Association Between Physical Therapy and Mortality in Older Patients with Heart Failure and Chronic Kidney Disease
Abstract
1. Introduction
2. Materials and Methods
2.1. Study Design and Patients
2.2. Demographic and Clinical Data
2.2.1. Demographic and Clinical Characteristics
2.2.2. Laboratory and Echocardiographic Variables
2.2.3. Physical Function and Frailty
2.2.4. Discharge Medications
2.3. PT
2.4. Outcomes
2.5. Statistical Analysis
3. Results
3.1. Patient Selection and Baseline Characteristics
3.2. Follow-Up and Event Rates
3.3. Association of PT with Clinical Outcomes
3.4. Subgroup and Supplementary Analyses
4. Discussion
4.1. Principal Findings and Relevance to Older Patients with HF
4.2. Biological Plausibility Across Aging, HF, and CKD
4.3. Associations with Mortality vs. CV-Related Rehospitalization
4.4. CKD Severity and Consistency with Prior CR Evidence
4.5. Clinical and Health-System Implications in a Rapidly Aging Society
4.6. Limitations and Methodological Considerations
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ACE | angiotensin-converting enzyme |
| ADL | activities of daily living |
| BNP | B-type natriuretic peptide |
| CI | confidence interval |
| CKD | chronic kidney disease |
| CR | cardiac rehabilitation |
| CV | cardiovascular |
| eGFR | estimated glomerular filtration rate |
| HF | heart failure |
| HFrEF | heart failure with reduced ejection fraction |
| HR | hazard ratio |
| KCL | Kihon Checklist |
| LVEF | left ventricular ejection fraction |
| NT-proBNP | N-terminal pro-B-type natriuretic peptide |
| NYHA | New York Heart Association |
| PSM | propensity score matching |
| PT | physical therapy |
| SGLT2 | sodium–glucose cotransporter 2 |
| t0 | time zero |
| UMIN | University Hospital Medical Information Network |
References
- Statistics Bureau of Japan. Population Statistics 2024. Available online: https://www.stat.go.jp/english/data/jinsui/2024np/index.html (accessed on 13 February 2026).
- Shimokawa, H.; Miura, M.; Nochioka, K.; Sakata, Y. Heart failure as a general pandemic in Asia. Eur. J. Heart Fail. 2015, 17, 884–892. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Conrad, N.; Judge, A.; Tran, J.; Mohseni, H.; Hedgecott, D.; Crespillo, A.P.; Allison, M.; Hemingway, H.; Cleland, J.G.; McMurray, J.J.; et al. Temporal trends and patterns in heart failure incidence: A population-based study of 4 million individuals. Lancet 2018, 391, 572–580. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vigen, R.; Maddox, T.M.; Allen, L.A. Aging of the United States population: Impact on heart failure. Curr. Heart Fail. Rep. 2012, 9, 369–374. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Damman, K.; Valente, M.A.E.; Voors, A.A.; O’Connor, C.M.; van Veldhuisen, D.J.; Hillege, H.L. Renal impairment, worsening renal function, and outcome in patients with heart failure: An updated meta-analysis. Eur. Heart J. 2014, 35, 455–469. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gerhardt, L.M.S.; Kordsmeyer, M.; Sehner, S.; Güder, G.; Störk, S.; Edelmann, F.; Wachter, R.; Pankuweit, S.; Prettin, C.; Ertl, G.; et al. Prevalence and prognostic impact of chronic kidney disease and anaemia across ACC/AHA precursor and symptomatic heart failure stages. Clin. Res. Cardiol. 2023, 112, 868–879. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Denic, A.; Glassock, R.J.; Rule, A.D. Structural and functional changes with the aging kidney. Adv. Chronic Kidney Dis. 2016, 23, 19–28. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rangaswami, J.; Bhalla, V.; Blair, J.E.A.; Chang, T.I.; Costa, S.; Lentine, K.L.; Lerma, E.V.; Mezue, K.; Molitch, M.; Mullens, W.; et al. Cardiorenal syndrome: Classification, pathophysiology, diagnosis, and treatment strategies: A scientific statement from the American Heart Association. Circulation 2019, 139, e840–e878. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Secora, A.; Alexander, G.C.; Ballew, S.H.; Coresh, J.; Grams, M.E. Kidney function, polypharmacy, and potentially inappropriate medication use in a community-based cohort of older adults. Drugs Aging 2018, 35, 735–750. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Österman, J.; Al-Sodany, E.; Haugen Löfman, I.; Barany, P.; Evans, M. Heart failure: The grim reaper of the cardio-renal-metabolic triad. ESC Heart Fail. 2024, 11, 2334–2343. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tang, W.H.W.; Bakitas, M.A.; Cheng, X.S.; Fang, J.C.; Fedson, S.E.; Fiedler, A.G.; Martens, P.; Mccallum, W.I.; Ogunniyi, M.O.; Rangaswami, J.; et al. Evaluation and management of kidney dysfunction in advanced heart failure: A scientific statement from the American Heart Association. Circulation 2024, 150, e280–e295. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Makita, S.; Yasu, T.; Akashi, Y.J.; Adachi, H.; Izawa, H.; Ishihara, S.; Iso, Y.; Ohuchi, H.; Omiya, K.; Ohya, Y.; et al. JCS/JACR 2021 guideline on rehabilitation in patients with cardiovascular disease. Circ. J. 2023, 87, 155–235. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- McDonagh, T.A.; Metra, M.; Adamo, M.; Gardner, R.S.; Baumbach, A.; Böhm, M.; Burri, H.; Butler, J.; Čelutkienė, J.; Chioncel, O. 2021 ESC Guidelines for the diagnosis and treatment of acute and chronic heart failure. Eur. Heart J. 2021, 42, 3599–3726. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Brown, T.M.; Pack, Q.R.; Aberegg, E.; Brewer, L.C.; Ford, Y.R.; Forman, D.E.; Gathright, E.C.; Khadanga, S.; Ozemek, C.; Thomas, R.J. Core components of cardiac rehabilitation programs: 2024 update: A scientific statement from the American Heart Association and the American Association of Cardiovascular and Pulmonary Rehabilitation. Circulation 2024, 150, e328–e347. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Molloy, C.; Long, L.; Mordi, I.R.; Bridges, C.; Sagar, V.A.; Davies, E.J.; Coats, A.J.; Dalal, H.; Rees, K.; Singh, S.J.; et al. Exercise-based cardiac rehabilitation for adults with heart failure. Cochrane Database Syst. Rev. 2024, 3, CD003331. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kitzman, D.W.; Whellan, D.J.; Duncan, P.; Pastva, A.M.; Mentz, R.J.; Reeves, G.R.; Nelson, M.B.; Chen, H.; Upadhya, B.; Reed, S.D.; et al. Physical rehabilitation for older patients hospitalized for heart failure. N. Engl. J. Med. 2021, 385, 203–216. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kamiya, K.; Sato, Y.; Takahashi, T.; Tsuchihashi-Makaya, M.; Kotooka, N.; Ikegame, T.; Takura, T.; Yamamoto, T.; Nagayama, M.; Goto, Y.; et al. Multidisciplinary cardiac rehabilitation and long-term prognosis in patients with heart failure. Circ. Heart Fail. 2020, 13, e006798. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Takahashi, T.; Iwata, K.; Morisawa, T.; Kato, M.; Kono, Y.; Taya, M.; Iida, Y.; Funami, Y.; Kamiya, K.; Sakurada, K.; et al. Incidence of hospitalization-associated disability in older patients with heart failure. Circ. J. 2024, 88, 672–679. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ishihara, S.; Hiramitsu, S.; Kanaoka, K.; Taki, M.; Nakagawa, H.; Ueda, T.; Seno, A.; Nishida, T.; Onoue, K.; Soeda, T.; et al. New conversion formula between B-type natriuretic peptide and N-terminal-pro-B-type natriuretic peptide—Analysis from a multicenter study. Circ. J. 2022, 86, 2010–2018. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Satake, S.; Senda, K.; Hong, Y.J.; Miura, H.; Endo, H.; Sakurai, T.; Kondo, I.; Toba, K. Validity of the Kihon Checklist for assessing frailty status. Geriatr. Gerontol. Int. 2016, 16, 709–715. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- JCS Joint Working Group. Guidelines for rehabilitation in patients with cardiovascular disease (JCS 2012). Circ. J. 2014, 78, 2022–2093. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kidney Disease: Improving Global Outcomes (KDIGO) CKD Work Group. KDIGO 2024 Clinical Practice Guideline for the Evaluation and Management of Chronic Kidney Disease. Kidney Int. 2024, 105, S117–S314. [CrossRef] [Scilit] [PubMed]
- Rubin, D.B. Multiple Imputation for Nonresponse in Surveys; John Wiley & Sons: Hoboken, NJ, USA, 2004. [Google Scholar]
- Molloy, C.D.; Long, L.; Mordi, I.R.; Bridges, C.; Sagar, V.A.; Davies, E.J.; Coats, A.J.; Dalal, H.; Rees, K.; Singh, S.J.; et al. Exercise-based cardiac rehabilitation for adults with heart failure—2023 Cochrane systematic review and meta-analysis. Eur. J. Heart Fail. 2023, 25, 2263–2273. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- O’Connor, C.M.; Whellan, D.J.; Lee, K.L.; Keteyian, S.J.; Cooper, L.S.; Ellis, S.J.; Leifer, E.S.; Kraus, W.E.; Kitzman, D.W.; Blumenthal, J.A.; et al. Efficacy and safety of exercise training in patients with chronic heart failure: HF-ACTION randomized controlled trial. JAMA 2009, 301, 1439–1450. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kitai, T.; Kohsaka, S.; Kato, T.; Kato, E.; Sato, K.; Teramoto, K.; Yaku, H.; Akiyama, E.; Ando, M.; Izumi, C.; et al. JCS/JHFS 2025 guideline on diagnosis and treatment of heart failure. J. Card. Fail. 2025, 31, 1164–1322. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yamagata, K.; Hoshino, J.; Sugiyama, H.; Hanafusa, N.; Shibagaki, Y.; Komatsu, Y.; Konta, T.; Fujii, N.; Kanda, E.; Sofue, T.; et al. Clinical practice guideline for renal rehabilitation: Systematic reviews and recommendations of exercise therapies in patients with kidney diseases. Ren. Replace. Ther. 2019, 5, 28. [Google Scholar] [CrossRef] [Scilit]
- Bishop, N.C.; Burton, J.O.; Graham-Brown, M.P.M.; Stensel, D.J.; Viana, J.L.; Watson, E.L. Exercise and chronic kidney disease: Potential mechanisms underlying the physiological benefits. Nat. Rev. Nephrol. 2023, 19, 244–256. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhao, M.; Xiao, M.; Tan, Q.; Lyu, J.; Lu, F. The effect of aerobic exercise on oxidative stress in patients with chronic kidney disease: A systematic review and meta-analysis with trial sequential analysis. Ren. Fail. 2023, 45, 2252093. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Scrutinio, D.; Guida, P.; Carbonara, R.; Passantino, A. Cardiac rehabilitation for old-old patients with heart failure and severe functional impairment. Int. J. Cardiol. 2025, 418, 132605. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Baudry, G.; Pereira, O.; Duarte, K.; Ferreira, J.P.; Savarese, G.; Welter, A.; Tangre, P.; Lamiral, Z.; Agrinier, N.; Girerd, N. Risk of readmission and death after hospitalization for worsening heart failure: Role of post-discharge follow-up visits in a real-world study from the Grand Est Region of France. Eur. J. Heart Fail. 2024, 26, 342–354. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fried, L.P.; Tangen, C.M.; Walston, J.; Newman, A.B.; Hirsch, C.; Gottdiener, J.; Seeman, T.; Tracy, R.; Kop, W.J.; Burke, G.; et al. Frailty in older adults: Evidence for a phenotype. J. Gerontol. Ser. A Biol. Sci. Med. Sci. 2001, 56, M146–M156. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ohashi, K.; Matsue, Y.; Maeda, D.; Fujimoto, Y.; Kagiyama, N.; Sunayama, T.; Dotare, T.; Jujo, K.; Saito, K.; Kamiya, K.; et al. Impact of multidomain frailty on the mode of death in older patients with heart failure: A cohort study. Circ. Cardiovasc. Qual. Outcomes 2024, 17, e010416. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Maeda, D.; Matsue, Y.; Kagiyama, N.; Fujimoto, Y.; Sunayama, T.; Dotare, T.; Nakade, T.; Jujo, K.; Kamiya, K.; Saito, H.; et al. Clinical and prognostic utility of the Essential Frailty Toolset in older patients with heart failure. J. Am. Geriatr. Soc. 2025, 73, 3455–3463. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zheng, P.P.; Yao, S.M.; He, W.; Wan, Y.H.; Wang, H.; Yang, J.F. Frailty related all-cause mortality or hospital readmission among adults aged 65 and older with stage-B heart failure inpatients. BMC Geriatr. 2021, 21, 125. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- van Seben, R.; Covinsky, K.E.; Reichardt, L.A.; Aarden, J.J.; van der Schaaf, M.; van der Esch, M.; Engelbert, R.H.H.; Twisk, J.W.R.; Bosch, J.A.; Buurman, B.M. Insight into the posthospital syndrome: A 3-month longitudinal follow up on geriatric syndromes and their association with functional decline, readmission, and mortality. J. Gerontol. Ser. A Biol. Sci. Med. Sci. 2020, 75, 1403–1410. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dharmarajan, K.; Hsieh, A.F.; Lin, Z.; Bueno, H.; Ross, J.S.; Horwitz, L.I.; Barreto-Filho, J.A.; Kim, N.; Bernheim, S.M.; Suter, L.G.; et al. Diagnoses and timing of 30-day readmissions after hospitalization for heart failure, acute myocardial infarction, or pneumonia. JAMA 2013, 309, 355–363. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, Y.; Almirall-Sánchez, A.; Mockler, D.; Adrion, E.; Domínguez-Vivero, C.; Romero-Ortuño, R. Hospital-associated deconditioning: Not only physical, but also cognitive. Int. J. Geriatr. Psychiatry 2022, 37, 1–13. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Krumholz, H.M. Post-hospital syndrome—An acquired, transient condition of generalized risk. N. Engl. J. Med. 2013, 368, 100–102. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Schattner, A. Post-discharge syndrome in older adults. Int. J. Med. 2023, 116, 739–740. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hamazaki, N.; Kamiya, K.; Yamamoto, S.; Nozaki, K.; Ichikawa, T.; Matsuzawa, R.; Yamashita, M.; Uchida, S.; Maekawa, E.; Meguro, K.; et al. Associations between kidney function and outcomes of comprehensive cardiac rehabilitation in patients with heart failure. Clin. Res. Cardiol. 2022, 111, 253–263. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zelle, D.M.; Klaassen, G.; Bakker, S.J.L.; van Adrichem, E.; Corpeleijn, E.; Navis, G. Physical inactivity: A risk factor and target for intervention in renal care. Nat. Rev. Nephrol. 2017, 13, 152–168. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Thomas, R.J.; Beatty, A.L.; Beckie, T.M.; Brewer, L.C.; Brown, T.M.; Forman, D.E.; Franklin, B.A.; Keteyian, S.J.; Kitzman, D.W.; Regensteiner, J.G.; et al. Home-based cardiac rehabilitation: A scientific statement from the American Association of Cardiovascular and Pulmonary Rehabilitation, the American Heart Association, and the American College of Cardiology. Circulation 2019, 140, e69–e89. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hughes, J.W.; Berry, R.; Brown, T.M.; Carlin, B.; Drwal, K.; Keteyian, S.J.; Prince, D.Z.; Wu, W.C. Consensus statement on the virtual and remote delivery of cardiac and pulmonary rehabilitation and their components. J. Cardiopulm. Rehabil. Prev. 2025, 45, 387–396. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Scherrenberg, M.; Falter, M.; Abreu, A.; Aktaa, S.; Busnatu, S.; Casado-Arroyo, R.; Dendale, P.; Dilaveris, P.; Locati, E.T.; Marques-Sule, E.; et al. Standards for cardiac telerehabilitation. Eur. Heart J. 2025, 46, 3714–3737. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tamiya, N.; Noguchi, H.; Nishi, A.; Reich, M.R.; Ikegami, N.; Hashimoto, H.; Shibuya, K.; Kawachi, I.; Campbell, J.C. Population ageing and wellbeing: Lessons from Japan’s long-term care insurance policy. Lancet 2011, 378, 1183–1192. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yadav, K.; Lewis, R.J. Immortal time bias in observational studies. JAMA 2021, 325, 686–687. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hernán, M.A.; Robins, J.M. Using big data to emulate a target trial when a randomized trial is not available. Am. J. Epidemiol. 2016, 183, 758–764. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Funk, M.J.; Westreich, D.; Wiesen, C.; Stürmer, T.; Brookhart, M.A.; Davidian, M. Doubly robust estimation of causal effects. Am. J. Epidemiol. 2011, 173, 761–767. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Stuart, E.A. Matching methods for causal inference: A review and a look forward. Stat. Sci. 2010, 25, 1–21. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Popa, L.M.; Anderco, P.; Stoia, O.; Ichim, C.; Porr, C. The kidney in the shadow of cirrhosis: A critical review of renal failure. Biomedicines 2025, 13, 2775. [Google Scholar] [CrossRef] [Scilit] [PubMed]





| Before Propensity Score Matching | After Propensity Score Matching | |||||
|---|---|---|---|---|---|---|
| Non-PT | PT | p Value | Non-PT | PT | p Value | |
| n = 6115 | n = 244 | n = 244 | n = 244 | |||
| Age, years, mean (SD) | 83.0 (7.5) | 77.1 (6.6) | <0.001 | 76.9 (7.7) | 77.1 (6.6) | 0.767 |
| Male sex, n (%) | 3078 (50.3) | 150 (61.5) | 0.001 | 158 (64.8) | 150 (61.5) | 0.511 |
| Body mass index, kg/m2, mean (SD) | 22.7 (4.9) | 23.6 (4.4) | 0.003 | 23.9 (5.1) | 23.6 (4.4) | 0.462 |
| Current smoker, n (%) | 783 (12.8) | 55 (22.5) | <0.001 | 64 (26.2) | 55 (22.5) | 0.399 |
| NYHA functional class, n (%) | ||||||
| I | 218 (3.6) | 8 (3.3) | 0.831 | 11 (4.5) | 8 (3.3) | 0.649 |
| II | 1156 (18.9) | 42 (17.2) | 44 (18.0) | 42 (17.2) | ||
| III | 2532 (41.4) | 99 (40.6) | 107 (43.9) | 99 (40.6) | ||
| IV | 2199 (36.0) | 95 (38.9) | 82 (33.6) | 95 (38.9) | ||
| History of heart failure, n (%) | ||||||
| None | 3588 (58.7) | 152 (62.3) | 0.016 | 146 (59.8) | 152 (62.3) | 0.159 |
| >1 year before | 1769 (28.9) | 52 (21.3) | 68 (27.9) | 52 (21.3) | ||
| ≤1 year before | 758 (12.4) | 40 (16.4) | 30 (12.3) | 40 (16.4) | ||
| Chronic kidney disease stage, n (%) | ||||||
| 3a | 1901 (31.1) | 92 (37.7) | 0.010 | 91 (37.3) | 92 (37.7) | 0.951 |
| 3b | 2170 (35.5) | 92 (37.7) | 90 (36.9) | 92 (37.7) | ||
| 4–5 | 2044 (33.4) | 60 (24.6) | 63 (25.8) | 60 (24.6) | ||
| Comorbidities, n (%) | ||||||
| Hypertension | 4307 (70.4) | 153 (62.7) | 0.012 | 167 (68.4) | 153 (62.7) | 0.216 |
| Diabetes mellitus | 2145 (35.1) | 110 (45.1) | 0.002 | 122 (50.0) | 110 (45.1) | 0.319 |
| Dyslipidemia | 1985 (32.5) | 101 (41.4) | 0.004 | 114 (46.7) | 101 (41.4) | 0.274 |
| Chronic obstructive pulmonary disease | 431 (7.0) | 16 (6.6) | 0.868 | 15 (6.1) | 16 (6.6) | >0.99 |
| Cerebrovascular disease | 964 (15.8) | 35 (14.3) | 0.611 | 41 (16.8) | 35 (14.3) | 0.532 |
| Cancer | 1019 (16.7) | 25 (10.2) | 0.010 | 21 (8.6) | 25 (10.2) | 0.642 |
| Musculoskeletal disorders | 1643 (26.9) | 38 (15.6) | <0.001 | 35 (14.3) | 38 (15.6) | 0.800 |
| Dementia | 2395 (39.2) | 61 (25.0) | <0.001 | 53 (21.7) | 61 (25.0) | 0.456 |
| Peripheral arterial disease | 374 (6.1) | 13 (5.3) | 0.784 | 14 (5.7) | 13 (5.3) | >0.99 |
| Etiology of heart failure, n (%) | ||||||
| Ischemic heart disease | 1840 (30.1) | 62 (25.4) | 0.135 | 66 (27.0) | 62 (25.4) | 0.758 |
| Valvular heart disease | 2368 (38.7) | 75 (30.7) | 0.014 | 76 (31.1) | 75 (30.7) | >0.99 |
| Cardiomyopathy | 634 (10.4) | 55 (22.5) | <0.001 | 44 (18.0) | 55 (22.5) | 0.260 |
| Arrhythmia | 3057 (50.0) | 137 (56.1) | 0.069 | 127 (52.0) | 137 (56.1) | 0.414 |
| Echocardiography, mean (SD) | ||||||
| LVEF, % | 47.8 (16.4) | 44.4 (17.2) | 0.001 | 42.8 (17.5) | 44.4 (17.2) | 0.317 |
| Left atrial diameter, mm | 44.7 (9.0) | 45.0 (10.0) | 0.659 | 46.1 (9.6) | 45.0 (10.0) | 0.379 |
| HFrEF, n (%) | 3088 (50.5) | 145 (59.4) | 0.008 | 154 (63.1) | 145 (59.4) | 0.457 |
| Blood biochemistry tests | ||||||
| BNP, pg/mL, median [Q1, Q3] | 576.1 [326.0, 1025.2] | 525.4 [267.2, 884.2] | 0.123 | 542.9 [342.4, 1038.2] | 525.4 [267.2, 884.2] | 0.208 |
| Serum creatinine, mg/dL, mean (SD) | 1.53 (0.90) | 1.48 (0.82) | 0.336 | 1.44 (0.63) | 1.48 (0.82) | 0.618 |
| eGFR, mL/min/1.73 m2, mean (SD) | 36.3 (13.5) | 38.8 (12.7) | 0.004 | 38.9 (12.8) | 38.8 (12.7) | 0.942 |
| BUN, mg/dL, mean (SD) | 31.2 (16.2) | 28.2 (14.0) | 0.005 | 27.9 (14.2) | 28.2 (14.0) | 0.824 |
| Serum albumin, g/dL, mean (SD) | 3.5 (0.5) | 3.6 (0.5) | <0.001 | 3.6 (0.5) | 3.7 (0.5) | 0.672 |
| Hemoglobin, g/dL, mean (SD) | 11.3 (2.2) | 12.5 (2.2) | <0.001 | 12.5 (2.5) | 12.5 (2.2) | 0.774 |
| Sodium, mmol/L, mean (SD) | 139.7 (4.3) | 139.2 (4.2) | 0.104 | 139.6 (4.2) | 139.2 (4.2) | 0.335 |
| Medication use, n (%) | ||||||
| ACE inhibitor/ARB/ARNI | 3354 (54.8) | 161 (66.0) | 0.001 | 174 (71.3) | 161 (66.0) | 0.242 |
| Mineralocorticoid receptor antagonist | 3327 (54.4) | 171 (70.1) | <0.001 | 164 (67.2) | 171 (70.1) | 0.558 |
| β-blocker | 4048 (66.2) | 190 (77.9) | <0.001 | 192 (78.7) | 190 (77.9) | 0.913 |
| SGLT2 inhibitor | 970 (15.9) | 73 (29.9) | <0.001 | 81 (33.2) | 73 (29.9) | 0.495 |
| Diuretic | 5255 (85.9) | 204 (83.6) | 0.336 | 207 (84.8) | 204 (83.6) | 0.804 |
| Kihon Checklist score, median [Q1, Q3] | 10.00 [4.00, 14.00] | 7.50 [4.00, 11.00] | <0.001 | 7.00 [2.00, 11.00] | 7.50 [4.00, 11.00] | 0.096 |
| Frailty, n (%) | 4010 (65.6) | 112 (45.9) | <0.001 | 108 (44.3) | 112 (45.9) | 0.785 |
| Living alone, n (%) | 1626 (26.6) | 63 (25.8) | 0.847 | 67 (27.5) | 63 (25.8) | 0.759 |
| Barthel Index at discharge, mean (SD) | 82 (23) | 98 (5) | <0.001 | 96 (7) | 98 (5) | 0.121 |
| Grip strength, kg, mean (SD) | 16.1 (9.7) | 22.3 (9.3) | <0.001 | 21.6 (10.8) | 22.3 (9.3) | 0.449 |
| Comfortable walking speed, m/s, mean (SD) | 0.74 (0.27) | 0.98 (0.25) | <0.001 | 0.94 (0.24) | 0.98 (0.25) | 0.347 |
| Number of outpatient physical therapy sessions, n (%) | ||||||
| 0 sessions | 6115 (100) | 0 (0) | 244 (100) | 0 (0) | ||
| 1–4 sessions | 0 (0) | 60 (24.6) | 0 (0) | 60 (24.6) | ||
| 5–9 sessions | 0 (0) | 48 (19.7) | 0 (0) | 48 (19.7) | ||
| ≥10 sessions | 0 (0) | 136 (55.7) | 0 (0) | 136 (55.7) | ||
| Outcome | ||||||
| All-cause mortality | 1089 (17.8) | 10 (4.1) | 21 (8.6) | 10 (4.1) | ||
| CV rehospitalization | 1531 (25.0) | 55 (22.5) | 67 (27.5) | 55 (22.5) | ||
| Composite outcome | 2267 (37.1) | 58 (23.8) | 82 (33.6) | 58 (23.8) | ||
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Sato, T.; Morisawa, T.; Saitoh, M.; Iwata, K.; Kato, M.; Sakurada, K.; Kono, Y.; Suzuki, D.; Takahashi, T. Association Between Physical Therapy and Mortality in Older Patients with Heart Failure and Chronic Kidney Disease. J. Clin. Med. 2026, 15, 7043. https://doi.org/10.3390/jcm15187043
Sato T, Morisawa T, Saitoh M, Iwata K, Kato M, Sakurada K, Kono Y, Suzuki D, Takahashi T. Association Between Physical Therapy and Mortality in Older Patients with Heart Failure and Chronic Kidney Disease. Journal of Clinical Medicine. 2026; 15(18):7043. https://doi.org/10.3390/jcm15187043
Chicago/Turabian StyleSato, Toshimi, Tomoyuki Morisawa, Masakazu Saitoh, Kentaro Iwata, Michitaka Kato, Koji Sakurada, Yuji Kono, Daisuke Suzuki, and Tetsuya Takahashi. 2026. "Association Between Physical Therapy and Mortality in Older Patients with Heart Failure and Chronic Kidney Disease" Journal of Clinical Medicine 15, no. 18: 7043. https://doi.org/10.3390/jcm15187043
APA StyleSato, T., Morisawa, T., Saitoh, M., Iwata, K., Kato, M., Sakurada, K., Kono, Y., Suzuki, D., & Takahashi, T. (2026). Association Between Physical Therapy and Mortality in Older Patients with Heart Failure and Chronic Kidney Disease. Journal of Clinical Medicine, 15(18), 7043. https://doi.org/10.3390/jcm15187043

