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Updated: Dec 6, 2025

MRI and PET in Mouse Models of Myocardial Infarction
Published on: December 19, 2013
Nuclear Imaging of Post-infarction Inflammation in Ischemic Cardiac Diseases - New Radiotracers for Potential
Boudewijn J Krenning1, Kim van der Heiden2, Dirk J Duncker3
1Department of Cardiology, Thorax Center, Erasmus MC, Rotterdam, Netherlands.
Insights
Acute myocardial infarction (AMI) causes significant deaths, with inflammation impacting healing. Non-invasive imaging is crucial for predicting patient risk and guiding therapy for better outcomes.
Area of Science:
- Cardiology
- Immunology
- Medical Imaging
Background:
- Acute myocardial infarction (AMI) remains a leading cause of mortality worldwide.
- Current treatments improve reperfusion but not post-infarction myocardial injury or remodeling.
- Inflammation post-AMI is critical for healing but can lead to adverse remodeling and heart failure if dysregulated.
Purpose of the Study:
- To review clinical complications of myocardial inflammation following AMI.
- To explore the need for non-invasive imaging techniques using radiolabeled tracers.
- To discuss inflammatory cascades, cellular targets, and preclinical models for imaging development.
Main Methods:
- Review of clinical complications and inflammatory processes post-AMI.
- Discussion of inflammatory cell types and potential imaging targets.
- Analysis of preclinical animal models for ischemic heart disease.
- Evaluation of non-invasive imaging approaches using radiolabeled tracers.
Main Results:
- Inflammation following AMI is a double-edged sword, essential for healing but detrimental if excessive.
- Current anti-inflammatory therapies have shown limited success in clinical trials.
- There is a significant need for methods to predict patient risk and personalize therapy.
- Non-invasive imaging holds promise for visualizing the post-MI inflammatory response.
Conclusions:
- Effective management of post-AMI inflammation requires better patient stratification and targeted therapies.
- Non-invasive imaging with radiolabeled tracers is essential for understanding and managing the inflammatory response.
- Further development and validation of imaging techniques in preclinical models are crucial for clinical translation.
Abstract:
Acute myocardial infarction is one of the leading causes of death in the western world. Despite major improvements in myocardial reperfusion with sophisticated percutaneous coronary intervention technologies and new antithrombotic agents, there is still no effective therapy for preventing post- infarction myocardial injury and remodeling. Death of cardiomyocytes following ischemia results in "danger signals" that elicit an inflammatory reaction to remove cell debris and form scar tissue. Optimal healing of the damaged myocardial tissue requires a coordinated cellular response for sufficient wound healing and scar formation. However, if this inflammatory reaction is overactive or incompletely resolved, adverse left ventricular remodeling and heart failure may occur. Treatment aimed at the modulation of the post-MI inflammatory response has been widely pursued and investigated. Although improved infarct healing was shown in many experimental preclinical studies, to date, clinical trials using anti-inflammatory treatment strategies have been far less successful. Clearly, a need exists for predicting and selecting patients at risk and selecting the most appropriate therapy for individual patients. To this end, imaging of the post-MI response has been a topic of significant interest. In this review, we first discuss the clinical complications resulting from myocardial inflammation following AMI and the need for non-invasive imaging techniques using radiolabeled tracers. We then discuss the inflammatory reaction cascade following acute myocardial infarction, the inflammatory reaction cascade following acute myocardial infarction focusing on inflammatory cell types involved herein, and potential imaging targets for identifying these cells during the inflammatory process. In addition, we discuss specific characteristics and limitations of various preclinical animal models for ischemic heart disease since they are crucial in the development and evaluation of the imaging techniques. Finally, we discuss the need for non-invasive imaging approaches using radiolabeled tracers.
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