Cognitive control of heart rate in diving harbor porpoises

Marine mammals have adapted to forage while holding their breath in a suite of aquatic habitats from shallow rivers to deep oceans. The key to tolerate such extensive apnea is the dive response, which comprises bradycardia and peripheral vasoconstriction. Although initially considered an all-or-noth...

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Veröffentlicht in:Current biology 2016-11, Vol.26 (22), p.R1175-R1176
Hauptverfasser: Elmegaard, Siri L., Johnson, Mark, Madsen, Peter T., McDonald, Birgitte I.
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Sprache:eng
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Zusammenfassung:Marine mammals have adapted to forage while holding their breath in a suite of aquatic habitats from shallow rivers to deep oceans. The key to tolerate such extensive apnea is the dive response, which comprises bradycardia and peripheral vasoconstriction. Although initially considered an all-or-nothing reflex [1], numerous studies on freely diving marine mammals have revealed substantial dynamics of the dive response to meet the impending dive demands of depth, duration and exercise [2]. Such adjustments are not only autonomic responses, but are under acute cognitive control in pinnipeds [3] living amphibiously on land and in water. The fully aquatic cetaceans would similarly benefit from cognitive cardiovascular control; however, even though they have exercise-modulated diving bradycardia [2] and full voluntary control of their respiratory system to such extent that even mild anesthesia often leads to asphyxiation [4], cognitive cardiovascular control has never been demonstrated for this large group of marine mammals. To address this, we tested the hypothesis that porpoises modulate bradycardia according to anticipated dive duration. Two harbor porpoises, instrumented with ECG recording tags, were trained to perform 20- and 80-second stationary dives, during which they adjusted bradycardia to the anticipated duration, demonstrating cognitive control of their dive response. Elmegaard et al. show that trained harbor porpoises modulate heart rate to anticipated dive duration, demonstrating a fine-tuned cognitive control of the dive response
ISSN:0960-9822
1879-0445
DOI:10.1016/j.cub.2016.10.020