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Updated: May 24, 2026

Pipeline for Multi-Scale Three-Dimensional Anatomic Study of the Human Heart
Published on: June 28, 2024
From heart to brain: the genesis and processing of cardiac pain
1National Heart and Lung Institute, Imperial College, London, United Kingdom. stuart.rosen@imperial.ac.uk
Insights
Angina pain arises from myocardial ischemia activating pain fibers. New research suggests neuromodulation strategies for managing cardiac pain, offering hope for patients.
Area of Science:
- Cardiology
- Pain Research
- Neuroscience
Background:
- Angina pectoris is a critical indicator of heart disease and mortality risk.
- Historical perspectives on angina link pain to coronary artery disease and myocardial ischemia.
- Evolving theories, from myocardial stretch to chemical release during ischemia, explain angina pain.
Purpose of the Study:
- To review how myocardial ischemia activates afferent nociceptive pain fibers.
- To describe sympathetic and vagal afferent fiber projections in angina.
- To present a new paradigm for understanding angina pain, incorporating neuromodulation.
Main Methods:
- Review of methodologies including viral tracing and neuronal c-fos synthesis mapping.
- Analysis of functional neuroimaging studies in angina patients.
- Integration of insights from broader pain research fields.
Main Results:
- Ischemia at the tissue level triggers activation of afferent nociceptive pain fibers.
- Poor correlation exists between coronary disease extent and angina symptoms, ranging from silent ischemia to cardiac syndrome X.
- Significant variability in symptom experience among individual patients is observed.
Conclusions:
- Neuromodulation offers potential therapeutic targets at peripheral, spinal, and brain levels for angina pain.
- Exploiting neuromodulation, pharmacologically or electrically, can benefit cardiac patients experiencing pain.
- A comprehensive understanding of angina requires considering both oxygen imbalance and pain research insights.
Abstract:
Angina pectoris is important because of its association with heart disease and risk of death. Historically after Heberden's account of angina in 1772, the association of pain with coronary artery disease quickly followed. Within a few years, Burns suggested an etiological role for ischemia. Subsequently, theories of differential myocardial stretch dominated thinking until Lewis' chemical hypothesis in 1932, in which the local release of chemical substances during ischemia was seen as the cause of pain. This review considers how ischemia at the tissue level triggers activation of afferent nociceptive pain fibres. The afferent projections of sympathetic and vagal afferent fibres are described, with a number of methodologies cited (eg, injection of pseudorabies virus into the heart with mapping of the retrograde viral transport pathways; and elevation of neuronal c-fos synthesis in brain regions activated by capsaicin application to the heart). Our own functional neuroimaging studies of angina are also reviewed. There are 2 intriguing features of angina. The first is the poor correlation between symptoms and extent of coronary disease. The spectrum ranges from entirely silent myocardial ischemia to that of a functional pain syndrome--the 'sensitive heart'--of cardiac syndrome X. An even more difficult aspect is the wide variability in symptoms experienced by an individual patient. A new paradigm is presented which, besides considering myocardial oxygen supply/demand imbalance, also draws insights from the broader field of pain research. Neuromodulation applies at multiple levels of the neuraxis--peripheral nerves, spinal cord, and brain--and it invites exploitation, whether pharmacological or electrical, for the benefit of the cardiac patient in pain.
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