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April 3, 2013Cardiovascular Research54 citationsOpen Access

Nerves projecting from the intrinsic cardiac ganglia of the pulmonary veins modulate sinoatrial node pacemaker function

MZManuel ZarzosoKRKristina RysevaitėMMMichelle L. Milstein

Key Result

Pulmonary vein ganglia stimulation significantly increased the spontaneous cycle length from 219 ms to 296 ms, demonstrating direct modulation of sinoatrial node pacemaker function.

Structured PICO

Does pulmonary vein ganglia stimulation modulate sinoatrial node pacemaker function?

P
Population
Forty-nine C57BL and seven Connexin40+/EGFP mice; two human embryonic hearts; five paroxysmal AF patients undergoing pulmonary vein ablation.
I
Intervention
Pulmonary vein ganglia (PVG) stimulation (electrical trains of pulses in isolated mouse hearts; radiofrequency energy in human patients).
C
Comparator
Baseline/unstimulated state; stimulation in the presence of propranolol or atropine.
O
Outcome
Heart rate (HR) changes and origin of sinoatrial node (SAN) discharges.surrogate

Pulmonary vein ganglia have direct neural communications with the sinoatrial node and their stimulation significantly modulates heart rate, highlighting their role in electrophysiological control.

Main Result

Absolute Event Rate: 296% vs 219%

p-value: p=<0.05

Limitations

  • Care should be exerted when attempting to extrapolate experimental animal findings to the clinical situation.
  • Small sample size in the human electrophysiological study cohort (n=5).

Abstract

AIMS: Pulmonary vein ganglia (PVG) are targets for atrial fibrillation ablation. However, the functional relevance of PVG to the normal heart rhythm remains unclear. Our aim was to investigate whether PVG can modulate sinoatrial node (SAN) function. METHODS AND RESULTS: Forty-nine C57BL and seven Connexin40+/EGFP mice were studied. We used tyrosine-hydroxylase (TH) and choline-acetyltransferase immunofluorescence labelling to characterize adrenergic and cholinergic neural elements. PVG projected postganglionic nerves to the SAN, which entered the SAN as an extensive, mesh-like neural network. PVG neurones were adrenergic, cholinergic, and biphenotypic. Histochemical characterization of two human embryonic hearts showed similarities between mouse and human neuroanatomy: direct neural communications between PVG and SAN. In Langendorff perfused mouse hearts, PVG were stimulated using 200-2000 ms trains of pulses (300 μs, 400 µA, 200 Hz). PVG stimulation caused an initial heart rate (HR) slowing (36 ± 9%) followed by acceleration. PVG stimulation in the presence of propranolol caused HR slowing (43 ± 13%) that was sustained over 20 beats. PVG stimulation with atropine progressively increased HR. Time-course effects were enhanced with 1000 and 2000 ms trains (P < 0.05 vs. 200 ms). In optical mapping, PVG stimulation shifted the origin of SAN discharges. In five paroxysmal AF patients undergoing pulmonary vein ablation, application of radiofrequency energy to the PVG area during sinus rhythm produced a decrease in HR similar to that observed in isolated mouse hearts. CONCLUSION: PVG have functional and anatomical biphenotypic characteristics. They can have significant effects on the electrophysiological control of the SAN.

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Cite This Study

Zarzoso et al. (2013) studied Paroxysmal Atrial Fibrillation (human cohort) / Normal physiology (animal cohort) (n=63). Pulmonary vein ganglia (PVG) stimulation / Radiofrequency ablation vs. Pre-stimulation baseline was evaluated on Spontaneous cycle length (P-P interval) (p=<0.05). Pulmonary vein ganglia stimulation significantly increased the spontaneous cycle length from 219 ms to 296 ms, demonstrating direct modulation of sinoatrial node pacemaker function.

synapsesocial.com/papers/6a16a6bf30ac7b78de04ff24https://doi.org/10.1093/cvr/cvt081
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