Cargando…

Quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography

PURPOSE: To quantitatively evaluate the retinal microvasculature in human subjects with retinal venous occlusions (RVO) using optical coherence tomography angiography (OCTA). DESIGN: Retrospective, cross-sectional, observational case series. PARTICIPANTS: Sixty subjects (84 eyes) were included (20 B...

Descripción completa

Detalles Bibliográficos
Autores principales: Koulisis, Nicole, Kim, Alice Y., Chu, Zhongdi, Shahidzadeh, Anoush, Burkemper, Bruce, Olmos de Koo, Lisa C., Moshfeghi, Andrew A., Ameri, Hossein, Puliafito, Carmen A., Isozaki, Veronica L., Wang, Ruikang K., Kashani, Amir H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5402954/
https://www.ncbi.nlm.nih.gov/pubmed/28437483
http://dx.doi.org/10.1371/journal.pone.0176404
_version_ 1783231333756043264
author Koulisis, Nicole
Kim, Alice Y.
Chu, Zhongdi
Shahidzadeh, Anoush
Burkemper, Bruce
Olmos de Koo, Lisa C.
Moshfeghi, Andrew A.
Ameri, Hossein
Puliafito, Carmen A.
Isozaki, Veronica L.
Wang, Ruikang K.
Kashani, Amir H.
author_facet Koulisis, Nicole
Kim, Alice Y.
Chu, Zhongdi
Shahidzadeh, Anoush
Burkemper, Bruce
Olmos de Koo, Lisa C.
Moshfeghi, Andrew A.
Ameri, Hossein
Puliafito, Carmen A.
Isozaki, Veronica L.
Wang, Ruikang K.
Kashani, Amir H.
author_sort Koulisis, Nicole
collection PubMed
description PURPOSE: To quantitatively evaluate the retinal microvasculature in human subjects with retinal venous occlusions (RVO) using optical coherence tomography angiography (OCTA). DESIGN: Retrospective, cross-sectional, observational case series. PARTICIPANTS: Sixty subjects (84 eyes) were included (20 BRVO, 14 CRVO, 24 unaffected fellow eyes, and 26 controls). METHODS: OCTA was performed on a prototype, spectral domain-OCTA system in the 3x3mm central macular region. Custom software was used to quantify morphology and density of retinal capillaries using four quantitative parameters. The vasculature of the segmented retinal layers and nonsegmented whole retina were analyzed. MAIN OUTCOME MEASURES: Fractal dimension (FD), vessel density (VD), skeletal density (SD), and vessel diameter index (VDI) within the segmented retinal layers and nonsegmented whole retina vasculature. RESULTS: Nonsegmented analysis of RVO eyes demonstrated significantly lower FD (1.64±0.01 vs 1.715±0.002; p<0.001), VD (0.32±0.01 vs 0.432±0.002; p<0.001), and SD (0.073±0.004 vs 0.099±0.001; p<0.001) compared to controls. Compared to the fellow eye, FD, VD and SD were lower (p<0.001), and VDI was higher (p<0.001). FD, VD, and SD progressively decreased as the extent (or type) of RVO increased (control vs BRVO vs CRVO; p<0.001). In the unaffected fellow eye FD, VD and SD showed significant differences when compared to control eyes or affected RVO eyes (p<0.001). CONCLUSIONS: Quantitative OCTA of the central 3x3mm macular region demonstrates significant differences in capillary density and morphology among subjects with BRVO and CRVO compared to controls or unaffected fellow eyes in all vascular layers. The unaffected fellow eyes also demonstrate significant differences when compared to controls. OCTA allows for noninvasive, layer-specific, quantitative evaluation of RVO-associated microvascular changes.
format Online
Article
Text
id pubmed-5402954
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-54029542017-05-12 Quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography Koulisis, Nicole Kim, Alice Y. Chu, Zhongdi Shahidzadeh, Anoush Burkemper, Bruce Olmos de Koo, Lisa C. Moshfeghi, Andrew A. Ameri, Hossein Puliafito, Carmen A. Isozaki, Veronica L. Wang, Ruikang K. Kashani, Amir H. PLoS One Research Article PURPOSE: To quantitatively evaluate the retinal microvasculature in human subjects with retinal venous occlusions (RVO) using optical coherence tomography angiography (OCTA). DESIGN: Retrospective, cross-sectional, observational case series. PARTICIPANTS: Sixty subjects (84 eyes) were included (20 BRVO, 14 CRVO, 24 unaffected fellow eyes, and 26 controls). METHODS: OCTA was performed on a prototype, spectral domain-OCTA system in the 3x3mm central macular region. Custom software was used to quantify morphology and density of retinal capillaries using four quantitative parameters. The vasculature of the segmented retinal layers and nonsegmented whole retina were analyzed. MAIN OUTCOME MEASURES: Fractal dimension (FD), vessel density (VD), skeletal density (SD), and vessel diameter index (VDI) within the segmented retinal layers and nonsegmented whole retina vasculature. RESULTS: Nonsegmented analysis of RVO eyes demonstrated significantly lower FD (1.64±0.01 vs 1.715±0.002; p<0.001), VD (0.32±0.01 vs 0.432±0.002; p<0.001), and SD (0.073±0.004 vs 0.099±0.001; p<0.001) compared to controls. Compared to the fellow eye, FD, VD and SD were lower (p<0.001), and VDI was higher (p<0.001). FD, VD, and SD progressively decreased as the extent (or type) of RVO increased (control vs BRVO vs CRVO; p<0.001). In the unaffected fellow eye FD, VD and SD showed significant differences when compared to control eyes or affected RVO eyes (p<0.001). CONCLUSIONS: Quantitative OCTA of the central 3x3mm macular region demonstrates significant differences in capillary density and morphology among subjects with BRVO and CRVO compared to controls or unaffected fellow eyes in all vascular layers. The unaffected fellow eyes also demonstrate significant differences when compared to controls. OCTA allows for noninvasive, layer-specific, quantitative evaluation of RVO-associated microvascular changes. Public Library of Science 2017-04-24 /pmc/articles/PMC5402954/ /pubmed/28437483 http://dx.doi.org/10.1371/journal.pone.0176404 Text en © 2017 Koulisis et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Koulisis, Nicole
Kim, Alice Y.
Chu, Zhongdi
Shahidzadeh, Anoush
Burkemper, Bruce
Olmos de Koo, Lisa C.
Moshfeghi, Andrew A.
Ameri, Hossein
Puliafito, Carmen A.
Isozaki, Veronica L.
Wang, Ruikang K.
Kashani, Amir H.
Quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography
title Quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography
title_full Quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography
title_fullStr Quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography
title_full_unstemmed Quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography
title_short Quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography
title_sort quantitative microvascular analysis of retinal venous occlusions by spectral domain optical coherence tomography angiography
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5402954/
https://www.ncbi.nlm.nih.gov/pubmed/28437483
http://dx.doi.org/10.1371/journal.pone.0176404
work_keys_str_mv AT koulisisnicole quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT kimalicey quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT chuzhongdi quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT shahidzadehanoush quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT burkemperbruce quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT olmosdekoolisac quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT moshfeghiandrewa quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT amerihossein quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT puliafitocarmena quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT isozakiveronical quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT wangruikangk quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography
AT kashaniamirh quantitativemicrovascularanalysisofretinalvenousocclusionsbyspectraldomainopticalcoherencetomographyangiography