Skip to main content
Top
Published in: Clinical Autonomic Research 6/2015

01-12-2015 | Research Article

Mechanisms of sinus node cycle length changes during ventricular fibrillation

Authors: Stephen L. Wasmund, Christina F. Pacchia, Richard L. Page, Mohamed H. Hamdan

Published in: Clinical Autonomic Research | Issue 6/2015

Login to get access

Abstract

Objective

We have previously shown that up to one-third of patients develop no change or an increase in sinus node cycle length (SNCL) during ventricular fibrillation (VF). The purpose of the present study was to investigate the mechanism of SNCL changes during VF in a swine model. We hypothesized that changes in SNCL during VF are vagally-mediated.

Methods

In 33 anesthetized pigs DC current was used to induce VF for 10 s followed by defibrillation. SNCL changes were assessed during VF and compared to baseline. Animals that had ventriculo-atrial conduction during VF were excluded. Post-defibrillation, the pigs were randomized to receive atropine, propranolol, atropine + propranolol or placebo followed by repeat VF induction and measurement of SNCL changes.

Results

Ventriculo-atrial conduction was present in 14 pigs prohibiting SNCL measurements. In the remaining 19 animals, 10 demonstrated SNCL shortening (S-Group) and 9 demonstrated non-shortening (NS-Group). Atropine decreased the absolute change in SNCL from 51.2 to 26.6 ms (n = 6; p = 0.03). It attenuated the SNCL shortening previously observed in the S-Group (−99.2 ms versus −47.9 ms, p = 0.04) and reversed the SNCL prolongation initially observed in the NS-Group (27.1 ms versus −6.5 ms, p = 0.13). Similarly, atropine + propranolol decreased the absolute change in SNCL from 33.3 to 12.2 ms (n = 4; p = 0.05). No significant changes were noted with propranolol or placebo.

Interpretation

The SNCL changes during VF appear to be vagally-mediated. The clinical implications vis-à-vis defibrillation threshold and future device programming await future studies.
Literature
1.
go back to reference Wasmund SL, Pai RK, Freedman RA, Abedin M, Daccarett M, Segerson NM, Zaitsev AV, Hamdan MH (2009) Modulation of the sinus rate during ventricular fibrillation. J Cardiovasc Electrophysiol 20:187–192CrossRefPubMed Wasmund SL, Pai RK, Freedman RA, Abedin M, Daccarett M, Segerson NM, Zaitsev AV, Hamdan MH (2009) Modulation of the sinus rate during ventricular fibrillation. J Cardiovasc Electrophysiol 20:187–192CrossRefPubMed
2.
go back to reference Committee for the Update of the Guide for the Care and Use of Laboratory Animals (1996) Guide for the care and use of laboratory animals. The National Academies Press, Washington, DC Committee for the Update of the Guide for the Care and Use of Laboratory Animals (1996) Guide for the care and use of laboratory animals. The National Academies Press, Washington, DC
3.
go back to reference Adlan AM, Lip GY, Fadel PJ, Fisher JP (2013) Sympathetic nerve activity during non-sustained ventricular tachycardia in chronic heart failure. Int J Cardiol 165:e15–e17CrossRefPubMed Adlan AM, Lip GY, Fadel PJ, Fisher JP (2013) Sympathetic nerve activity during non-sustained ventricular tachycardia in chronic heart failure. Int J Cardiol 165:e15–e17CrossRefPubMed
4.
go back to reference Smith ML, Ellenbogen KA, Beightol LA, Eckberg DL (1991) Sympathetic neural responses to induced ventricular tachycardia. J Am Coll Cardiol 18:1015–1024CrossRefPubMed Smith ML, Ellenbogen KA, Beightol LA, Eckberg DL (1991) Sympathetic neural responses to induced ventricular tachycardia. J Am Coll Cardiol 18:1015–1024CrossRefPubMed
5.
go back to reference Smith ML, Joglar JA, Wasmund SL, Carlson MD, Welch PJ, Hamdan MH, Quan K, Page RL (1999) Reflex control of sympathetic activity during simulated ventricular tachycardia in humans. Circulation 100:628–634CrossRefPubMed Smith ML, Joglar JA, Wasmund SL, Carlson MD, Welch PJ, Hamdan MH, Quan K, Page RL (1999) Reflex control of sympathetic activity during simulated ventricular tachycardia in humans. Circulation 100:628–634CrossRefPubMed
6.
go back to reference Smith ML, Kinugawa T, Dibner-Dunlap ME (1996) Reflex control of sympathetic activity during ventricular tachycardia in dogs: primary role of arterial baroreflexes. Circulation 93:1033–1042CrossRefPubMed Smith ML, Kinugawa T, Dibner-Dunlap ME (1996) Reflex control of sympathetic activity during ventricular tachycardia in dogs: primary role of arterial baroreflexes. Circulation 93:1033–1042CrossRefPubMed
7.
go back to reference Hamdan MH, Joglar JA, Page RL, Zagrodzky JD, Sheehan CJ, Wasmund SL, Smith ML (1999) Baroreflex gain predicts blood pressure recovery during simulated ventricular tachycardia in humans. Circulation 100:381–386CrossRefPubMed Hamdan MH, Joglar JA, Page RL, Zagrodzky JD, Sheehan CJ, Wasmund SL, Smith ML (1999) Baroreflex gain predicts blood pressure recovery during simulated ventricular tachycardia in humans. Circulation 100:381–386CrossRefPubMed
8.
go back to reference Wall TS, Wasmund SL, Freedman RA, Akoum NW, Page RL, Hamdan MH (2015) “Vasovagal” response during ventricular fibrillation: incidence and implications. Pacing Clin Electrophysiol 38:376–382CrossRefPubMed Wall TS, Wasmund SL, Freedman RA, Akoum NW, Page RL, Hamdan MH (2015) “Vasovagal” response during ventricular fibrillation: incidence and implications. Pacing Clin Electrophysiol 38:376–382CrossRefPubMed
9.
go back to reference Belardinelli L, Belloni FL, Rubio R, Berne RM (1980) Atrioventricular conduction disturbances during hypoxia. Possible role of adenosine in rabbit and guinea pig heart. Circ Res 47:684–691CrossRefPubMed Belardinelli L, Belloni FL, Rubio R, Berne RM (1980) Atrioventricular conduction disturbances during hypoxia. Possible role of adenosine in rabbit and guinea pig heart. Circ Res 47:684–691CrossRefPubMed
10.
go back to reference Huikuri HV, Zaman L, Castellanos A, Kessler KM, Cox M, Glicksman F, Myerburg RJ (1989) Changes in spontaneous sinus node rate as an estimate of cardiac autonomic tone during stable and unstable ventricular tachycardia. J Am Coll Cardiol 13:646–652CrossRefPubMed Huikuri HV, Zaman L, Castellanos A, Kessler KM, Cox M, Glicksman F, Myerburg RJ (1989) Changes in spontaneous sinus node rate as an estimate of cardiac autonomic tone during stable and unstable ventricular tachycardia. J Am Coll Cardiol 13:646–652CrossRefPubMed
Metadata
Title
Mechanisms of sinus node cycle length changes during ventricular fibrillation
Authors
Stephen L. Wasmund
Christina F. Pacchia
Richard L. Page
Mohamed H. Hamdan
Publication date
01-12-2015
Publisher
Springer Berlin Heidelberg
Published in
Clinical Autonomic Research / Issue 6/2015
Print ISSN: 0959-9851
Electronic ISSN: 1619-1560
DOI
https://doi.org/10.1007/s10286-015-0319-5

Other articles of this Issue 6/2015

Clinical Autonomic Research 6/2015 Go to the issue