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Multimodal Study of Murine Cardiovascular Remodeling: Four-Dimensional Ultrasound and Mass Spectrometry Imaging
Published on: January 10, 2025
Illuminating the Invisible: Translational Molecular Imaging in Cardiovascular Medicine
Yan Ma1, Naiyuan Sun2, Yan Fang1
1Cardiology Department and National Clinical Research Center for Geriatric Diseases, Chinese Military Medical School, The Second Medical Center, Chinese PLA General Hospital, Beijing (Y.M., Y.F., Y.W., F.C.).
Insights
Molecular imaging offers advanced visualization of cardiovascular disease processes, detecting early molecular changes missed by conventional methods. This approach aids in risk stratification and personalized treatment for heart conditions.
Area of Science:
- Cardiovascular Medicine
- Molecular Imaging
- Biomedical Engineering
Background:
- Cardiovascular disease is a leading global health concern with increasing adverse outcomes.
- Conventional imaging lacks sensitivity for subclinical molecular changes preceding overt pathology.
Purpose of the Study:
- To review molecular imaging probes and platforms for cardiovascular disease.
- To assess their role in risk stratification and therapeutic monitoring.
- To explore AI and multiomics integration for precision cardiovascular medicine.
Main Methods:
- Critical appraisal of molecular probes (nanoparticles, antibodies, peptides) for target specificity, pharmacokinetics, and clinical use.
- Review of molecular imaging platforms (nuclear, MRI, CT, ultrasound, photoacoustic).
- Discussion of AI and multiomics in probe development and target validation.
Main Results:
- Molecular imaging visualizes in vivo disease processes like inflammation and metabolic dysregulation.
- Molecular imaging aids in assessing atherosclerosis, amyloidosis, cardiomyopathies, and remodeling.
- AI and multiomics accelerate probe development for precision medicine.
Conclusions:
- Molecular imaging represents a paradigm shift in cardiovascular medicine.
- It enables mechanistically informed, precision cardiovascular care.
- Enhanced diagnostics and therapeutics are anticipated through advanced molecular probes and AI integration.
Abstract:
Cardiovascular disease remains the predominant cause of global morbidity and mortality, with recent epidemiological trends indicating a resurgence in adverse outcomes. Conventional imaging modalities-including coronary computed tomography angiography, echocardiography, and cardiac magnetic resonance imaging-are indispensable for anatomic and functional assessment, yet they lack the sensitivity to detect subclinical molecular perturbations that precede overt pathology. The advent of molecular imaging, leveraging nuclear, magnetic resonance, computed tomography, contrast-enhanced ultrasound, and photoacoustic platforms, enables in vivo visualization of disease-specific biological processes such as inflammation, metabolic dysregulation, and extracellular matrix remodeling. This review critically appraises the design and translational potential of molecular probes-including nanoparticles, antibodies, and peptides-focusing on their target specificity, pharmacokinetics, and clinical applicability. We further delineate the utility of molecular imaging in risk stratification and therapeutic monitoring across diverse cardiovascular pathologies, including atherosclerosis and plaque vulnerability, cardiac amyloidosis, inflammatory cardiomyopathies, and postinfarction remodeling. Finally, we discuss the integration of artificial intelligence and multiomics approaches in accelerating probe development and target validation, underscoring the paradigm shift toward mechanistically informed, precision cardiovascular medicine.
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