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The clinical value of quantitative cardiovascular molecular imaging: a step towards precision medicine
Hendrea Sanne Aletta Tingen1, Gijs D van Praagh1, Pieter H Nienhuis1
1Department of Nuclear Medicine and Molecular Imaging, University Medical Centre Groningen, Groningen, The Netherlands.
Insights
Molecular imaging using positron emission tomography (PET) and single-photon emission computed tomography (SPECT) enhances precision medicine for cardiovascular diseases (CVD). These advanced techniques improve diagnostic accuracy and therapy evaluation, potentially reducing patient mortality and societal impact.
Area of Science:
- Cardiovascular molecular imaging
- Precision medicine
- Medical imaging technologies
Background:
- Cardiovascular diseases (CVD) are a leading global cause of death.
- Precision medicine offers tailored treatments for individuals, potentially improving outcomes for CVD patients.
- Molecular imaging complements anatomical imaging by assessing biological processes.
Purpose of the Study:
- To review recent advances in molecular imaging for cardiovascular diseases.
- To highlight the clinical value of quantitative PET and SPECT in various CVD applications.
- To address challenges and future directions for clinical translation of these technologies.
Main Methods:
- Review of recent developments in PET and SPECT systems.
- Discussion of innovations in cardiovascular radiopharmaceuticals.
- Analysis of technical advances in image quantification and kinetic modeling.
Main Results:
- PET and SPECT show improved diagnostic accuracy and therapy evaluation for CVD.
- New techniques allow for accurate quantification, dynamic imaging, and tracer kinetics.
- Applications include atherosclerosis, myocardial ischemia, cardiomyopathies, vascular diseases, and infections.
Conclusions:
- Molecular imaging is crucial for implementing precision medicine in CVD.
- Quantitative PET and SPECT offer significant potential for improved patient outcomes.
- Overcoming challenges in clinical translation is essential for widespread adoption.
Abstract:
Cardiovascular diseases (CVD) are the leading cause of death worldwide and have an increasing impact on society. Precision medicine, in which optimal care is identified for an individual or a group of individuals rather than for the average population, might provide significant health benefits for this patient group and decrease CVD morbidity and mortality. Molecular imaging provides the opportunity to assess biological processes in individuals in addition to anatomical context provided by other imaging modalities and could prove to be essential in the implementation of precision medicine in CVD. New developments in single-photon emission computed tomography (SPECT) and positron emission tomography (PET) systems, combined with rapid innovations in promising and specific radiopharmaceuticals, provide an impressive improvement of diagnostic accuracy and therapy evaluation. This may result in improved health outcomes in CVD patients, thereby reducing societal impact. Furthermore, recent technical advances have led to new possibilities for accurate image quantification, dynamic imaging, and quantification of radiotracer kinetics. This potentially allows for better evaluation of disease activity over time and treatment response monitoring. However, the clinical implementation of these new methods has been slow. This review describes the recent advances in molecular imaging and the clinical value of quantitative PET and SPECT in various fields in cardiovascular molecular imaging, such as atherosclerosis, myocardial perfusion and ischemia, infiltrative cardiomyopathies, systemic vascular diseases, and infectious cardiovascular diseases. Moreover, the challenges that need to be overcome to achieve clinical translation are addressed, and future directions are provided.
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