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A Snapshot Adaptive Optics and Hyperspectral Autofluorescence Fundus Camera for Age-Related Macular Degeneration (AMD)

Snapshot 3D Ultra-high-resolution OCT and Hyperspectral AF of In-vivo Retina

Status
Active, not recruiting
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT03963817
Enrollment
50
Registered
2019-05-28
Start date
2023-09-06
Completion date
2027-12-01
Last updated
2026-02-24

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

Conditions

Age Related Macular Degeneration

Keywords

Imaging, Autofluorescence imaging, Spectral domain optical coherence tomography, Adaptive optics, Soft drusen, Reticular pseudodrusen

Brief summary

This study proposes to use a new instrument (AO-OCT/AF: adaptive optics - optical coherence tomography/autofluorescence) combined with a data processing method to image the retinal pigment epithelium (RPE) of the eye in normal subjects and in subjects with age-related macular degeneration. (AMD). While currently there is no cure, with early diagnosis, vision loss can be slowed. The technology being developed for this project will be the first imaging modality that can provide both structural and molecular information about the retina in vivo and in 3D.

Detailed description

An imaging modality that allows for fast, simultaneous, noninvasive probing of both 3D cellular resolution retinal morphology by optical coherence tomography (OCT) and molecular-specific functions by autofluorescence (AF) could substantially improve both basic understanding and the early diagnosis of age-related macular degeneration (AMD), the leading cause of blindness in the developed world. The evaluation and management of AMD utilize several investigation modalities, but advancements in OCT technology have significantly contributed to better understanding of the disease, and have helped with monitoring progression and therapeutic efficacy. However, due to optical aberrations of the eye, the transverse resolution of conventional OCT is generally limited to 10-15 µm, restricting its use to visualize individual retinal cells in vivo. The integration of adaptive optics (AO) into OCT has demonstrated an immense success in mitigating these aberrations. Among various AO-OCT techniques, computation-based AO (CAO) becomes the spotlight of research because it shows unique advantages in data postprocessing flexibility and a reduced system cost. However, CAO is extremely sensitive to phase stability. The rapid motion of the eye can easily scramble the phase of reflected photons, restricting imaging to a single en-face layer. To overcome this problem, the study team will integrate a snapshot hyperspectral imaging method, Image Mapping Spectrometry (IMS), with full-field spectral-domain OCT. The integrated system will first enable 3D CAO imaging of the retina because the single camera exposure (4 s),is too fast for eye movement to scramble phase between layers. Next, to improve resolution in 3D, the study team will adapt an established CAO algorithm to correct for wavefront aberrations. The resultant method, which the study team terms snapshot ultra-high-resolution OCT, will allow an acquisition of a quarter million A-scans simultaneously. Given a typical flash illumination duration (4us), the equivalent A-scan rate is 62.5 GHz, which is approximately three orders of magnitude faster than the state-of-the-art methods. Furthermore, to expand the system's functionality to molecular imaging, the study team will add a second IMS imaging channel for simultaneous hyperspectral imaging of retinal pigment epithelium (RPE) AF, enabling spectral biopsy of RPE and subRPE lesions such as drusen, the hallmark lesion of early AMD. The resultant dual-channel AO-OCT/AF system will be the first imaging modality that can provide both structural and molecular information about the retina in vivo and in 3D. The study team envisions such a system would shift the landscape of AMD evaluation and management. The insights so obtained will be of high value in clinical diagnosis and treatment. In addition, such a system will accelerate translational research with sensitive and early outcome testing of prospective therapeutic agents, saving sight and thereby providing enormous benefit to society.

Interventions

DIAGNOSTIC_TESTadaptive optics AO-OCT/AF instrument

Using the new adaptive optics AO-OCT/AF instrument, the study team will image 10 normal subjects in order to optimize image acquisition and interpretation.

Sponsors

Icahn School of Medicine at Mount Sinai
Lead SponsorOTHER
University of California, Los Angeles
CollaboratorOTHER
National Eye Institute (NEI)
CollaboratorNIH

Study design

Observational model
CASE_ONLY
Time perspective
CROSS_SECTIONAL

Eligibility

Sex/Gender
ALL
Age
60 Years to 90 Years
Healthy volunteers
Yes

Inclusion criteria

* Patients must be aged 60 and over and pseudophakic, with clear posterior capsule and dilation to 6mm. * Patients must be diagnosed early/intermediate AMD in at least one eye (the study eye) with soft drusen or reticular pseudodrusen in the macula.

Exclusion criteria

* Retinopathy other than AMD. * Inability to give informed consent * Bilateral advanced AMD * Allergy to dilation eye drops

Design outcomes

Primary

MeasureTime frameDescription
Excitation spectra3 yearsExcitation spectra of the retinal tissue at or near 436 nm, which will be considered representative of drusen or drusenoid material

Secondary

MeasureTime frameDescription
Emission spectra3 yearsEmission spectra of the retinal tissue at or near 510 nm, which will be considered representative of drusen or drusenoid material

Countries

United States

Contacts

PRINCIPAL_INVESTIGATORRonald Theodore Smith, MD, PhD

Icahn School of Medicine at Mount Sinai

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 25, 2026