Literature DB >> 31799029

Retina phantom for the evaluation of optical coherence tomography angiography based on microfluidic channels.

Hyun-Ji Lee1,2, Nafra M Samiudin3,2, Tae Geol Lee1,4, Il Doh3,2,5, Sang-Won Lee1,2,6.   

Abstract

Optical coherence tomography (OCT) angiography (OCTA) has been actively studied as a noninvasive imaging technology to generate retinal blood vessel network maps for the diagnoses of retinal diseases. Given that the uses of OCT and OCTA have increased in the field of ophthalmology, it is necessary to develop retinal phantoms for clinical OCT for product development, performance evaluation, calibration, certification, medical device licensing, and production processes. We developed a retinal layer-mimicking phantom with microfluidic channels based on microfluidic fabrication technology using polydimethylsiloxane (PDMS) and titanium dioxide (TiO2) powder. We implemented superficial and deep retinal vessels using microfluidic channels. In addition, multilayered thin films were synthesized with multiple spin-coating processes that comprised layers that corresponded to the retinal layers, including the ganglion cell layer (GCL), inner plexiform layer (IPL), and inner nuclear layer (INL). The phantom was formed by merging the multilayered thin film, and microfluidic channels were assembled with an optical lens, water chamber, and an aluminum tube case. Finally, we obtained cross-sectional OCT images and en-face OCTA images of the retinal phantom using lab-made ophthalmic OCT. From the cross-sectional OCT image, we could compare each of the layer thicknesses of the phantom with the corresponding layer thicknesses of the human retina. In addition, we obtained en-face OCTA images with injections of intralipid solutions. It is shown that this phantom will be able to be potentially used as a convenient tool to evaluate and standardize the quality and accuracy of OCT and OCTA images.
© 2019 Optical Society of America under the terms of the OSA Open Access Publishing Agreement.

Entities:  

Year:  2019        PMID: 31799029      PMCID: PMC6865089          DOI: 10.1364/BOE.10.005535

Source DB:  PubMed          Journal:  Biomed Opt Express        ISSN: 2156-7085            Impact factor:   3.732


  38 in total

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2.  Statistical analysis of motion contrast in optical coherence tomography angiography.

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5.  Image quality metrics for optical coherence angiography.

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Journal:  Biomed Opt Express       Date:  2015-06-12       Impact factor: 3.732

6.  Comparison of retinal nerve fiber layer thickness measurements by spectral-domain optical coherence tomography systems using a phantom eye model.

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7.  Split-spectrum phase-gradient optical coherence tomography angiography.

Authors:  Gangjun Liu; Yali Jia; Alex D Pechauer; Rahul Chandwani; David Huang
Journal:  Biomed Opt Express       Date:  2016-07-11       Impact factor: 3.732

8.  In vivo volumetric imaging of human retinal circulation with phase-variance optical coherence tomography.

Authors:  Dae Yu Kim; Jeff Fingler; John S Werner; Daniel M Schwartz; Scott E Fraser; Robert J Zawadzki
Journal:  Biomed Opt Express       Date:  2011-05-11       Impact factor: 3.732

9.  Structure and Optical Properties of Titania-PDMS Hybrid Nanocomposites Prepared by In Situ Non-Aqueous Synthesis.

Authors:  Antoine R M Dalod; Ola G Grendal; Anders B Blichfeld; Vedran Furtula; Javier Pérez; Lars Henriksen; Tor Grande; Mari-Ann Einarsrud
Journal:  Nanomaterials (Basel)       Date:  2017-12-20       Impact factor: 5.076

10.  Retinal thickness correlates with parietal cortical atrophy in early-onset Alzheimer's disease and controls.

Authors:  Jurre den Haan; Sarah F Janssen; Jacoba A van de Kreeke; Philip Scheltens; Frank D Verbraak; Femke H Bouwman
Journal:  Alzheimers Dement (Amst)       Date:  2017-11-06
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  2 in total

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2.  Polydimethylsiloxane tissue-mimicking phantoms with tunable optical properties.

Authors:  Aaron M Goldfain; Paul Lemaillet; David W Allen; Kimberly A Briggman; Jeeseong Hwang
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  2 in total

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