Submitted:
03 February 2026
Posted:
05 February 2026
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ACSM | American College of Sports Medicine |
| ANS | Autonomic Nervous System |
| BP | Blood Pressure |
| CBG | Cardiac Baroreceptor Gain |
| CSEP | Canadian Society for Exercise Physiology |
| CPM | Cardiac Parasympathetic Modulation |
| DBP | Diastolic Blood Pressure |
| ECG | Electrocardiogram |
| ES | Effect Size |
| FI | Frailty Index |
| GS | Gait Speed |
| HG | Handgrip Strength |
| HF | High Frequency Power |
| HR | Heart Rate |
| HRV | Heart Rate Variability |
| IPAQ | SF International Physical Activity Questionnaire–Short Form |
| LFA | Low Frequency Area (sometimes presented as LF) |
| LF | Low Frequency Power |
| LPA | Level of Physical Activity |
| MCID | Minimal Clinically Important Difference |
| MET | Metabolic Equivalent of Task |
| OI | Orthostatic Intolerance |
| OH | Orthostatic Hypotension |
| OMNI | RES OMNI Resistance Exercise Scale |
| PST | Progressive Strength Training |
| RMSSD | Root Mean Square of Successive Differences between RR Intervals |
| RR | Average Interval between Consecutive Heartbeats |
| SBP | Systolic Blood Pressure |
| SDNN | Standard Deviation of RR Intervals |
| TREND | Transparent Reporting of Evaluations with Non Randomized Designs |
References
- Hoogendijk, E.O.; Afilalo, J.; Ensrud, K.E.; Kowal, P.; Onder, G.; Fried, L.P. Frailty: Implications for Clinical Practice and Public Health. Lancet 2019, 394, 1365–1375. [Google Scholar] [CrossRef] [PubMed]
- Dent, E.; Martin, F.C.; Bergman, H.; Woo, J.; Romero-ortuno, R.; Walston, J.D. Frailty 2 Management of Frailty: Opportunities, Challenges, and Future Directions. Lancet 2019, 394, 1376–1386. [Google Scholar] [CrossRef] [PubMed]
- Bray, N.W.; Smart, R.R.; Jakobi, J.M.; Jones, G.R. Exercise Prescription to Reverse Frailty. Appl. Physiol. Nutr. Metab. 2016, 41, 1112–1116. [Google Scholar] [CrossRef] [PubMed]
- Pérez-Zepeda, M.U.; Martínez-Velilla, N.; Kehler, D.S.; Izquierdo, M.; Rockwood, K.; Theou, O. The Impact of an Exercise Intervention on Frailty Levels in Hospitalised Older Adults: Secondary Analysis of a Randomised Controlled Trial. Age Ageing 2022, 51, 1–9. [Google Scholar] [CrossRef]
- Cadore, E.L.; Pinto, R.S.; Bottaro, M.; Izquierdo, M. Strength and Endurance Training Prescription in Healthy and Frail Elderly. Aging Dis. 2014, 5, 183–195. [Google Scholar] [CrossRef]
- Lopez, P.; Izquierdo, M.; Radaelli, R.; Sbruzzi, G.; Grazioli, R.; Pinto, R.S.; Cadore, E.L. Effectiveness of Multimodal Training on Functional Capacity in Frail Older People: A Meta-Analysis of Randomized Controlled Trials. J. Aging Phys. Act. 2018, 26, 407–418. [Google Scholar] [CrossRef]
- Parvaneh, S.; Mohler, J.; Toosizadeh, N.; Grewal, G.S.; Najafi, B. Postural Transitions during Activities of Daily Living Could Identify Frailty Status: Application of Wearable Technology to Identify Frailty during Unsupervised Condition. Gerontology 2017, 63, 479–487. [Google Scholar] [CrossRef]
- Monahan, K.D. Effect of Aging on Baroreflex Function in Humans. Am. J. Physiol. - Regul. Integr. Comp. Physiol. 2007, 293. [Google Scholar] [CrossRef]
- Kharraziha, I.; Holm, H.; Bachus, E.; Ricci, F.; Sutton, R.; Fedorowski, A.; Hamrefors, V. Cerebral Oximetry in Syncope and Syndromes of Orthostatic Intolerance. Front. Cardiovasc. Med. 2019, 6, 1–6. [Google Scholar] [CrossRef]
- Fedorowski, A.; Melander, O. Syndromes of Orthostatic Intolerance: A Hidden Danger. J. Intern. Med. 2013, 273, 322–335. [Google Scholar] [CrossRef]
- Romero-Ortuno, R.; Cogan, L.; O’shea, D.; Lawlor, B.A.; Kenny, R.A. Orthostatic Haemodynamics May Be Impaired in Frailty. Age Ageing 2011, 40, 576–583. [Google Scholar] [CrossRef] [PubMed]
- Parvaneh, S.; Howe, C.L.; Toosizadeh, N.; Honarvar, B.; Slepian, M.J.; Fain, M.; Mohler, J.; Najafi, B. Regulation of Cardiac Autonomic Nervous System Control across Frailty Statuses: A Systematic Review. Gerontology 2015, 62, 3–15. [Google Scholar] [CrossRef] [PubMed]
- Catai, A.M.; Pastre, C.M.; de Godoy, M.F.; da Silva, E.; Takahashi, A.C. de M.; Vanderlei, L.C.M. Heart Rate Variability: Are You Using It Properly? Standardisation Checklist of Procedures. Brazilian J. Phys. Ther. 2020, 24, 91–102. [Google Scholar] [CrossRef] [PubMed]
- Lin, L.L.C.; Chen, Y.J.; Lin, T.Y.; Weng, T.C. Effects of Resistance Training Intensity on Heart Rate Variability at Rest and in Response to Orthostasis in Middle-Aged and Older Adults. Int. J. Environ. Res. Public Health 2022, 19. [Google Scholar] [CrossRef]
- Gambassi, B.B.; Rodrigues, B.; Feriani, D.J.; de Jesus Furtado Almeida, F.; Sauaia, B.A.; Schwingel, P.A.; de Moraes, O.A.; Pulcherio, J.O.B.; Andrade, M.F.B.; Mostarda, C.T. Effects of Resistance Training of Moderate Intensity on Heart Rate Variability, Body Composition, and Muscle Strength in Healthy Elderly Women. Sport Sci. Health 2016, 12, 389–395. [Google Scholar] [CrossRef]
- Ewing, A.D.J.; Campbell, I.W.; Murray, A.; Neilson, J.M.M.; Clarke, B.F. Diabetes Immediate Autonomic Neuropathy In. 1978, 1, 145–147. [Google Scholar]
- La Rovere, M.T.; Pinna, G.D.; Raczak, G. Baroreflex Sensitivity: Measurement and Clinical Implications. Ann. Noninvasive Electrocardiol. 2008, 13, 191–207. [Google Scholar] [CrossRef]
- Fecchio, R.Y.; de Sousa, J.C.S.; Oliveira-Silva, L.; da Silva Junior, N.D.; Pio-Abreu, A.; da Silva, G.V.; Drager, L.F.; Low, D.A.; Forjaz, C.L.M. Effects of Dynamic, Isometric and Combined Resistance Training on Blood Pressure and Its Mechanisms in Hypertensive Men. Hypertens. Res. 2023, 46, 1031–1043. [Google Scholar] [CrossRef]
- Cooke, W.H.; Carter, J.R. Strength Training Does Not Affect Vagal-Cardiac Control or Cardiovagal Baroreflex Sensitivity in Young Healthy Subjects. Eur. J. Appl. Physiol. 2005, 93, 719–725. [Google Scholar] [CrossRef]
- Haynes, AB; Haukoos, JS D.J. TREND Reporting Guidelines for Nonrandomized/Quasi-Experimental Study Designs. JAMA Surg. 2021, 156, 2. [Google Scholar] [CrossRef]
- Slade, S.C.; Dionne, C.E.; Underwood, M.; Buchbinder, R.; Beck, B.; Bennell, K.; Brosseau, L.; Costa, L.; Cramp, F.; Cup, E.; et al. Template ( CERT ): Modified Delphi. Phys. Ther. 2016, 96, 1514–1524. [Google Scholar] [CrossRef] [PubMed]
- Eldridge, S.M.; Chan, C.L.; Campbell, M.J.; Bond, C.M.; Hopewell, S.; Thabane, L.; Lancaster, G.A.; Altman, D.; Bretz, F.; Campbell, M.; et al. CONSORT 2010 Statement: Extension to Randomised Pilot and Feasibility Trials. BMJ 2016, 355. [Google Scholar] [CrossRef] [PubMed]
- Searle, S.D.; Mitnitski, A.; Gahbauer, E.A.; Gill, T.M.; Rockwood, K. A Standard Procedure for Creating a Frailty Index. BMC Geriatr. 2008, 8, 1–10. [Google Scholar] [CrossRef] [PubMed]
- Canadian Society for Exercise Physiology Canadian Physical Activity Guidelines for Older Adults 65 Years and Older; CSEP: Ottawa, 2011.
- Guelen, I.; Westerhof, B.E.; Van Der Sar, G.L.; Van Montfrans, G.A.; Kiemeneij, F.; Wesseling, K.H.; Bos, W.J.W. Finometer, Finger Pressure Measurements with the Possibility to Reconstruct Brachial Pressure. Blood Press. Monit. 2003, 8, 27–30. [Google Scholar] [CrossRef]
- Gama de Matos, D.; Lima de Santana, J.; Aidar, F.J.; Cornish, S.M.; Giesbrecht, G.G.; Nunes-Silva, A.; Romero-Ortuno, R.; Duhamel, T.A.; Villar, R. Changes in Autonomic Balance, Cardiac Parasympathetic Modulation, and Cardiac Baroreflex Gain in Older Adults Under Different Orthostatic Stress Conditions. 2025, 1–19. [Google Scholar] [CrossRef]
- Hagströmer, M.; Oja, P.; Sjöström, M. The International Physical Activity Questionnaire (IPAQ): A Study of Concurrent and Construct Validity. Public Health Nutr. 2006, 9, 755–762. [Google Scholar] [CrossRef]
- American College of Sports Medicine ACSM’s Guidelines for Exercise Testing and Prescription. Wolters Kluwer, 10th ed.; 2020; ISBN 9781496339072. [Google Scholar]
- Lagally, K.M.; Robertson, R.J. Construct Validity of the OMNI Resistance Exercise Scale. J. Strength Cond. Res. 2006, 20, 252–256. [Google Scholar] [CrossRef]
- Faul, F.; Erdfelder, E.; Lang, A.-G.; Buchner, A. G*Power 3: A Flexible Statistical Power Analysis Program for the Social, Behavioral, and Biomedical Sciences. Behav. Res. Methods 2007, 39, 175–191. [Google Scholar] [CrossRef]
- Benjamini, Yoav; Hochberg, Yosef. Controlling the False Discovery Rate: A Practical and Powerful Approach to Multiple Testing. J. R. Stat. Soc. Ser. B 1995, 57, 289–300. [Google Scholar] [CrossRef]
- Kehler, D.S.; Giacomantonio, N.; Firth, W.; Blanchard, C.M.; Rockwood, K.; Theou, O. Association Between Cardiac Rehabilitation and Frailty. Can. J. Cardiol. 2020, 36, 482–489. [Google Scholar] [CrossRef]
- Theou, O.; van der Valk, A.M.; Godin, J.; Andrew, M.K.; McElhaney, J.E.; McNeil, S.A.; Rockwood, K. Exploring Clinically Meaningful Changes for the Frailty Index in a Longitudinal Cohort of Hospitalized Older Patients. Journals Gerontol. - Ser. A Biol. Sci. Med. Sci. 2020, 75, 1928–1934. [Google Scholar] [CrossRef] [PubMed]
- Kehler, D.S.; Clara, I.; Hiebert, B.; Stammers, A.N.; Hay, J.L.; Schultz, A.; Arora, R.C.; Tangri, N.; Duhamel, T.A. The Association between Bouts of Moderate to Vigorous Physical Activity and Patterns of Sedentary Behavior with Frailty. Exp. Gerontol. 2018, 104, 28–34. [Google Scholar] [CrossRef] [PubMed]
- Haff, G.G.; Triplett, T. Essentials of Strength Training and Conditioning, 4th ed.; Human Kinetics, 2015; ISBN 978-1492501626. [Google Scholar]
- Fragala, M.S.; Cadore, E.L.; Dorgo, S.; Izquierdo, M.; Kraemer, W.J.; Peterson, M.D.; Ryan, E.D. Resistance Training for Older Adults. J. Strength Cond. Res. 2019, 33, 2019–2052. [Google Scholar] [CrossRef] [PubMed]
- Pan, P.J.; Hsu, N.W.; Lee, M.J.; Lin, Y.Y.; Tsai, C.C. Physical Fitness and Its Correlation with Handgrip Strength in Active Community - Dwelling Older Adults. Sci. Rep. 2022, 1–14. [Google Scholar] [CrossRef]
- Haider, S.; Luger, E.; Kapan, A.; Titze, S.; Lackinger, C.; Schindler, K.E.; Dorner, T.E. Associations between Daily Physical Activity, Handgrip Strength, Muscle Mass, Physical Performance and Quality of Life in Prefrail and Frail Community-Dwelling Older Adults. Qual. Life Res. 2016, 25, 3129–3138. [Google Scholar] [CrossRef]
- Gerage, A.M.; Forjaz, C.L.M.; Nascimento, M.A.; Januário, R.S.B.; Polito, M.D.; Cyrino, E.S. Cardiovascular Adaptations to Resistance Training in Elderly Postmenopausal Women. Int. J. Sports Med. 2013, 34, 806–813. [Google Scholar] [CrossRef]
- Christopher, J. Mathias; Bannister, Roger. Autonomic Failure: A Textbook of Clinical Disorders of the Autonomic Nervous System, 5th ed.; Oxford University Press, 2013; ISBN 9788578110796. [Google Scholar]
- Cardinali, D.P. Autonomic Nervous System, 1st ed.; Springer International Publishing, 2018; ISBN 978-3-319-57570-4. [Google Scholar]
- Bellavere, F.; Cacciatori, V.; Bacchi, E.; Gemma, M.L.; Raimondo, D.; Negri, C.; Thomaseth, K.; Muggeo, M.; Bonora, E.; Moghetti, P. Effects of Aerobic or Resistance Exercise Training on Cardiovascular Autonomic Function of Subjects with Type 2 Diabetes: A Pilot Study. Nutr. Metab. Cardiovasc. Dis. 2018, 28, 226–233. [Google Scholar] [CrossRef]
- Kaufmann, H.; Norcliffe-Kaufmann, L.; Palma, J.-A. Baroreflex Dysfunction. N. Engl. J. Med. 2020, 382, 163–178. [Google Scholar] [CrossRef]
- Wehrwein, E.A.; Joyner, M.J. Regulation of Blood Pressure by the Arterial Baroreflex and Autonomic Nervous System. Handb. Clin. Neurol. 2013, 117, 89–102. [Google Scholar] [CrossRef]
- Powers, S.K.; Howley, E.T. Exercise Physiology: Theory and Application to Fitness and Performance; 2012; ISBN 978-0.07-802253-1. [Google Scholar]
- Fragala, M.S.; Cadore, E.L.; Dorgo, S.; Izquierdo, M.; Kraemer, W.J.; Peterson, M.D.; Ryan, E.D. Resistance Training for Older Adults: Position Statement from the National Strength and Conditioning Association. J. Strength Cond. Res. 2019, 33, 2019–2052. [Google Scholar] [CrossRef]
- Goswami, N.; Blaber, A.P.; Hinghofer-Szalkay, H.; Montani, J.P. Orthostatic Intolerance in Older Persons: Etiology and Countermeasures. Front. Physiol. 2017, 8. [Google Scholar] [CrossRef]
- Portney, L.G.; Watkins, M.P. Foundation Clinical Research. Foreign Aff. 2012, 91, 390–404, 503–522. [Google Scholar]




| Weeks |
Frequency (days/week) |
Loading (% RM) |
Sets |
Rest interval (sec) |
Reps |
| 1-3 (familiarization) | 2 | 40-50% of 1RM | 1 | 120 | 15 |
| 4-6 | 2 | 50-60% of 1RM | 2 | 90 | 12 |
| 7-9 | 3 | 60-70% of 1RM | 3 | 60 | 10 |
| 10-12 | 3 | 70-80% of 1RM | 3 | 60 | 8 |
| Variables | Pre-test | 8 Weeks | 12 Weeks | |||||
| Anthropometric | Mean ± SD | Min; Max | Mean ± SD | Min; Max | Mean ± SD | Min; Max | p | |
| Body mass (kg) | 75.3 ± 13.3 | 54.7; 91.8 | 75.4 ± 13.5 | 55.1; 92.6 | 77.4 ± 12.8 | 56.7; 92.1 | 0.5 | |
| Body mass index | 28.8 ± 4.9 | 22.5, 36.3 | 28.9 ± 5.0 | 22.6, 36.6 | 29.0 ± 4.7 | 23.3, 36.4 | 0.5 | |
| Hemodynamic | Mean ± SD | Min; Max | Mean ± SD | Min; Max | Mean ± SD | Min; Max | ||
| Resting SBP | 132 ± 8.7 | 120; 141 | 128.0 ± 11.7 | 113; 149 | 128.5 ± 11.8 | 114; 148 | 0.1 | |
| Resting DBP | 80 ± 11.0 | 60; 92 | 76 ± 11.7 | 61; 91 | 75 ± 7.4 | 64; 88 | 0.4 | |
| Resting HR | 74 ± 8.2 | 64; 88 | 75 ± 8.1 | 62; 85 | 76 ± 4.0 | 68, 80 | 0.7 | |
| Frailty Status | Mean ± SD | Min; Max | Mean ± SD | Min; Max | Mean ± SD | Min; Max | p | |
| Frailty Index | 0.18 ± 0.1 | 0.08; 0.33 | 0.08 ± 0.04 | 0.00; 0.23 | 0.04 ± 0.04 | 0.00; 0.10 | <0.001* | |
| Time Domain | |||
| Pre-test | 8 weeks | 12 weeks | |
| RR | 788.2 ± 300.7 (557.0; 1019.3) |
814.2 ± 336.2 (533.2; 1095.2) |
816.4 ± 365.0 (478.8; 1153.9) |
| p(ES) | 1.0 (0.1)b | 0.9 (0.1)a | 1.0 (0.1)c |
| SDNN | 32.3 ± 15.5 (20.4; 44.1) |
27.6 ± 8.7 (20.4; 34.9) |
27.7 ± 5.1 (23.0; 32.4) |
| p(ES) | 0.4 (0.2)b | 0.3 (0.2)a | 1.0 (0.2)c |
| RMSSD | 22.0 ± 7.3 (16.3; 27.6) |
19.7 ± 4.0 (16.3; 23.0) |
21.1 ± 6.3 (15.3; 26.9) |
| p(ES) | 1.0 (0.01)b | 1.0 (0.01)a | 1.0 (0.01)c |
| Frequency Domain | |||
| LF | 438.3 ± 650.7 (−61.8; 938.5) |
207.9 ± 264.5 (−13.2; 429.0) |
100.0 ± 59.1 (45.4; 154.7) |
| p(ES) | 0.9 (0.3)b | 0.7 (0.3)a | 1.0 (0.3)c |
| HF | 915.0 ± 1818.0 (−482.4; 2312.4) |
426.4 ± 711.1 (−168.2; 1020.9) |
194.1 ± 114.2 (88.5; 299.8) |
| p(ES) | 1.0 (0.2)b | 1.0 (0.2)a | 1.0 (0.2)c |
| LF/HF | 0.7 ± 0.4 (0.4; 0.9) |
0.7 ± 0.3 (0.4; 1.0) |
0.7 ± 0.4 (0.3; 1.0) |
| p(ES) | 1.0 (0.02)b | 1.0 (0.02)a | 1.0 (0.02)c |
| Cardiac Parasympathetic Modulation (CPM) | |||
| Sit-to-stand | |||
| Pre-test | 8 weeks | 12 weeks | |
| HR Δ 30:15 | 1.04|0.04 (1.02; 1.18) |
1.0|0.05 (0.93; 1.12) |
1.02|0.04 (1.0; 1.17) |
| p (ES) | 0.9 (0.01)b | 0.8 (0.01)a | 1.0 (0.01)c |
| Lie-to-stand | |||
| Pre-test | 8 weeks | 12 weeks | |
| HR Δ 30:15 | 1.01 ± 0.06 (0.91; 1.11) |
1.04 ± 0.05 (0.94; 1.12) |
1.04 ± 0.04 (1.0; 1.12) |
| p (ES) | 0.6 (0.09)b | 0.2 (0.09)a | 1.0 (0.09)c |
| Sit-to-stand | |||
| CBG (bpm/mmHg) | Pre-test | 8 weeks | 12 weeks |
| Phase 1: 30 s | 0.6|0.1 (0.4; 0.8) |
0.5|0.1 (0.4; 0.7) |
0.5|0.1 (0.4; 0.6) |
| p (ES) | 0.9 (0.6)b | 0.7 (0.6)a | 1.0 (0.6)c |
| Phase 2: 60 s | 0.6|0.1 (0.4; 0.8) |
0.5|0.1 (0.4; 0.6) |
0.5|0.1 (0.4; 0.7) |
| p (ES) | 1.0 (0.6)b | 0.2 (0.6)a | 0.1 (0.6)c |
| Phase 3: 180 s | 0.5|0.1 (0.4; 0.8) |
0.5|0.1 (0.4;0.7) |
0.5|0.1 (0.3; 0.6) |
| p (ES) | 1.0 (0.4)b | 1.0 (0.4)a | 1.0 (0.4)c |
| Phase 4: 420 s | 0.6|0.1 (0.4; 0.8) |
0.5|0.1 (0.4; 0.7) |
0.5|0.1 (0.4; 0.6) |
| p (ES) | 1.0 (0.5)b | 0.7 (0.5)a | 1.0 (0.5)c |
| Lie-to-stand | |||
| Pre-test | 8 weeks | 12 weeks | |
| Phase 1: 30 s | 0.6 ± 0.1 (0.5; 0.7) |
0.6 ± 0.1 (0.5; 0.6) |
0.6 ± 0.1 (0.5; 0.7) |
| p (ES) | 0.09 (0.1)b | 0.1 (0.1)a | 0.9 (0.1)c |
| Phase 2: 60 s | 0.6 ± 0.1 (0.5; 0.7) |
0.6 ± 0.1 (0.5; 0.7) |
0.6 ± 0.1 (0.5; 0.7) |
| p (ES) | 1.0 (0.09)b | 0.3 (0.09)a | 0.1 (0.09)c |
| Phase 3: 180 s | 0.6 ± 0.1 (0.5; 0.6) |
0.6 ± 0.1 (0.5; 0.6) |
0.6 ± 0.1 (0.5; 0.6) |
| p (ES) | 1.0 (0.09)b | 0.4 (0.09)a | 0.2 (0.09)c |
| Phase: 4 420 s | 0.6 ± 0.1 (0.5; 0.6) |
0.5 ± 0.1 (0.5; 0.6) |
0.6 ± 0.1 (0.5; 0.7) |
| p (ES) | 1.0 (0.07)b | 0.5 (0.07)a | 0.1 (0.07)c |
Disclaimer/Publisher’s 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/).