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Shining new light on mammalian diving physiology using wearable near-infrared spectroscopy.
McKnight, J Chris; Bennett, Kimberley A; Bronkhorst, Mathijs; Russell, Debbie J F; Balfour, Steve; Milne, Ryan; Bivins, Matt; Moss, Simon E W; Colier, Willy; Hall, Ailsa J; Thompson, Dave.
Afiliação
  • McKnight JC; Sea Mammal Research Unit, Scottish Oceans Institute, University of St Andrews, St Andrews, Scotland.
  • Bennett KA; Division of Science, School of Science Engineering and Technology, Abertay University, Dundee, Scotland.
  • Bronkhorst M; Artinis Medical Systems BV, the Netherlands.
  • Russell DJF; Sea Mammal Research Unit, Scottish Oceans Institute, University of St Andrews, St Andrews, Scotland.
  • Balfour S; Sea Mammal Research Unit Instrumentation Group, Scottish Oceans Institute, University of St Andrews, St Andrews, Scotland.
  • Milne R; Sea Mammal Research Unit, Scottish Oceans Institute, University of St Andrews, St Andrews, Scotland.
  • Bivins M; Sea Mammal Research Unit, Scottish Oceans Institute, University of St Andrews, St Andrews, Scotland.
  • Moss SEW; Sea Mammal Research Unit, Scottish Oceans Institute, University of St Andrews, St Andrews, Scotland.
  • Colier W; Artinis Medical Systems BV, the Netherlands.
  • Hall AJ; Sea Mammal Research Unit, Scottish Oceans Institute, University of St Andrews, St Andrews, Scotland.
  • Thompson D; Sea Mammal Research Unit, Scottish Oceans Institute, University of St Andrews, St Andrews, Scotland.
PLoS Biol ; 17(6): e3000306, 2019 06.
Article em En | MEDLINE | ID: mdl-31211787
ABSTRACT
Investigation of marine mammal dive-by-dive blood distribution and oxygenation has been limited by a lack of noninvasive technology for use in freely diving animals. Here, we developed a noninvasive near-infrared spectroscopy (NIRS) device to measure relative changes in blood volume and haemoglobin oxygenation continuously in the blubber and brain of voluntarily diving harbour seals. Our results show that seals routinely exhibit preparatory peripheral vasoconstriction accompanied by increased cerebral blood volume approximately 15 s before submersion. These anticipatory adjustments confirm that blood redistribution in seals is under some degree of cognitive control that precedes the mammalian dive response. Seals also routinely increase cerebral oxygenation at a consistent time during each dive, despite a lack of access to ambient air. We suggest that this frequent and reproducible reoxygenation pattern, without access to ambient air, is underpinned by previously unrecognised changes in cerebral drainage. The ability to track blood volume and oxygenation in different tissues using NIRS will facilitate a more accurate understanding of physiological plasticity in diving animals in an increasingly disturbed and exploited environment.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Espectroscopia de Luz Próxima ao Infravermelho / Mergulho / Reflexo de Mergulho Limite: Animals Idioma: En Revista: PLoS Biol Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Espectroscopia de Luz Próxima ao Infravermelho / Mergulho / Reflexo de Mergulho Limite: Animals Idioma: En Revista: PLoS Biol Ano de publicação: 2019 Tipo de documento: Article