The in vitro zebrafish heart as a model to investigate the chronotropic effects of vapor anesthetics

Matthew R. Stoyek, Michael K. Schmidt, Florentin M. Wilfart, Roger P. Croll, Frank M. Smith

Résultat de recherche: Articleexamen par les pairs

7 Citations (Scopus)

Résumé

In addition to their intended clinical actions, all general anesthetic agents in common use have detrimental intrasurgical and postsurgical side effects on organs and systems, including the heart. The major cardiac side effect of anesthesia is bradycardia, which increases the probability of insufficient systemic perfusion during surgery. These side effects also occur in all vertebrate species so far examined, but the underlying mechanisms are not clear. The zebrafish heart is a powerful model for studying cardiac electrophysiology, employing the same pacemaker system and neural control as do mammalian hearts. In this study, isolated zebrafish hearts were significantly bradycardic during exposure to the vapor anesthetics sevoflurane (SEVO), desflurane (DES), and isoflurane (ISO). Bradycardia induced by DES and ISO continued during pharmacological blockade of the intracardiac portion of the autonomic nervous system, but the chronotropic effect of SEVO was eliminated during blockade. Bradycardia evoked by vagosympathetic nerve stimulation was augmented during DES and ISO exposure; nerve stimulation during SEVO exposure had no effect. Together, these results support the hypothesis that the cardiac chronotropic effect of SEVO occurs via a neurally mediated mechanism, while DES and ISO act directly upon cardiac pacemaker cells via an as yet unknown mechanism.

Langue d'origineEnglish
Pages (de-à)R669-R679
JournalAmerican Journal of Physiology - Regulatory Integrative and Comparative Physiology
Volume313
Numéro de publication6
DOI
Statut de publicationPublished - déc. 2017

Note bibliographique

Funding Information:
The Natural Sciences and Engineering Council (NSERC) of Canada supported this work through a Discovery Grant to R. P. Croll (Grant 327140). M. R. Stoyek was a recipient of a NSERC Post-Graduate Research Scholarship. The Dalhousie University Faculty of Medicine Research Fund (to F. M. Smith) and Abbott Canada (to M. K. Schmidt) also provided partial support for this work.

Publisher Copyright:
© 2017 the American Physiological Society.

ASJC Scopus Subject Areas

  • Physiology
  • Physiology (medical)

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