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Molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: Rational design through target quantification

OBJECTIVES: Optical coherence tomography (OCT) is a high resolution imaging technique used to assess superficial atherosclerotic plaque morphology. Utility of OCT may be enhanced by contrast agents targeting molecular mediators of inflammation. METHODS AND RESULTS: Microparticles of iron oxide (MPIO...

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Autores principales: Jefferson, Andrew, Wijesurendra, Rohan S., McAteer, Martina A., Digby, Janet E., Douglas, Gillian, Bannister, Thomas, Perez-Balderas, Francisco, Bagi, Zsolt, Lindsay, Alistair C., Choudhury, Robin P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3234340/
https://www.ncbi.nlm.nih.gov/pubmed/21872249
http://dx.doi.org/10.1016/j.atherosclerosis.2011.07.127
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author Jefferson, Andrew
Wijesurendra, Rohan S.
McAteer, Martina A.
Digby, Janet E.
Douglas, Gillian
Bannister, Thomas
Perez-Balderas, Francisco
Bagi, Zsolt
Lindsay, Alistair C.
Choudhury, Robin P.
author_facet Jefferson, Andrew
Wijesurendra, Rohan S.
McAteer, Martina A.
Digby, Janet E.
Douglas, Gillian
Bannister, Thomas
Perez-Balderas, Francisco
Bagi, Zsolt
Lindsay, Alistair C.
Choudhury, Robin P.
author_sort Jefferson, Andrew
collection PubMed
description OBJECTIVES: Optical coherence tomography (OCT) is a high resolution imaging technique used to assess superficial atherosclerotic plaque morphology. Utility of OCT may be enhanced by contrast agents targeting molecular mediators of inflammation. METHODS AND RESULTS: Microparticles of iron oxide (MPIO; 1 and 4.5 μm diameter) in suspension were visualized and accurately quantified using a clinical optical coherence tomography system. Bound to PECAM-1 on a plane of cultured endothelial cells under static conditions, 1 μm MPIO were also readily detected by OCT. To design a molecular contrast probe that would bind activated endothelium under conditions of shear stress, we quantified the expression (basal vs. TNF-activated; molecules μm(−2)) of VCAM-1 (not detected vs. 16 ± 1); PECAM-1 (132 ± 6 vs. 198 ± 10) and E-selectin (not detected vs. 46 ± 0.6) using quantitative flow cytometry. We then compared the retention of antibody-conjugated MPIO targeting each of these molecules plus a combined VCAM-1 and E-selectin (E + V) probe across a range of physiologically relevant shear stresses. E + V MPIO were consistently retained with highest efficiency (P < 0.001) and at a density that provided conspicuous contrast effects on OCT pullback. CONCLUSION: Microparticles of iron oxide were detectable using a clinical OCT system. Assessment of binding under flow conditions recommended an approach that targeted both E-selectin and VCAM-1. Bound to HUVEC under conditions of flow, targeted 1 μm E + V MPIO were readily identified on OCT pullback. Molecular imaging with OCT may be feasible in vivo using antibody targeted MPIO.
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spelling pubmed-32343402011-12-28 Molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: Rational design through target quantification Jefferson, Andrew Wijesurendra, Rohan S. McAteer, Martina A. Digby, Janet E. Douglas, Gillian Bannister, Thomas Perez-Balderas, Francisco Bagi, Zsolt Lindsay, Alistair C. Choudhury, Robin P. Atherosclerosis Article OBJECTIVES: Optical coherence tomography (OCT) is a high resolution imaging technique used to assess superficial atherosclerotic plaque morphology. Utility of OCT may be enhanced by contrast agents targeting molecular mediators of inflammation. METHODS AND RESULTS: Microparticles of iron oxide (MPIO; 1 and 4.5 μm diameter) in suspension were visualized and accurately quantified using a clinical optical coherence tomography system. Bound to PECAM-1 on a plane of cultured endothelial cells under static conditions, 1 μm MPIO were also readily detected by OCT. To design a molecular contrast probe that would bind activated endothelium under conditions of shear stress, we quantified the expression (basal vs. TNF-activated; molecules μm(−2)) of VCAM-1 (not detected vs. 16 ± 1); PECAM-1 (132 ± 6 vs. 198 ± 10) and E-selectin (not detected vs. 46 ± 0.6) using quantitative flow cytometry. We then compared the retention of antibody-conjugated MPIO targeting each of these molecules plus a combined VCAM-1 and E-selectin (E + V) probe across a range of physiologically relevant shear stresses. E + V MPIO were consistently retained with highest efficiency (P < 0.001) and at a density that provided conspicuous contrast effects on OCT pullback. CONCLUSION: Microparticles of iron oxide were detectable using a clinical OCT system. Assessment of binding under flow conditions recommended an approach that targeted both E-selectin and VCAM-1. Bound to HUVEC under conditions of flow, targeted 1 μm E + V MPIO were readily identified on OCT pullback. Molecular imaging with OCT may be feasible in vivo using antibody targeted MPIO. Elsevier 2011-12 /pmc/articles/PMC3234340/ /pubmed/21872249 http://dx.doi.org/10.1016/j.atherosclerosis.2011.07.127 Text en © 2011 Elsevier Ireland Ltd. https://creativecommons.org/licenses/by-nc-nd/3.0/ Open Access under CC BY-NC-ND 3.0 (https://creativecommons.org/licenses/by-nc-nd/3.0/) license
spellingShingle Article
Jefferson, Andrew
Wijesurendra, Rohan S.
McAteer, Martina A.
Digby, Janet E.
Douglas, Gillian
Bannister, Thomas
Perez-Balderas, Francisco
Bagi, Zsolt
Lindsay, Alistair C.
Choudhury, Robin P.
Molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: Rational design through target quantification
title Molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: Rational design through target quantification
title_full Molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: Rational design through target quantification
title_fullStr Molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: Rational design through target quantification
title_full_unstemmed Molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: Rational design through target quantification
title_short Molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: Rational design through target quantification
title_sort molecular imaging with optical coherence tomography using ligand-conjugated microparticles that detect activated endothelial cells: rational design through target quantification
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3234340/
https://www.ncbi.nlm.nih.gov/pubmed/21872249
http://dx.doi.org/10.1016/j.atherosclerosis.2011.07.127
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