Biology

Blocking pain-sensing nerves in heart prevents dangerous rhythm problems after heart attack

How the science connects

Myocardial infarct…NociceptionCardiac electrophy…

AI Insight

This study demonstrates that ablating TRPV1-expressing cardiac sensory nerves two weeks after myocardial infarction in pigs significantly reduces ventricular arrhythmias and improves cardiac function four weeks later. The treatment worked by reducing cardiac fibrosis, normalizing sympathetic nerve activity and neurotransmitter release, and decreasing immune cell infiltration in cardiac sensory ganglia. Unlike previous studies that intervened immediately after heart attack, this research shows therapeutic benefit even when treatment is delayed until the subacute phase.


Current treatments to prevent fatal heart rhythm disorders after heart attacks are limited. This approach could offer a new therapeutic window for intervention in the weeks following a heart attack, potentially reducing sudden cardiac death risk in a large patient population that survives the initial event but remains at high risk for arrhythmias.


Understand the Science

Myocardial infarction 8 articles Explore Concept → Nociception Concept coming soon Cardiac electrophysiology Concept coming soon

⚠️ Preprint – Noch nicht peer-reviewed

Dieser Artikel wurde noch nicht von unabhängigen Experten begutachtet. Die Ergebnisse sind vorläufig und sollten mit Vorsicht interpretiert werden.

Background Therapies to prevent ventricular arrhythmias after completed myocardial infarction (MI) remain limited. Although TRPV1 afferent ablation at acute MI improves cardiac remodeling, the effect of delayed subacute targeting remains unknown. Objective We investigated whether ablating cardiac TRPV1 afferents during the subacute post-MI window mitigates structural, electrophysiological, and neuro-cardiac axis remodeling to suppress ventricular arrhythmias. Methods Yorkshire pigs underwent sham surgery or anterior MI creation. Two weeks post-MI, animals were randomized to percutaneous epicardial resiniferatoxin (RTX, for cardiac-selective TRPV1 afferent depletion) or vehicle administration. Four weeks later, terminal studies assessed the effects of RTX on cardiac structure and function, ventricular arrhythmogenesis, and neuro-cardiac axis remodeling using in vivo electrophysiologic mapping, real-time neurotransmitter sensing, immunohistochemistry, and transcriptomic profiling. Results Cardiac TRPV1 afferent depletion was confirmed by blunted responses to TRPV1 agonists. RTX-treated animals exhibited improved left ventricular function, reduced end-diastolic diameter, and suppressed ventricular tachycardia/fibrillation (VT/VF) inducibility. Endocardial electroanatomic mapping revealed improved VT/VF electrophysiologic correlates in RTX-treated animals, including fewer deceleration zones and late potentials. Epicardial multielectrode mapping demonstrated reduced electrophysiologic heterogeneity in the scar border zone. Real-time release of adrenergic neurotransmitters (noradrenaline and neuropeptide Y) was normalized during sympathoexcitation in RTX-treated animals. Histologically, RTX treatment attenuated scar border zone myocardial fibrosis and sympathetic nerve sprouting, while suppressing T cell infiltration in cardiac sensory ganglia. Bulk RNA-sequencing of stellate ganglia revealed downregulation of adrenergic genes. Conclusion Cardiac TRPV1 afferent ablation post-completed MI alters disease trajectory by mitigating structural, functional, and neuro-cardiac axis remodeling. Targeting cardiac TRPV1 afferents represents a promising subacute post-MI therapeutic strategy.

Source: TRPV1-cardiac afferent ablation after completed myocardial infarction prevents arrhythmogenic remodeling