Evaluating feasibility of functional near-infrared spectroscopy in dolphins.

dolphin functional near-infrared spectroscopy marine mammals tissue optical properties

Journal

Journal of biomedical optics
ISSN: 1560-2281
Titre abrégé: J Biomed Opt
Pays: United States
ID NLM: 9605853

Informations de publication

Date de publication:
07 2023
Historique:
received: 04 04 2023
revised: 15 06 2023
accepted: 29 06 2023
medline: 18 7 2023
pubmed: 17 7 2023
entrez: 17 7 2023
Statut: ppublish

Résumé

Using functional near-infrared spectroscopy (fNIRS) in bottlenose dolphins ( To test the feasibility of near-infrared spectroscopy (NIRS) in medium-sized marine mammals, such as dolphins, we modeled the light propagation with computational tools to determine the wavelengths, optode locations, and separation distances that maximize sensitivity to brain tissue. Using frequency-domain NIRS, we measured the absorption and reduced scattering coefficient of dolphin sculp. We assigned muscle, bone, and brain optical properties from the literature and modeled light propagation in a spatially accurate and biologically relevant model of a dolphin head, using finite-element modeling. We assessed tissue sensitivities for a range of wavelengths (600 to 1700 nm), source-detector distances (50 to 120 mm), and animal sizes (juvenile model 25% smaller than adult). We found that the wavelengths most suitable for imaging the brain fell into two ranges: 700 to 900 nm and 1100 to 1150 nm. The optimal location for brain sensing positioned the center point between source and detector 30 to 50 mm caudal of the blowhole and at an angle 45 deg to 90 deg lateral off the midsagittal plane. Brain tissue sensitivity comparable to human measurements appears achievable only for smaller animals, such as juvenile bottlenose dolphins or smaller species of cetaceans, such as porpoises, or with source-detector separations Brain measurements in juvenile or subadult dolphins, or smaller dolphin species, may be possible using specialized fNIRS devices that support optode separations of

Identifiants

pubmed: 37457628
doi: 10.1117/1.JBO.28.7.075001
pii: 230093GR
pmc: PMC10344469
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

075001

Informations de copyright

© 2023 The Authors.

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Auteurs

Alexander Ruesch (A)

Carnegie Mellon University, Neuroscience Institute, Pittsburgh, Pennsylvania, United States.
Carnegie Mellon University, Department of Biomedical Engineering, Pittsburgh, Pennsylvania, United States.

Deepshikha Acharya (D)

Carnegie Mellon University, Department of Biomedical Engineering, Pittsburgh, Pennsylvania, United States.

Eli Bulger (E)

Carnegie Mellon University, Department of Biomedical Engineering, Pittsburgh, Pennsylvania, United States.

Jiaming Cao (J)

Carnegie Mellon University, Department of Biomedical Engineering, Pittsburgh, Pennsylvania, United States.

J Christopher McKnight (J)

University of St. Andrews, Sea Mammal Research Unit, Scotland, United Kingdom.

Mercy Manley (M)

Siegfried & Roy's Secret Garden and Dolphin Habitat, The Mirage Hotel and Casino, Las Vegas, Nevada, United States.

Andreas Fahlman (A)

Fundación Oceanogràfic de la Comunitat Valenciana, Valencia, Spain.
Global Diving Research SL., Valencia, Spain.
Kolmården Wildlife Park, Kolmården, Sweden.

Barbara G Shinn-Cunningham (BG)

Carnegie Mellon University, Neuroscience Institute, Pittsburgh, Pennsylvania, United States.
Carnegie Mellon University, Department of Biomedical Engineering, Pittsburgh, Pennsylvania, United States.

Jana M Kainerstorfer (JM)

Carnegie Mellon University, Neuroscience Institute, Pittsburgh, Pennsylvania, United States.
Carnegie Mellon University, Department of Biomedical Engineering, Pittsburgh, Pennsylvania, United States.

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