Related Experiment Video
Updated: Nov 16, 2025

Prolonged Incubation of Acute Neuronal Tissue for Electrophysiology and Calcium-imaging
Published on: February 15, 2017
QTc shortening effect of ganglionated plexi ablation
Tolga Aksu1, Serdar Bozyel1, Kivanc Yalin2
1Department of Cardiology, Kocaeli Derince Training and Research Hospital, University of Health Sciences, Kocaeli, Turkey.
Background:
In previous studies, patients undergoing ablation of ganglionated plexi (GPA) for vagally mediated bradyarrhythmias were noted to have shortening of their corrected QT interval (QTc).
Aims:
To compare the effects of GPA (group 1) to pulmonary vein isolation + GPA (group 2) on QTc.
Material And Methods:
We enrolled 39 patients, n = 25 in group 1 and n = 14 in group 2. QTc was calculated at baseline, at 24 h after ablation, and at 9-12 months in the follow-up. Recurrent syncope, asystole >2 s, and/or second- or third-degree AVB episodes were carefully documented as the primary outcome in group 1. Any atrial arrhythmia ≥30 seconds documented on 24-h Holter monitoring was defined as the primary outcome in group 2.
Results:
The mean follow-up time was 14.9 ± 4 months. Acute success was achieved in all cases. In whole cohort, a significant shortening on QTcBazett, QTcFramingham, QTcFredericia, and QTcHodges was observed [416 vs 398ms (p = .002), 411vs 378 ms (p < .001), 412 vs 379ms (p < .001), and 420 vs 383ms (p < .001), respectively]. In the linear mixed model analysis, the longitudinal reduction tendency in the QTc level was more pronounced in group 1. Event-free survival was detected in 90.7% (59/65) of cases.
Discussion:
Our results demonstrate a significant shortening of QTc in addition to high medium-term success rates after GPA. Pulmonary vein isolation + GPA was associated with lower QTc shortening effect which implies structural disease may change electrophysiological response to ablation. The most likely mechanism is the effect of GPA on the sympathetic system.
Related Concept Videos
Local Anesthetics: Differential Sensitivity of Nerve Fibers
Depolarizing Blockers: Mechanism of Action
Succinylcholine is the most commonly used depolarizing blocker. Chemically, it constitutes two molecules of acetylcholine joined together by an acetate methyl group. They act on the receptors in the same way as acetylcholine. Because...
Drugs Acting on Autonomic Ganglia: Blockers

