Anakinra to Prevent Post-infarction Remodeling
Summary
Thousands of patients die daily from early and late complications of a heart attack (acute myocardial infarction, AMI). Patients surviving AMI remain at high risk of death from adverse cardiac remodeling (dysfunction and enlargement of the heart) leading to heart failure (weakening of the heart). Current interventions proven to reduce adverse remodeling and progression to heart failure include early reperfusion (restoring blood flow to the heart muscle) and long-term use of medicines that block the effects of hormones (such as angiotensin II, norepinephrine and aldosterone) involved in adverse remodeling. Despite these treatments, however, many patients continue to develop heart failure within 1 year of AMI. These patients are at very high risk of death. Numerous changes occur in the hearts of patients after AMI that lead to adverse remodeling. Ischemia (lack of oxygen) and infarction (cell damage) lead to increased interleukin-1 (IL-1) production in the heart. IL-1 plays a critical role in adverse cardiac remodeling by coordinating the inflammatory pathway (leading to wound healing) and apoptotic pathway (leading to cell death). In opposition to IL-1 activity, the human body produces a natural IL-1 receptor antagonist that blocks the effects of IL-1. The drug form of this IL-1 receptor antagonist (anakinra) is currently FDA approved for the treatment of rheumatoid arthritis, an inflammatory disease characterized by excessive IL-1 activity. Experimental studies show that anakinra is able to prevent cardiac remodeling and improve survival in mice after AMI. We hypothesize that anakinra will show similar benefits in human patients by preventing adverse remodeling and heart failure after AMI.
Timeline
- Start
- 2008-11
- Primary completion
- 2009-08
- Completion
- 2009-08
Publications
- Denicolai M, Morello M, Golino M, Corna G, Del Buono MG, Agatiello CR, Van Tassell BW, Abbate A. Interleukin-1 Blockade in Patients With ST-Segment Elevation Myocardial Infarction Across the Spectrum of Coronary Artery Disease Complexity. J Cardiovasc Pharmacol. 2025 Mar 1;85(3):200-210. doi: 10.1097/FJC.0000000000001652.
- Moroni F, Corna G, Del Buono MG, Golino M, Talasaz AH, Decotto S, Markley R, Trankle C, Biondi-Zoccai G, Carbone S, Agatiello CR, Van Tassell B, Abbate A. Impact of C-reactive protein levels and role of anakinra in patients with ST-elevation myocardial infarction. Int J Cardiol. 2024 Mar 1;398:131610. doi: 10.1016/j.ijcard.2023.131610. Epub 2023 Nov 26.
- Del Buono MG, Damonte JI, Chiabrando JG, Markley R, Turlington J, Trankle CR, Kang L, Biondi-Zoccai G, Van Tassell BW, Abbate A. Effect of IL-1 Blockade With Anakinra on Heart Failure Outcomes in Patients With Anterior Versus Nonanterior ST Elevation Myocardial Infarction. J Cardiovasc Pharmacol. 2022 Jun 1;79(6):774-780. doi: 10.1097/FJC.0000000000001240.
- Abbate A, Kontos MC, Abouzaki NA, Melchior RD, Thomas C, Van Tassell BW, Oddi C, Carbone S, Trankle CR, Roberts CS, Mueller GH, Gambill ML, Christopher S, Markley R, Vetrovec GW, Dinarello CA, Biondi-Zoccai G. Comparative safety of interleukin-1 blockade with anakinra in patients with ST-segment elevation acute myocardial infarction (from the VCU-ART and VCU-ART2 pilot studies). Am J Cardiol. 2015 Feb 1;115(3):288-92. doi: 10.1016/j.amjcard.2014.11.003. Epub 2014 Nov 13.
Drugs
| Evaluation | Drug | Modality | Dose | Route |
|---|---|---|---|---|
| Subject | Anakinra | Protein / enzyme biologic | 100 mg | Subcutaneous |