Pre-Transplant C-Reactive Protein ≥ 20 mg/L Predicts Infection-Related Mortality After Heart Transplantation
Abstract
1. Introduction
2. Patients and Methods
2.1. Patients
2.2. Follow-Up
2.3. Post-Transplant Pharmacotherapy
2.4. Statistical Analysis
3. Results
3.1. Demographic and Clinical Characteristics
3.2. Post-Transplant Medications
3.3. Post-Transplant Primary Outcome
3.4. Post-Transplant Secondary Outcomes
3.5. Sensitivity Analysis
4. Discussion
4.1. Pre-Transplant CRP and Mortality After Heart Transplantation
4.2. Pre-Transplant CRP and Immunosuppressive Drug Therapy
4.3. Pre-Transplant CRP and Management After Heart Transplantation
4.4. Study Limitations
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- McDonagh, T.A.; Metra, M.; Adamo, M.; Gardner, R.S.; Baumbach, A.; Böhm, M.; Burri, H.; Butler, J.; Čelutkienė, J.; Chioncel, O.; et al. 2021 ESC Guidelines for the diagnosis and treatment of acute and chronic heart failure. Eur. Heart J. 2021, 42, 3599–3726. [Google Scholar] [CrossRef]
- Stehlik, J.; Kobashigawa, J.; Hunt, S.A.; Reichenspurner, H.; Kirklin, J.K. Honoring 50 Years of Clinical Heart Transplantation in Circulation: In-Depth State-of-the-Art Review. Circulation 2018, 137, 71–87. [Google Scholar] [CrossRef]
- Zhu, Y.; Lingala, B.; Baiocchi, M.; Toro Arana, V.; Williams, K.M.; Shudo, Y.; Oyer, P.E.; Woo, Y.J. The Stanford experience of heart transplantation over five decades. Eur. Heart J. 2021, 42, 4934–4943. [Google Scholar] [CrossRef]
- Hunt, S.A. Taking heart-cardiac transplantation past, present, and future. N. Engl. J. Med. 2006, 355, 231–235. [Google Scholar] [CrossRef]
- Awad, M.A.; Shah, A.; Griffith, B.P. Current status and outcomes in heart transplantation: A narrative review. Rev. Cardiovasc. Med. 2022, 23, 11. [Google Scholar] [CrossRef]
- Ortega-Legaspi, J.M.; Bravo, P.E. Diagnosis and management of cardiac allograft vasculopathy. Heart 2021, 108, 586–592. [Google Scholar] [CrossRef] [PubMed]
- Crespo-Leiro, M.G.; Alonso-Pulpón, L.; Vázquez de Prada, J.A.; Almenar, L.; Arizón, J.M.; Brossa, V.; Delgado, J.F.; Fernandez-Yañez, J.; Manito, N.; Rábago, G.; et al. Malignancy after heart transplantation: Incidence, prognosis and risk factors. Am. J. Transplant. 2008, 8, 1031–1039. [Google Scholar] [CrossRef]
- Moayedi, Y.; Gomez, C.A.; Fan, C.P.S.; Miller, R.J.H.; Bunce, P.E.; Tremblay-Gravel, M.; Foroutan, F.; Manlhiot, C.; Yee, J.; Shullo, M.A.; et al. Infectious complications after heart transplantation in patients screened with gene expression profiling. J. Heart Lung Transplant. 2019, 38, 611–618. [Google Scholar] [CrossRef] [PubMed]
- Pons, S.; Sonneville, R.; Bouadma, L.; Styfalova, L.; Ruckly, S.; Neuville, M.; Radjou, A.; Lebut, J.; Dilly, M.P.; Mourvillier, B.; et al. Infectious complications following heart transplantation in the era of high-priority allocation and extracorporeal membrane oxygenation. Ann. Intensive Care 2019, 9, 17. [Google Scholar] [CrossRef] [PubMed]
- Pata, R.; Kristeva, J.; Kosuru, B. Pneumonia in Transplant Recipients: A Comprehensive Review of Diagnosis and Management. Cureus 2024, 16, e73669. [Google Scholar] [CrossRef]
- Jordan, A.M.; Tatum, R.; Ahmad, D.; Patel, S.V.; Maynes, E.J.; Weber, M.P.; Moss, S.; Royer, T.L.; Tchantchaleishvili, V.; Massey, H.T.; et al. Infective endocarditis following heart transplantation: A systematic review. Transplant. Rev. 2022, 36, 100672. [Google Scholar] [CrossRef]
- Siani, A.; Perone, F.; Costantini, P.; Rodolfi, S.; Muscogiuri, G.; Sironi, S.; Carriero, S.; Pavon, A.G.; van der Bilt, I.; van Rosendael, P.; et al. Aortic regurgitation: A multimodality approach. J. Clin. Ultrasound 2022, 50, 1041–1050. [Google Scholar] [CrossRef]
- Burger, P.M.; Koudstaal, S.; Mosterd, A.; Fiolet, A.T.L.; Teraa, M.; van der Meer, M.G.; Cramer, M.J.; Visseren, F.L.J.; Ridker, P.M.; Dorresteijn, J.A.N.; et al. C-Reactive Protein and Risk of Incident Heart Failure in Patients With Cardiovascular Disease. J. Am. Coll. Cardiol. 2023, 82, 414–426. [Google Scholar] [CrossRef] [PubMed]
- Varagunam, M.; Finney, H.; Trevitt, R.; Sharples, E.; McCloskey, D.J.; Sinnott, P.J.; Raftery, M.J.; Yaqoob, M.M. Pretransplantation levels of C-reactive protein predict all-cause and cardiovascular mortality, but not graft outcome, in kidney transplant recipients. Am. J. Kidney Dis. 2004, 43, 502–507. [Google Scholar] [CrossRef]
- Kim, Y.K.; Kim, S.H.; Lee, S.D.; Hong, S.K.; Park, S.J. Pretransplant serum levels of C-reactive protein predict prognoses in patients undergoing liver transplantation for hepatocellular carcinoma. Transplant. Proc. 2015, 47, 686–693. [Google Scholar] [CrossRef] [PubMed]
- Wu, P.; Liang, W.; Chen, X.; Chen, L.; Yang, X.; Yan, Z.; Wang, W. Pretransplant C-reactive protein as a prognostic marker in allogeneic stem cell transplantation: A PRISMA-compliant meta-analysis. Medicine 2019, 98, e14474. [Google Scholar] [CrossRef]
- Huma, L.; Suciu, H.; Avram, C.; Suteu, R.A.; Danilesco, A.; Baba, D.F.; Moldovan, D.A.; Sin, A.I. Implications of Preoperative C-Reactive Protein Levels in Heart Transplant Patients-A Single-Center Retrospective Study. J. Clin. Med. 2024, 13, 7466. [Google Scholar] [CrossRef]
- Mehra, M.R.; Kobashigawa, J.; Starling, R.; Russell, S.; Uber, P.A.; Parameshwar, J.; Mohacsi, P.; Augustine, S.; Aaronson, K.; Barr, M. Listing criteria for heart transplantation: International Society for Heart and Lung Transplantation guidelines for the care of cardiac transplant candidates—2006. J. Heart Lung Transplant. 2006, 25, 1024–1042. [Google Scholar] [CrossRef] [PubMed]
- Mehra, M.R.; Canter, C.E.; Hannan, M.M.; Semigran, M.J.; Uber, P.A.; Baran, D.A.; Danziger-Isakov, L.; Kirklin, J.K.; Kirk, R.; Kushwaha, S.S.; et al. The 2016 International Society for Heart Lung Transplantation listing criteria for heart transplantation: A 10-year update. J. Heart Lung Transplant. 2016, 35, 1–23. [Google Scholar] [CrossRef]
- Peled, Y.; Ducharme, A.; Kittleson, M.; Bansal, N.; Stehlik, J.; Amdani, S.; Saeed, D.; Cheng, R.; Clarke, B.; Dobbels, F.; et al. International Society for Heart and Lung Transplantation Guidelines for the Evaluation and Care of Cardiac Transplant Candidates-2024. J. Heart Lung Transplant. 2024, 43, 1529–1628.e54. [Google Scholar] [CrossRef]
- Heil, K.M.; Rivinius, R.; Helmschrott, M.; Rahm, A.K.; Ehlermann, P.; Frey, N.; Darche, F.F. Increased Pre-Transplant Carotid Intima-Media Thickness Is Associated with Early Post-Transplant Atrial Fibrillation, Stroke, and Reduced Survival After Heart Transplantation. Life 2025, 15, 1539. [Google Scholar] [CrossRef]
- Heil, K.M.; Rivinius, R.; Helmschrott, M.; Rahm, A.K.; Ehlermann, P.; Frey, N.; Darche, F.F. Pre-Transplant Heavy Smoking Is Associated with Reduced Survival After Heart Transplantation Due to Infection and Malignancy. J. Clin. Med. 2025, 14, 6024. [Google Scholar] [CrossRef] [PubMed]
- Rivinius, R.; Helmschrott, M.; Ruhparwar, A.; Schmack, B.; Darche, F.F.; Thomas, D.; Bruckner, T.; Katus, H.A.; Ehlermann, P.; Doesch, A.O. COPD in patients after heart transplantation is associated with a prolonged hospital stay, early posttransplant atrial fibrillation, and impaired posttransplant survival. Clin. Epidemiol. 2018, 10, 1359–1369. [Google Scholar] [CrossRef]
- Eccles, S.; Pincus, C.; Higgins, B.; Woodhead, M.; Guideline Development Group. Diagnosis and management of community and hospital acquired pneumonia in adults: Summary of NICE guidance. BMJ 2014, 349, g6722. [Google Scholar] [CrossRef] [PubMed]
- Biasucci, L.M.; Liuzzo, G.; Grillo, R.L.; Caligiuri, G.; Rebuzzi, A.G.; Buffon, A.; Summaria, F.; Ginnetti, F.; Fadda, G.; Maseri, A. Elevated levels of C-reactive protein at discharge in patients with unstable angina predict recurrent instability. Circulation 1999, 99, 855–860. [Google Scholar] [CrossRef]
- Haverkate, F.; Thompson, S.G.; Pyke, S.D.; Gallimore, J.R.; Pepys, M.B. Production of C-reactive protein and risk of coronary events in stable and unstable angina. European Concerted Action on Thrombosis and Disabilities Angina Pectoris Study Group. Lancet 1997, 349, 462–466. [Google Scholar] [CrossRef] [PubMed]
- Liuzzo, G.; Biasucci, L.M.; Gallimore, J.R.; Grillo, R.L.; Rebuzzi, A.G.; Pepys, M.B.; Maseri, A. The prognostic value of C-reactive protein and serum amyloid a protein in severe unstable angina. N. Engl. J. Med. 1994, 331, 417–424. [Google Scholar] [CrossRef]
- Kirklin, J.K.; Naftel, D.C.; Bourge, R.C.; McGiffin, D.C.; Hill, J.A.; Rodeheffer, R.J.; Jaski, B.E.; Hauptman, P.J.; Weston, M.; White-Williams, C. Evolving trends in risk profiles and causes of death after heart transplantation: A ten-year multi-institutional study. J. Thorac. Cardiovasc. Surg. 2003, 125, 881–890. [Google Scholar] [CrossRef]
- Schaenman, J.; Goldwater, D. The aging transplant population and immunobiology: Any therapeutic implication? Curr. Opin. Organ. Transplant. 2020, 25, 255–260. [Google Scholar] [CrossRef]
- Giovannico, L.; Santobuono, V.E.; Fischetti, G.; Mazzone, F.; Parigino, D.; Savino, L.; Alfeo, M.; Milano, A.D.; Guaricci, A.I.; Ciccone, M.M.; et al. Kinetics of Procalcitonin, CRP, IL-6, and Presepsin in Heart Transplant Patients Undergoing Induction with Thymoglobulin (rATG). J. Clin. Med. 2025, 14, 5369. [Google Scholar] [CrossRef]
- Drozd, M.; Pujades-Rodriguez, M.; Morgan, A.W.; Lillie, P.J.; Witte, K.K.; Kearney, M.T.; Cubbon, R.M. Systemic Inflammation Is Associated With Future Risk of Fatal Infection: An Observational Cohort Study. J. Infect. Dis. 2022, 226, 554–562. [Google Scholar] [CrossRef]
- Helmschrott, M.; Rivinius, R.; Ruhparwar, A.; Schmack, B.; Erbel, C.; Gleissner, C.A.; Akhavanpoor, M.; Frankenstein, L.; Ehlermann, P.; Bruckner, T.; et al. Advantageous effects of immunosuppression with tacrolimus in comparison with cyclosporine A regarding renal function in patients after heart transplantation. Drug Des. Dev. Ther. 2015, 9, 1217–1224. [Google Scholar] [CrossRef][Green Version]
- Helmschrott, M.; Rivinius, R.; Bruckner, T.; Katus, H.A.; Doesch, A.O. Renal function in heart transplant patients after switch to combined mammalian target of rapamycin inhibitor and calcineurin inhibitor therapy. Drug Des. Dev. Ther. 2017, 11, 1673–1680. [Google Scholar] [CrossRef][Green Version]
- Lund, L.H.; Edwards, L.B.; Kucheryavaya, A.Y.; Dipchand, A.I.; Benden, C.; Christie, J.D.; Dobbels, F.; Kirk, R.; Rahmel, A.O.; Yusen, R.D.; et al. The Registry of the International Society for Heart and Lung Transplantation: Thirtieth Official Adult Heart Transplant Report—2013; focus theme: Age. J. Heart Lung Transplant. 2013, 32, 951–964. [Google Scholar] [CrossRef] [PubMed]
- Lund, L.H.; Edwards, L.B.; Kucheryavaya, A.Y.; Benden, C.; Christie, J.D.; Dipchand, A.I.; Dobbels, F.; Goldfarb, S.B.; Levvey, B.J.; Meiser, B.; et al. The registry of the International Society for Heart and Lung Transplantation: Thirty-first official adult heart transplant report—2014; focus theme: Retransplantation. J. Heart Lung Transplant. 2014, 33, 996–1008. [Google Scholar] [CrossRef]
- Eisenberg, M.S.; Chen, H.J.; Warshofsky, M.K.; Sciacca, R.R.; Wasserman, H.S.; Schwartz, A.; Rabbani, L.E. Elevated levels of plasma C-reactive protein are associated with decreased graft survival in cardiac transplant recipients. Circulation 2000, 102, 2100–2104. [Google Scholar] [CrossRef] [PubMed]
- Labarrere, C.A.; Woods, J.R.; Hardin, J.W.; Jaeger, B.R.; Zembala, M.; Deng, M.C.; Kassab, G.S. Early inflammatory markers are independent predictors of cardiac allograft vasculopathy in heart-transplant recipients. PLoS ONE 2014, 9, e113260. [Google Scholar] [CrossRef] [PubMed]
- Battes, L.C.; Caliskan, K.; Rizopoulos, D.; Constantinescu, A.A.; Robertus, J.L.; Akkerhuis, M.; Manintveld, O.C.; Boersma, E.; Kardys, I. Repeated measurements of NT-pro-B-type natriuretic peptide, troponin T or C-reactive protein do not predict future allograft rejection in heart transplant recipients. Transplantation 2015, 99, 580–585. [Google Scholar] [CrossRef]
- Sezgin, Y.; Bulut, Ş.; Bozalıoğlu, S.; Sezgin, A. Levels of High-Sensitivity C-Reactive Protein in Heart Transplant Patients With and Without Periodontitis. Exp. Clin. Transplant. 2019, 17, 123–127. [Google Scholar] [CrossRef]




| Parameter | All Patients (n = 418) | CRP < 20 mg/L Before HTX (n = 316) | CRP ≥ 20 mg/L Before HTX (n = 102) | Difference | 95% CI | p-Value |
|---|---|---|---|---|---|---|
| Recipient data | ||||||
| Age (years), mean ± SD | 52.1 ± 10.2 | 52.0 ± 10.0 | 52.4 ± 10.7 | 0.4 | −1.9–2.7 | 0.696 |
| Male sex, n (%) | 317 (75.8%) | 236 (74.7%) | 81 (79.4%) | 4.7% | −4.5–13.9% | 0.332 |
| BMI (kg/m2), mean ± SD | 25.3 ± 4.3 | 25.2 ± 4.4 | 25.5 ± 4.1 | 0.3 | −0.6–1.2 | 0.489 |
| Arterial hypertension, n (%) | 231 (55.3%) | 174 (55.1%) | 57 (55.9%) | 0.8% | −10.3–11.9% | 0.885 |
| Dyslipidemia, n (%) | 267 (63.9%) | 203 (64.2%) | 64 (62.7%) | 1.5% | −9.3–12.3% | 0.785 |
| Diabetes mellitus, n (%) | 131 (31.3%) | 94 (29.7%) | 37 (36.3%) | 6.6% | −4.0–17.2% | 0.217 |
| Peripheral artery disease, n (%) | 35 (8.4%) | 26 (8.2%) | 9 (8.8%) | 0.6% | −5.7–6.9% | 0.850 |
| COPD, n (%) | 105 (25.1%) | 73 (23.1%) | 32 (31.4%) | 8.3% | −1.8–18.4% | 0.094 |
| Chronic kidney disease ^, n (%) | 230 (55.0%) | 161 (50.9%) | 69 (67.6%) | 16.7% | 6.1–27.3% | 0.003 * |
| eGFR (ml/min/1.73 m2), mean ± SD | 59.6 ± 23.5 | 61.8 ± 23.2 | 52.7 ± 23.3 | 9.1 | 3.9–14.3 | 0.001 * |
| Open-heart surgery before HTX | ||||||
| Overall open-heart surgery, n (%) | 132 (31.6%) | 95 (30.1%) | 37 (36.3%) | 6.2% | −4.4–16.8% | 0.241 |
| CABG surgery, n (%) | 49 (11.7%) | 39 (12.3%) | 10 (9.8%) | 2.5% | −4.3–9.3% | 0.488 |
| Other surgery °, n (%) | 43 (10.3%) | 29 (9.2%) | 14 (13.7%) | 4.5% | −2.9–11.9% | 0.189 |
| VAD surgery, n (%) | 52 (12.4%) | 35 (11.1%) | 17 (16.7%) | 5.6% | −2.4–13.6% | 0.137 |
| Primary indication for HTX | ||||||
| Ischemic CMP, n (%) | 136 (32.5%) | 108 (34.2%) | 28 (27.4%) | 6.8% | −3.3–16.9% | 0.207 |
| Non-ischemic CMP, n (%) | 209 (50.0%) | 151 (47.8%) | 58 (56.9%) | 9.1% | −2.0–20.2% | 0.111 |
| Valvular heart disease, n (%) | 16 (3.8%) | 9 (2.8%) | 7 (6.9%) | 4.1% | −1.1–9.3% | 0.066 |
| Cardiac amyloidosis, n (%) | 57 (13.7%) | 48 (15.2%) | 9 (8.8%) | 6.4% | −0.4–13.2% | 0.103 |
| Donor data | ||||||
| Age (years), mean ± SD | 44.3 ± 12.7 | 44.4 ± 12.4 | 43.8 ± 13.6 | 0.6 | −2.4–3.6 | 0.694 |
| Male sex, n (%) | 143 (34.2%) | 103 (32.6%) | 40 (39.2%) | 6.6% | −4.2–17.4% | 0.220 |
| BMI (kg/m2), mean ± SD | 25.1 ± 4.5 | 25.1 ± 4.7 | 25.1 ± 4.1 | 0.0 | −1.0–1.0 | 0.999 |
| Donor–recipient sex mismatch | ||||||
| Mismatch, n (%) | 205 (49.0%) | 158 (50.0%) | 47 (46.0%) | 4.0% | −7.1–15.1% | 0.491 |
| Donor (m) to recipient (f), n (%) | 15 (3.6%) | 12 (3.8%) | 3 (2.9%) | 0.9% | −3.0–4.8% | 0.686 |
| Donor (f) to recipient (m), n (%) | 190 (45.4%) | 146 (46.2%) | 44 (43.1%) | 3.1% | −8.0–14.2% | 0.589 |
| Perioperative data | ||||||
| Ischemic time (min), mean ± SD | 251.3 ± 59.1 | 247.6 ± 57.9 | 262.6 ± 61.7 | 15.0 | 1.4–28.6 | 0.032 * |
| Biatrial anastomosis, n (%) | 5 (1.2%) | 4 (1.3%) | 1 (1.0%) | 0.3% | −2.0–2.6% | 0.818 |
| Bicaval anastomosis, n (%) | 184 (44.0%) | 141 (44.6%) | 43 (42.1%) | 2.5% | −8.5–13.5% | 0.663 |
| Total orthotopic anastomosis, n (%) | 229 (54.8%) | 171 (54.1%) | 58 (56.9%) | 2.8% | −8.3–13.9% | 0.628 |
| Parameter | All Patients (n = 418) | CRP < 20 mg/L Before HTX (n = 316) | CRP ≥ 20 mg/L Before HTX (n = 102) | Difference | 95% CI | p-Value |
|---|---|---|---|---|---|---|
| Immunosuppressive drug therapy | ||||||
| Cyclosporine A, n (%) | 126 (30.1%) | 100 (31.6%) | 26 (25.5%) | 6.1% | −3.8–16.0% | 0.239 |
| Tacrolimus, n (%) | 292 (69.9%) | 216 (68.4%) | 76 (74.5%) | 6.1% | −3.8–16.0% | 0.239 |
| Azathioprine, n (%) | 46 (11.0%) | 37 (11.7%) | 9 (8.8%) | 2.9% | −3.6–9.4% | 0.418 |
| Mycophenolic acid, n (%) | 372 (89.0%) | 279 (88.3%) | 93 (91.2%) | 2.9% | −3.6–9.4% | 0.418 |
| Steroids, n (%) | 418 (100.0%) | 316 (100.0%) | 102 (100.0%) | 0.0% | n. a. | n. a. |
| Concomitant medications | ||||||
| ASA, n (%) | 59 (14.1%) | 47 (14.9%) | 12 (11.8%) | 3.1% | −4.3–10.5% | 0.433 |
| Beta blocker, n (%) | 93 (22.2%) | 75 (23.7%) | 18 (17.6%) | 6.1% | −2.7–14.9% | 0.199 |
| Ivabradine, n (%) | 61 (14.6%) | 43 (13.6%) | 18 (17.6%) | 4.0% | −4.3–12.3% | 0.315 |
| Calcium channel blocker, n (%) | 128 (30.6%) | 100 (31.6%) | 28 (27.5%) | 4.1% | −6.0–14.2% | 0.424 |
| ACE inhibitor/ARB, n (%) | 175 (41.9%) | 139 (44.0%) | 36 (35.3%) | 8.7% | −2.1–19.5% | 0.122 |
| Diuretic, n (%) | 418 (100.0%) | 316 (100.0%) | 102 (100.0%) | 0.0% | n. a. | n. a. |
| Statin, n (%) | 240 (57.4%) | 188 (59.5%) | 52 (51.0%) | 8.5% | −2.6–19.6% | 0.131 |
| Oral anti-diabetic therapy, n (%) | 72 (17.2%) | 51 (16.1%) | 21 (20.6%) | 4.5% | −4.3–13.3% | 0.301 |
| Insulin therapy, n (%) | 64 (15.3%) | 45 (14.2%) | 19 (18.6%) | 4.4% | −4.1–12.9% | 0.285 |
| Gastric protection drug †, n (%) | 418 (100.0%) | 316 (100.0%) | 102 (100.0%) | 0.0% | n. a. | n. a. |
| Parameter | All Patients (n = 418) | CRP < 20 mg/L Before HTX (n = 316) | CRP ≥ 20 mg/L Before HTX (n = 102) | Difference | 95% CI | p-Value |
|---|---|---|---|---|---|---|
| 30-day mortality after HTX, n (%) | 28 (6.7%) | 16 (5.1%) | 12 (11.8%) | 6.7% | 0.1–13.3% | 0.019 * |
| 1-year mortality after HTX, n (%) | 95 (22.7%) | 55 (17.4%) | 40 (39.2%) | 21.8% | 11.4–32.2% | <0.001 * |
| 2-year mortality after HTX, n (%) | 116 (27.8%) | 73 (23.1%) | 43 (42.2%) | 19.1% | 8.4–29.8% | <0.001 * |
| 5-year mortality after HTX, n (%) | 144 (34.4%) | 96 (30.4%) | 48 (47.1%) | 16.7% | 5.8–27.6% | 0.002 * |
| Parameter | All Patients (n = 418) | CRP < 20 mg/L Before HTX (n = 316) | CRP ≥ 20 mg/L Before HTX (n = 102) | Difference | 95% CI | p-Value |
|---|---|---|---|---|---|---|
| Graft failure, n (%) | 40 (9.6%) | 29 (9.2%) | 11 (10.8%) | 1.6% | −5.2–8.4% | 0.631 |
| Acute rejection, n (%) | 5 (1.2%) | 4 (1.3%) | 1 (1.0%) | 0.3% | −2.0–2.6% | 0.818 |
| Infection/Sepsis, n (%) | 79 (18.9%) | 50 (15.8%) | 29 (28.4%) | 12.6% | 3.0–22.2% | 0.005 * |
| Pulmonary infection, n (%) | 50 (12.0%) | 30 (9.5%) | 20 (19.6%) | 10.1% | 1.7–18.5% | 0.006 * |
| Abdominal infection, n (%) | 29 (6.9%) | 20 (6.3%) | 9 (8.8%) | 2.5% | −3.6–8.6% | 0.389 |
| Malignancy, n (%) | 9 (2.1%) | 7 (2.2%) | 2 (2.0%) | 0.2% | −3.0–3.4% | 0.878 |
| Thromboembolic event/bleeding, n (%) | 11 (2.6%) | 6 (1.9%) | 5 (4.9%) | 3.0% | −1.5–7.5% | 0.099 |
| All causes, n (%) | 144 (34.4%) | 96 (30.4%) | 48 (47.1%) | 16.7% | 5.8–27.6% | 0.002 * |
| Parameter | Hazard Ratio | 95% CI | p-Value |
|---|---|---|---|
| Chronic kidney disease ^ (in total) | 1.337 | 0.808–2.213 | 0.258 |
| eGFR (ml/min/1.73 m2) | 0.993 | 0.982–1.004 | 0.195 |
| Ischemic time (min) | 1.002 | 0.999–1.005 | 0.168 |
| CRP ≥ 20 mg/L before HTX (in total) | 1.630 | 1.144–2.323 | 0.007 * |
| Parameter | All Patients (n = 418) | CRP < 20 mg/L Before HTX (n = 316) | CRP ≥ 20 mg/L Before HTX (n = 102) | Difference | 95% CI | p-Value |
|---|---|---|---|---|---|---|
| 30-day atrial fibrillation after HTX, n (%) | 58 (13.9%) | 42 (13.3%) | 16 (15.7%) | 2.4% | −5.6–10.4% | 0.543 |
| 30-day rejection episode after HTX, n (%) | 53 (12.7%) | 43 (13.6%) | 10 (9.8%) | 3.8% | −3.1–10.7% | 0.315 |
| 30-day TIA after HTX, n (%) | 0 (0.0%) | 0 (0.0%) | 0 (0.0%) | 0.0% | n. a. | n. a. |
| 30-day stroke after HTX, n (%) | 15 (3.6%) | 9 (2.8%) | 6 (5.9%) | 3.1% | −1.8–8.0% | 0.152 |
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.
Share and Cite
Helmschrott, M.; Heil, K.M.; Rivinius, R.; Rahm, A.-K.; Ehlermann, P.; Frey, N.; Darche, F.F. Pre-Transplant C-Reactive Protein ≥ 20 mg/L Predicts Infection-Related Mortality After Heart Transplantation. J. Clin. Med. 2026, 15, 1332. https://doi.org/10.3390/jcm15041332
Helmschrott M, Heil KM, Rivinius R, Rahm A-K, Ehlermann P, Frey N, Darche FF. Pre-Transplant C-Reactive Protein ≥ 20 mg/L Predicts Infection-Related Mortality After Heart Transplantation. Journal of Clinical Medicine. 2026; 15(4):1332. https://doi.org/10.3390/jcm15041332
Chicago/Turabian StyleHelmschrott, Matthias, Karsten M. Heil, Rasmus Rivinius, Ann-Kathrin Rahm, Philipp Ehlermann, Norbert Frey, and Fabrice F. Darche. 2026. "Pre-Transplant C-Reactive Protein ≥ 20 mg/L Predicts Infection-Related Mortality After Heart Transplantation" Journal of Clinical Medicine 15, no. 4: 1332. https://doi.org/10.3390/jcm15041332
APA StyleHelmschrott, M., Heil, K. M., Rivinius, R., Rahm, A.-K., Ehlermann, P., Frey, N., & Darche, F. F. (2026). Pre-Transplant C-Reactive Protein ≥ 20 mg/L Predicts Infection-Related Mortality After Heart Transplantation. Journal of Clinical Medicine, 15(4), 1332. https://doi.org/10.3390/jcm15041332

