From heart to brain: the genesis and processing of cardiac pain

Stuart D Rosen1

  • 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.

Related Concept Videos

Nociception01:44

Nociception

Nociception—the ability to feel pain—is essential for an organism’s survival and overall well-being. Noxious stimuli such as piercing pain from a sharp object, heat from an open flame, or contact with corrosive chemicals are first detected by sensory receptors, called nociceptors, located on nerve endings. Nociceptors express ion channels that convert noxious stimuli into electrical signals. When these signals reach the brain via sensory neurons, they are perceived as pain. Thus, pain helps the...
Pain01:20

Pain

Pain serves as a critical warning signal that alerts the body to potential or actual harm. When mechanical pressure on the skin is intense, such as from a sharp pinch, the sensation transitions from touch to pain. Similarly, extreme temperatures, like a hot pot handle, convert the sensation of heat into pain. Pain can also result from overstimulation of other senses, such as blinding light, loud noise, or the intense heat from habañero peppers. This ability to sense pain is essential for...
Conduction System of the Heart01:20

Conduction System of the Heart

The cardiac conduction system produces and transmits electrical impulses that prompt myocardial contraction, ensuring efficient heart function. This intricate system ensures that the heart beats in a coordinated and efficient manner, beginning with the atria and then the ventricles. The conduction system optimizes cardiac output by maintaining this precise sequence, which is crucial for adequate blood circulation.
This system relies on the unique properties of nodal and Purkinje cells:...
Conduction System of the Heart01:19

Conduction System of the Heart

Autorhythmicity is a term that refers to the heart's inherent ability to generate electrical signals and instigate muscle contractions. This self-regulating conduction system within the heart consists of two key components: the pacemaker cells and specialized conducting cells.
The pacemaker cells are located in two primary nodes: the sinoatrial (SA) node and the atrioventricular (AV) node. The SA node pacemaker cells can autonomously depolarize, triggering an action potential that leads to the...
Electrophysiology of Normal Cardiac Rhythm01:19

Electrophysiology of Normal Cardiac Rhythm

The normal cardiac rhythm is a synchronized electrical activity that facilitates the regular and coordinated contraction of the heart muscle. This process is essential for efficient blood circulation throughout the body. The fundamental elements involved in establishing and maintaining this rhythm include the unique electrical properties of cardiac muscle cells, the sinoatrial (SA) node's pacemaker function, the specialized conducting system, and the ionic mechanisms underlying each phase of...
Spinal Cord: Information Processing01:10

Spinal Cord: Information Processing

The spinal cord is an integral hub for motor and sensory information that enables the brain to communicate with the peripheral nervous system (PNS). This communication consists of relaying sensory data and transmission of motor commands.
Sensory Information Processing
Sensory information processing begins at the sensory receptors located in the skin and other tissues, which detect somatic sensory stimuli such as touch, temperature, or pain. These receptors function as catalysts, initiating...