Key result
Preemptive right-sided vagus nerve stimulation reduced MNS-induced changes in local circuit neuron activity by 70% and mitigated MNS-induced atrial fibrillation by 75%.
Why the study?
Does preemptive vagus nerve stimulation reduce mediastinal nerve stimulation-induced atrial fibrillation and alter intrinsic cardiac neural network activity in anesthetized canines?
Does preemptive vagus nerve stimulation reduce mediastinal nerve stimulation-induced atrial fibrillation and alter intrinsic cardiac neural network activity in anesthetized canines?
Preemptive vagus nerve stimulation mitigates neurally induced atrial fibrillation by targeting convergent local circuit neurons and reducing their interactive coherence, with antiarrhythmic effects exhibiting memory.
Preemptive VNS may attenuate neurally evoked AF in canines; leaves open translation to clinical neuromodulation.
Mediastinal nerve stimulation (MNS) reproducibly evokes atrial fibrillation (AF) by excessive and heterogeneous activation of intrinsic cardiac (IC) neurons. This study evaluated whether preemptive vagus nerve stimulation (VNS) impacts MNS-induced evoked changes in IC neural network activity to thereby alter susceptibility to AF. IC neuronal activity in the right atrial ganglionated plexus was directly recorded in anesthetized canines (n = 8) using a linear microelectrode array concomitant with right atrial electrical activity in response to: 1) epicardial touch or great vessel occlusion vs. 2) stellate or vagal stimulation. From these stressors, post hoc analysis (based on the Skellam distribution) defined IC neurons so recorded as afferent, efferent, or convergent (afferent and efferent inputs) local circuit neurons (LCN). The capacity of right-sided MNS to modify IC activity in the induction of AF was determined before and after preemptive right (RCV)- vs. left (LCV)-sided VNS (15 Hz, 500 μs; 1.2× bradycardia threshold). Neuronal (n = 89) activity at baseline (0.11 ± 0.29 Hz) increased during MNS-induced AF (0.51 ± 1.30 Hz; P < 0.001). Convergent LCNs were preferentially activated by MNS. Preemptive RCV reduced MNS-induced changes in LCN activity (by 70%) while mitigating MNS-induced AF (by 75%). Preemptive LCV reduced LCN activity by 60% while mitigating AF potential by 40%. IC neuronal synchrony increased during neurally induced AF, a local neural network response mitigated by preemptive VNS. These antiarrhythmic effects persisted post-VNS for, on average, 26 min. In conclusion, VNS preferentially targets convergent LCNs and their interactive coherence to mitigate the potential for neurally induced AF. The antiarrhythmic properties imposed by VNS exhibit memory.
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Salavatian et al. (2016) studied Atrial fibrillation (n=8). Preemptive vagus nerve stimulation (VNS) vs. Baseline (before VNS) was evaluated on MNS-induced changes in local circuit neuron (LCN) activity and MNS-induced AF. Preemptive right-sided vagus nerve stimulation reduced MNS-induced changes in local circuit neuron activity by 70% and mitigated MNS-induced atrial fibrillation by 75%.
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