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Wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system

PURPOSE: Photoacoustic tomography (PAT) is a non-invasive and high-resolution imaging technique that can provide functional and molecular information from the optical properties of pathological tissues, such as cancer. Spectroscopic PAT (sPAT) is capable of supplying information such as oxygen satur...

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Autores principales: Pattyn, Alexander, Yan, Yan, Mehrmohammadi, Mohammad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10517392/
https://www.ncbi.nlm.nih.gov/pubmed/37225605
http://dx.doi.org/10.1016/j.zemedi.2023.04.005
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author Pattyn, Alexander
Yan, Yan
Mehrmohammadi, Mohammad
author_facet Pattyn, Alexander
Yan, Yan
Mehrmohammadi, Mohammad
author_sort Pattyn, Alexander
collection PubMed
description PURPOSE: Photoacoustic tomography (PAT) is a non-invasive and high-resolution imaging technique that can provide functional and molecular information from the optical properties of pathological tissues, such as cancer. Spectroscopic PAT (sPAT) is capable of supplying information such as oxygen saturation (sO(2)), which is an important biological indicator for diseases such as cancer. However, the wavelength dependent nature of sPAT makes it challenging to provide accurate quantitative measurements of tissue oxygenation beyond shallow depths. We have previously reported the utility of combined ultrasound tomography and PAT to achieve optical and acoustic compensated PAT images at a single wavelength and for enhanced PAT images at larger depths. In this work we further explore the utility of the optical and acoustic compensation PAT algorithm to minimize the wavelength dependency in sPAT by showcasing improvements in spectral unmixing. MATERIALS AND METHODS: Two optically and acoustically characterized heterogenous phantoms were manufactured to test the ability of the system and developed algorithm to minimize the wavelength-dependence driven error in sPAT spectral unmixing. The PA inclusions within each phantom were composed of a mixture of two sulfate dyes, copper sulfate (CuSO(4)) and nickel sulfate (NiSO(4)), with known optical spectra. Improvements between uncompensated and optically and acoustically compensated PAT (OAcPAT) were quantified as the relative percent error between the measured results and the ground truth. RESULTS: The results of our phantom studies demonstrate that OAcPAT can significantly improve the accuracy of sPAT measurements in a heterogenous medium and especially at larger inclusions depths which can reach to up to 12% improvement in measurement errors. This significant improvement can play a vital role in reliability of future in-vivo biomarker quantifications. CONCLUSIONS: Utilizing UST for model-based optical and acoustic compensation of PAT images was proposed by our group previously. In this work, we further demonstrated the efficacy of the developed algorithm in sPAT by minimizing the error caused by the tissue’s optical heterogeneity on improving spectral unmixing, which is a major limiting factor in reliability of sPAT measurements. Such synergistic combination of UST and PAT provides a window of opportunity to achieve bias-free quantitative sPAT measurements, which plays an important role in future pre-clinical and clinical utility of PAT.
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spelling pubmed-105173922023-09-24 Wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system Pattyn, Alexander Yan, Yan Mehrmohammadi, Mohammad Z Med Phys Original Paper PURPOSE: Photoacoustic tomography (PAT) is a non-invasive and high-resolution imaging technique that can provide functional and molecular information from the optical properties of pathological tissues, such as cancer. Spectroscopic PAT (sPAT) is capable of supplying information such as oxygen saturation (sO(2)), which is an important biological indicator for diseases such as cancer. However, the wavelength dependent nature of sPAT makes it challenging to provide accurate quantitative measurements of tissue oxygenation beyond shallow depths. We have previously reported the utility of combined ultrasound tomography and PAT to achieve optical and acoustic compensated PAT images at a single wavelength and for enhanced PAT images at larger depths. In this work we further explore the utility of the optical and acoustic compensation PAT algorithm to minimize the wavelength dependency in sPAT by showcasing improvements in spectral unmixing. MATERIALS AND METHODS: Two optically and acoustically characterized heterogenous phantoms were manufactured to test the ability of the system and developed algorithm to minimize the wavelength-dependence driven error in sPAT spectral unmixing. The PA inclusions within each phantom were composed of a mixture of two sulfate dyes, copper sulfate (CuSO(4)) and nickel sulfate (NiSO(4)), with known optical spectra. Improvements between uncompensated and optically and acoustically compensated PAT (OAcPAT) were quantified as the relative percent error between the measured results and the ground truth. RESULTS: The results of our phantom studies demonstrate that OAcPAT can significantly improve the accuracy of sPAT measurements in a heterogenous medium and especially at larger inclusions depths which can reach to up to 12% improvement in measurement errors. This significant improvement can play a vital role in reliability of future in-vivo biomarker quantifications. CONCLUSIONS: Utilizing UST for model-based optical and acoustic compensation of PAT images was proposed by our group previously. In this work, we further demonstrated the efficacy of the developed algorithm in sPAT by minimizing the error caused by the tissue’s optical heterogeneity on improving spectral unmixing, which is a major limiting factor in reliability of sPAT measurements. Such synergistic combination of UST and PAT provides a window of opportunity to achieve bias-free quantitative sPAT measurements, which plays an important role in future pre-clinical and clinical utility of PAT. Elsevier 2023-05-22 /pmc/articles/PMC10517392/ /pubmed/37225605 http://dx.doi.org/10.1016/j.zemedi.2023.04.005 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Paper
Pattyn, Alexander
Yan, Yan
Mehrmohammadi, Mohammad
Wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system
title Wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system
title_full Wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system
title_fullStr Wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system
title_full_unstemmed Wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system
title_short Wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system
title_sort wavelength-dependent error minimization for quantitative spectroscopic photoacoustic tomography with a ring-array system
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10517392/
https://www.ncbi.nlm.nih.gov/pubmed/37225605
http://dx.doi.org/10.1016/j.zemedi.2023.04.005
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