy Expenditure during Competitive Latin American Dancing Simulation. Medical Problems of Performing Artists2011, 26, 206. [CrossRef]
- Shaw, J.W.; Springham, M.; Brown, D.D.; Mattiussi, A.M.; Pedlar, C.R.; Tallent, J. The Validity of the Session Rating of Perceived Exertion Method for Measuring Internal Training Load in Professional Classical Ballet Dancers. Frontiers in Physiology 2020, 11. [CrossRef]
- Sanders, D.J.; Walker, A.; Prior, K.E.; Poyssick, A.N.; Arent, S.M. Training Demands and Physiological Profile of Cross-Disciplined Collegiate Female Dancers. The Journal of Strength and Conditioning Research 2019, 35, 2316. [CrossRef]
- Twitchett, E. Physiological Demands of Performance in Classical Ballet and Their Relationships with Injury and Aesthetic Components., 2009.
- Brocherie, F.; Billaut, F.; Deldicque, L. Editorial: Sex Differences in Sport Performance. Frontiers in Sports and Active Living 2023, 5. [CrossRef]
- Faulkner, E. Choreography-Specific Cross-Training and Conditioning Programs. Physical Medicine and Rehabilitation Clinics of North America 2020, 32, 103.
- Djafari, Y.; Arshi, A.R.; Rajabi, H. Hierarchical Clustering Approach to Movement Smoothness and Temporal Adaptation in Rhythmic Step Aerobics Training in Middle Aged Women. Scientific Reports 2025, 15. [CrossRef]
- Yu, H.; Teo, E.W.; Tan, C.C.; Chang, J.; Liu, S. Exploring the Factors Associated with Professional and Non-Professional Dancer Well-Being: A Comprehensive Systematic Review. Frontiers in Psychology 2025, 16.
- Volkova, V.G.; RÀisÀnen, A.M.; Benson, L.C.; Ferber, R.; Kenny, S. Systematic Review of Methods Used to Measure Training Load in Dance. BMJ Open Sport & Exercise Medicine2023, 9.

| Variable | Sex | Mean ± SD | 95% CI |
| %VOâmax â Latin | Female | 95.4 ± 8.0 | 85.5â105.3 |
| Male | 99.8 ± 9.6 | 87.8â111.7 | |
| %VOâmax â Standard | Female | 93.5 ± 11.2 | 79.6â107.4 |
| Male | 91.3 ± 11.3 | 77.3â105.2 | |
| VOâmax (ml·kgâ»Âč·minâ»Âč) â Laboratory (Latin test) | Female | 46.2 ± 5.3 | 39.7â52.7 |
| Male | 50.6 ± 2.6 | 47.4â53.8 | |
| VOâmax (ml·kgâ»Âč·minâ»Âč) â Laboratory (Standard test) | Female | 44.8 ± 3.6 | 40.3â49.3 |
| Male | 50.4 ± 2.5 | 47.3â53.5 |
| Style | Dance | Female (Mean ± SD) | 95% CI | Male (Mean ± SD) | 95% CI |
| Latin | Samba | 97.5 ± 9.0 | 86.4â108.7 | 102.5 ± 11.0 | 88.8â116.2 |
| Cha Cha | 95.6 ± 8.5 | 85.0â106.2 | 101.7 ± 11.2 | 87.8â115.6 | |
| Rumba | 87.6 ± 8.8 | 76.7â98.6 | 88.4 ± 10.1 | 75.9â100.9 | |
| Paso Doble | 96.4 ± 7.3 | 87.3â105.5 | 100.8 ± 8.7 | 90.0â111.6 | |
| Jive | 99.7 ± 8.7 | 88.8â110.5 | 105.4 ± 10.3 | 92.6â118.2 |
| Style | Dance | Female (Mean ± SD) | 95% CI | Male (Mean ± SD) | 95% CI |
| Standard | Waltz | 86.2 ± 7.2 | 77.2â95.1 | 84.3 ± 11.1 | 70.5â98.1 |
| Tango | 82.0 ± 4.7 | 76.1â87.8 | 91.0 ± 8.0 | 81.0â101.0 | |
| Viennese Waltz | 84.3 ± 4.8 | 78.4â90.3 | 91.0 ± 10.9 | 77.5â104.5 | |
| Foxtrot | 80.8 ± 4.9 | 74.7â86.8 | 88.2 ± 9.4 | 76.6â99.9 | |
| Quickstep | 85.5 ± 7.0 | 76.8â94.2 | 96.5 ± 8.5 | 85.9â107.0 |
Disclaimer/Publisherâs Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
