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Micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms

Microscopic and mesoscale optical imaging techniques allow for three-dimensional (3-D) imaging of biological tissue across millimeter-scale regions, and imaging phantom models are invaluable for system characterization and clinical training. Phantom models that replicate complex 3-D geometries with...

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Autores principales: Little, Callum D., Poduval, Radhika K., Caulfield, Richard, Noimark, Sacha, Colchester, Richard J., Loder, Chris D., Tiwari, Manish K., Rakhit, Roby D., Papakonstantinou, Ioannis, Desjardins, Adrien E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society of Photo-Optical Instrumentation Engineers 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6498868/
https://www.ncbi.nlm.nih.gov/pubmed/30770678
http://dx.doi.org/10.1117/1.JBO.24.2.020502
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author Little, Callum D.
Poduval, Radhika K.
Caulfield, Richard
Noimark, Sacha
Colchester, Richard J.
Loder, Chris D.
Tiwari, Manish K.
Rakhit, Roby D.
Papakonstantinou, Ioannis
Desjardins, Adrien E.
author_facet Little, Callum D.
Poduval, Radhika K.
Caulfield, Richard
Noimark, Sacha
Colchester, Richard J.
Loder, Chris D.
Tiwari, Manish K.
Rakhit, Roby D.
Papakonstantinou, Ioannis
Desjardins, Adrien E.
author_sort Little, Callum D.
collection PubMed
description Microscopic and mesoscale optical imaging techniques allow for three-dimensional (3-D) imaging of biological tissue across millimeter-scale regions, and imaging phantom models are invaluable for system characterization and clinical training. Phantom models that replicate complex 3-D geometries with both structural and molecular contrast, with resolution and lateral dimensions equivalent to those of imaging techniques ([Formula: see text]), have proven elusive. We present a method for fabricating phantom models using a combination of two-photon polymerization (2PP) to print scaffolds, and microinjection of tailored tissue-mimicking materials to simulate healthy and diseased tissue. We provide a first demonstration of the capabilities of this method with intravascular optical coherence tomography, an imaging technique widely used in clinical practice. We describe the design, fabrication, and validation of three types of phantom models: a first with subresolution wires (5- to [Formula: see text] diameter) arranged circumferentially, a second with a vessel side-branch, and a third containing a lipid inclusion within a vessel. Silicone hybrid materials and lipids, microinjected within a resin framework created with 2PP, served as tissue-mimicking materials that provided realistic optical scattering and absorption. We demonstrate that optical phantom models made with 2PP and microinjected tissue-mimicking materials can simulate complex anatomy and pathology with exquisite detail.
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spelling pubmed-64988682019-08-07 Micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms Little, Callum D. Poduval, Radhika K. Caulfield, Richard Noimark, Sacha Colchester, Richard J. Loder, Chris D. Tiwari, Manish K. Rakhit, Roby D. Papakonstantinou, Ioannis Desjardins, Adrien E. J Biomed Opt JBO Letters Microscopic and mesoscale optical imaging techniques allow for three-dimensional (3-D) imaging of biological tissue across millimeter-scale regions, and imaging phantom models are invaluable for system characterization and clinical training. Phantom models that replicate complex 3-D geometries with both structural and molecular contrast, with resolution and lateral dimensions equivalent to those of imaging techniques ([Formula: see text]), have proven elusive. We present a method for fabricating phantom models using a combination of two-photon polymerization (2PP) to print scaffolds, and microinjection of tailored tissue-mimicking materials to simulate healthy and diseased tissue. We provide a first demonstration of the capabilities of this method with intravascular optical coherence tomography, an imaging technique widely used in clinical practice. We describe the design, fabrication, and validation of three types of phantom models: a first with subresolution wires (5- to [Formula: see text] diameter) arranged circumferentially, a second with a vessel side-branch, and a third containing a lipid inclusion within a vessel. Silicone hybrid materials and lipids, microinjected within a resin framework created with 2PP, served as tissue-mimicking materials that provided realistic optical scattering and absorption. We demonstrate that optical phantom models made with 2PP and microinjected tissue-mimicking materials can simulate complex anatomy and pathology with exquisite detail. Society of Photo-Optical Instrumentation Engineers 2019-02-15 2019-02 /pmc/articles/PMC6498868/ /pubmed/30770678 http://dx.doi.org/10.1117/1.JBO.24.2.020502 Text en © The Authors. 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 JBO Letters
Little, Callum D.
Poduval, Radhika K.
Caulfield, Richard
Noimark, Sacha
Colchester, Richard J.
Loder, Chris D.
Tiwari, Manish K.
Rakhit, Roby D.
Papakonstantinou, Ioannis
Desjardins, Adrien E.
Micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms
title Micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms
title_full Micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms
title_fullStr Micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms
title_full_unstemmed Micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms
title_short Micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms
title_sort micron resolution, high-fidelity three-dimensional vascular optical imaging phantoms
topic JBO Letters
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6498868/
https://www.ncbi.nlm.nih.gov/pubmed/30770678
http://dx.doi.org/10.1117/1.JBO.24.2.020502
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