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A Clinician-Oriented Approach to Plaque Pathology in ACS: Implications for Personalized Cardiovascular Medicine-A
Barbara Pala1,2, Mariagrazia Piscione3,4, Francesco Cribari1
1PhD School of Applied Medical-Surgical Sciences, Tor Vergata University of Rome, Via Montpellier 1, 00133 Rome, Italy.
Insights
Myocardial infarction (MI) arises from diverse plaque types like plaque rupture (PR), plaque erosion (PE), and calcified nodules (CNs). Understanding these distinct mechanisms enables personalized treatment for acute coronary syndromes (ACS).
Area of Science:
- Cardiovascular Medicine
- Pathophysiology
- Biomolecular Mechanisms
Background:
- Myocardial infarction (MI) presents as a clinical outcome of heterogeneous plaque substrates.
- Acute coronary thrombosis (ACT) commonly results from plaque rupture (PR), plaque erosion (PE), and calcified nodules (CNs).
- These three plaque phenotypes exhibit distinct inflammatory profiles, thrombus composition, clinical presentations, and prognoses.
Purpose of the Study:
- To synthesize pathophysiological mechanisms of PR, PE, and CNs for clinicians.
- To discuss the implications of plaque biology for managing acute coronary syndromes (ACS).
- To propose a framework for integrating plaque biology into clinical decision-making.
Main Methods:
- Review of molecular and cellular determinants of plaque instability.
- Analysis of systemic factors modulating clinical risk (plaque burden, healing, myocardial jeopardy).
- Discussion of intracoronary and non-invasive imaging for elucidating plaque biology.
Main Results:
- Plaque phenotypes (PR, PE, CNs) have unique biological characteristics influencing clinical outcomes.
- Systemic factors significantly modulate patient risk.
- Imaging tools are crucial for understanding plaque biology.
Conclusions:
- Recognizing plaque heterogeneity supports personalized therapeutic strategies for MI.
- Tailoring treatments based on plaque phenotype and patient risk optimizes management.
- Emerging AI applications may enhance plaque characterization and precision cardiovascular prevention.
Abstract:
Growing evidence indicates that myocardial infarction (MI) is the clinical manifestation of heterogeneous plaque substrates with distinct molecular, cellular, and biomechanical mechanisms. Acute coronary thrombosis (ACT) most commonly arises from plaque rupture (PR), plaque erosion (PE), and calcified nodules (CNs), each associated with different inflammatory profiles, thrombus composition, clinical presentation, and prognosis. This comprehensive review provides a clinician-oriented synthesis of the pathophysiological mechanisms underlying these three principal plaque phenotypes and discusses their implications for the contemporary management of acute coronary syndromes (ACS). We examine the molecular and cellular determinants of plaque instability and highlight how systemic factors such as plaque burden, impaired healing responses, and myocardial jeopardy modulate clinical risk. The role of intracoronary and non-invasive imaging is discussed primarily as a tool to elucidate plaque biology with direct clinical relevance rather than merely as a procedural guide. Building on these insights, we propose a conceptual framework for integrating plaque biology into clinical decision-making across the acute phase, secondary prevention, and long-term follow-up. In particular, recognizing the biological heterogeneity of plaque substrates may support more personalized therapeutic strategies, enabling clinicians to tailor pharmacological and interventional approaches according to the underlying plaque phenotype and patient-specific risk profile. Finally, we briefly address emerging perspectives, including the potential role of artificial intelligence (AI) in refining plaque characterization, risk stratification, and precision cardiovascular prevention. Overall, recognition of PR, PE, and CNs as biologically distinct entities supports a shift toward mechanism-informed and personalized management of MI, aligning advances in plaque biology with the principles of precision cardiovascular medicine.
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