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Retinal Imaging in Neurodegenerative Disease

Evaluating the Retinal and Choroidal Microvasculature and Structure Using Multimodal Retinal and Choroidal Imaging in Neurodegenerative Disease: iMIND Research Study

Status
Recruiting
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT03233646
Enrollment
2000
Registered
2017-07-28
Start date
2017-07-20
Completion date
2026-12-31
Last updated
2026-02-04

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Alzheimer's Disease, Amyotrophic Lateral Sclerosis (ALS), APOE-4 Positive, Concussion, Down Syndrome, Frontotemporal Dementia, Huntington Disease, Lewy Body Dementia, Mild Cognitive Impairment, Multiple Sclerosis, Neuro-Degenerative Disease, Normal Cognition, Parkinson's Disease, Post-Traumatic Stress Disorder, Traumatic Brain Injury

Keywords

OCT angiography (OCTA), Optical Coherence Tomography (OCT), Vessel Density, Superficial Capillary Plexus, Retinal microvasculature, Scanning Laser Ophthalmoscopy, Ultra-widefield (UWF) Imaging, Perfusion Density, Retinal Nerve Fiber Layer, Ganglion Cell Inner Plexiform Layer, Choroidal Vascularity Index

Brief summary

This study aims to develop and evaluate biomarkers using non-invasive optical coherence tomography (OCT) and OCT angiography (OCTA) as well as ultra-widefield (UWF) fundus photography to assess the structure and function of the retinal and choroidal microvasculature and structure in persons with mild cognitive impairment (MCI) and Alzheimer's Disease (AD), Parkinson's Disease (PD), or other neurodegenerative disease, diseases as outlined.

Detailed description

Using a multidisciplinary approach, this study aims to yield new insight into the vascular and structural pathophysiology of neurodegenerative disease. The investigators propose to develop and evaluate imaging biomarkers from OCT, OCTA, and UWF fundus photos to assess the structure and function of the retinal and choroidal microvasculature and structure in these individuals. The investigators hypothesize that microvascular and structural network alterations in the retina and choroid may mirror and possibly precede changes in the cerebral microcirculation seen in these neurodegenerative diseases. Using advanced image analysis and machine learning techniques, the investigators aim to evaluate markers of reduced capillary blood flow and non-perfusion in the superficial retinal vascular plexus and choriocapillaris imaged using OCT and OCTA, in a resolution not previously possible, that would complement already established retinal structural markers and increase their sensitivity and specificity in the earlier detection of these neurodegenerative diseases. This study looks to provide a proof of concept for retinal and choroidal imaging-based microvascular and structural biomarkers as an effective screening tool for neurodegenerative disease, particularly during in cognitive aging. The protocol for this study was amended and the record was updated accordingly.

Interventions

DEVICERetinal and Choroidal Imaging

Non-invasive OCT, OCTA, and UWF fundus photography of retina

Sponsors

Duke University
Lead SponsorOTHER
University of Edinburgh in Scotland
CollaboratorUNKNOWN
Tan Tock Seng Hospital in Singapore
CollaboratorUNKNOWN
Queens University of Belfast United Kingdom
CollaboratorUNKNOWN

Study design

Observational model
CASE_CONTROL
Time perspective
PROSPECTIVE

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
Yes

Inclusion criteria

* Adults with neurodegenerative disease ((MCI, PD, AD, FTD, DLB, ALS, MS, HD, TBI, concussion, PTSD and other neurodegenerations as well as Down Syndrome) * Adults without neurodegenerative disease

Exclusion criteria

* Inability to cooperate with or complete testing or other neurologic or age- related ocular conditions that would impact image acquisition. * Eyes that have had intraocular surgery, other than cataract surgery. If two eyes satisfy the inclusion criteria, both eyes will be included in the study. If one eye satisfies the inclusion criteria, the eye that qualifies will be included in the study.

Design outcomes

Primary

MeasureTime frameDescription
Change in ganglion cell-inner plexiform layer (GCIPL) thicknessBaseline, 1 yearGanglion cell inner plexiform layer thickness as measured on optical coherence tomography scan of macula
Change in retinal nerve fiber layer (RNFL) thicknessBaseline, 1 yearRetinal nerve fiber layer thickness as measured on optical coherence tomography scan of macula
Change in central subfield thickness (CST)Baseline, 1 yearCentral subfield thickness as measured on optical coherence tomography scan of macula
Change in choroidal vascularity index (CVI)Baseline, 1 yearChoroidal vascularity index as measured using the COIN software in 1500 um area centered on the fovea
Change in foveal avascular zone (FAZ) areaBaseline, 1 yearFoveal avascular zone area as measured in the superficial capillary plexus on 3mm optical coherence tomography angiography scan of the macula
Change in average perfusion density (PD)Baseline, 1 yearAverage perfusion density as measured in the ETDRS 3mm and 6mm circle and rings on optical coherence tomography angiography scan of the macula
Change in average vessel density (VD)Baseline, 1 yearAverage vessel density as measured in the ETDRS 3mm and 6mm circle and rings on optical coherence tomography angiography scan of the macula
Change in average capillary perfusion density (CPD)Baseline, 1 yearCapillary perfusion density as measured on peripapillary 4.5mm optical coherence tomography angiography scan
Change in average capillary flux index (CFI)Baseline, 1 yearCapillary flux index as measured on peripapillary 4.5mm optical coherence tomography angiography scan

Secondary

MeasureTime frameDescription
Change in retinal vessel tortuosityBaseline, 1 yearRetinal vessel tortuosity measured on ultra-widefield scanning laser ophthalmoscopy image using VAMPIRE software
Change in retinal vessel width gradientBaseline, 1 yearRetinal vessel width gradient measured on ultra-widefield scanning laser ophthalmoscopy image using VAMPIRE software
Change in retinal vessel fractal dimensionBaseline, 1 yearRetinal vessel fractal dimension measured on ultra-widefield scanning laser ophthalmoscopy image using VAMPIRE software

Countries

United States

Contacts

CONTACTSharon Fekrat, MD FACS FASRS
imind@duke.edu919-681-3937
PRINCIPAL_INVESTIGATORSharon Fekrat, MD FACS FASRS

Duke University

PRINCIPAL_INVESTIGATORDilraj Grewal, MD

Duke University

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 17, 2026