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Multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics

Significance: Diffuse optical spectroscopic imaging (DOSI) is a versatile technology sensitive to changes in tissue composition and hemodynamics and has been used for a wide variety of clinical applications. Specific applications have prompted the development of versions of the DOSI technology to fi...

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Autores principales: Lam, Jesse H., Hill, Brian, Quang, Timothy, Amelard, Robert, Kim, Sehwan, Yazdi, Hossein S., Warren, Robert V., Cutler, Kyle B., Tromberg, Bruce J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society of Photo-Optical Instrumentation Engineers 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8362892/
https://www.ncbi.nlm.nih.gov/pubmed/34390234
http://dx.doi.org/10.1117/1.JBO.26.8.085002
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author Lam, Jesse H.
Hill, Brian
Quang, Timothy
Amelard, Robert
Kim, Sehwan
Yazdi, Hossein S.
Warren, Robert V.
Cutler, Kyle B.
Tromberg, Bruce J.
author_facet Lam, Jesse H.
Hill, Brian
Quang, Timothy
Amelard, Robert
Kim, Sehwan
Yazdi, Hossein S.
Warren, Robert V.
Cutler, Kyle B.
Tromberg, Bruce J.
author_sort Lam, Jesse H.
collection PubMed
description Significance: Diffuse optical spectroscopic imaging (DOSI) is a versatile technology sensitive to changes in tissue composition and hemodynamics and has been used for a wide variety of clinical applications. Specific applications have prompted the development of versions of the DOSI technology to fit specific clinical needs. This work describes the development and characterization of a multi-modal DOSI (MM-DOSI) system that can acquire metabolic, compositional, and pulsatile information at multiple penetration depths in a single hardware platform. Additionally, a 3D tracking system is integrated with MM-DOSI, which enables registration of the acquired data to the physical imaging area. Aim: We demonstrate imaging, layered compositional analysis, and metabolism tracking capabilities using a single MM-DOSI system on optical phantoms as well as in vivo human tissue. Approach: We characterize system performance with a silicone phantom containing an embedded object. To demonstrate multi-layer sensitivity, we imaged human calf tissue with a 4.8-mm skin-adipose thickness. Human thenar tissue was also measured using a combined broadband DOSI and continuous-wave near-infrared spectroscopy method ([Formula: see text] acquisition rate). Results: High-resolution optical property maps of absorption ([Formula: see text]) and reduced scattering ([Formula: see text]) were recovered on the phantom by capturing over 1000 measurement points in under 5 minutes. On human calf tissue, we show two probing depth layers have significantly different ([Formula: see text]) total-hemo/myoglobin and [Formula: see text] composition. On thenar tissue, we calculate tissue arterial oxygen saturation, venous oxygen saturation, and tissue metabolic rate of oxygen consumption during baseline and after release of an arterial occlusion. Conclusions: The MM-DOSI can switch between collection of broadband spectra, high-resolution images, or multi-depth hemodynamics without any hardware reconfiguration. We conclude that MM-DOSI enables acquisition of high resolution, multi-modal data consolidated in a single platform, which can provide a more comprehensive understanding of tissue hemodynamics and composition for a wide range of clinical applications.
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spelling pubmed-83628922021-08-15 Multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics Lam, Jesse H. Hill, Brian Quang, Timothy Amelard, Robert Kim, Sehwan Yazdi, Hossein S. Warren, Robert V. Cutler, Kyle B. Tromberg, Bruce J. J Biomed Opt General Significance: Diffuse optical spectroscopic imaging (DOSI) is a versatile technology sensitive to changes in tissue composition and hemodynamics and has been used for a wide variety of clinical applications. Specific applications have prompted the development of versions of the DOSI technology to fit specific clinical needs. This work describes the development and characterization of a multi-modal DOSI (MM-DOSI) system that can acquire metabolic, compositional, and pulsatile information at multiple penetration depths in a single hardware platform. Additionally, a 3D tracking system is integrated with MM-DOSI, which enables registration of the acquired data to the physical imaging area. Aim: We demonstrate imaging, layered compositional analysis, and metabolism tracking capabilities using a single MM-DOSI system on optical phantoms as well as in vivo human tissue. Approach: We characterize system performance with a silicone phantom containing an embedded object. To demonstrate multi-layer sensitivity, we imaged human calf tissue with a 4.8-mm skin-adipose thickness. Human thenar tissue was also measured using a combined broadband DOSI and continuous-wave near-infrared spectroscopy method ([Formula: see text] acquisition rate). Results: High-resolution optical property maps of absorption ([Formula: see text]) and reduced scattering ([Formula: see text]) were recovered on the phantom by capturing over 1000 measurement points in under 5 minutes. On human calf tissue, we show two probing depth layers have significantly different ([Formula: see text]) total-hemo/myoglobin and [Formula: see text] composition. On thenar tissue, we calculate tissue arterial oxygen saturation, venous oxygen saturation, and tissue metabolic rate of oxygen consumption during baseline and after release of an arterial occlusion. Conclusions: The MM-DOSI can switch between collection of broadband spectra, high-resolution images, or multi-depth hemodynamics without any hardware reconfiguration. We conclude that MM-DOSI enables acquisition of high resolution, multi-modal data consolidated in a single platform, which can provide a more comprehensive understanding of tissue hemodynamics and composition for a wide range of clinical applications. Society of Photo-Optical Instrumentation Engineers 2021-08-13 2021-08 /pmc/articles/PMC8362892/ /pubmed/34390234 http://dx.doi.org/10.1117/1.JBO.26.8.085002 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/Published by SPIE under a Creative Commons Attribution 4.0 Unported License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
spellingShingle General
Lam, Jesse H.
Hill, Brian
Quang, Timothy
Amelard, Robert
Kim, Sehwan
Yazdi, Hossein S.
Warren, Robert V.
Cutler, Kyle B.
Tromberg, Bruce J.
Multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics
title Multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics
title_full Multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics
title_fullStr Multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics
title_full_unstemmed Multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics
title_short Multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics
title_sort multi-modal diffuse optical spectroscopy for high-speed monitoring and wide-area mapping of tissue optical properties and hemodynamics
topic General
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8362892/
https://www.ncbi.nlm.nih.gov/pubmed/34390234
http://dx.doi.org/10.1117/1.JBO.26.8.085002
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