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In Vivo Imaging of Human Photoreceptor Mosaic with Wavefront Sensorless Adaptive Optics Optical Coherence Tomography

Overview
Specialty Radiology
Date 2015 Mar 18
PMID 25780747
Citations 27
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Abstract

Wavefront sensorless adaptive optics optical coherence tomography (WSAO-OCT) is a novel imaging technique for in vivo high-resolution depth-resolved imaging that mitigates some of the challenges encountered with the use of sensor-based adaptive optics designs. This technique replaces the Hartmann Shack wavefront sensor used to measure aberrations with a depth-resolved image-driven optimization algorithm, with the metric based on the OCT volumes acquired in real-time. The custom-built ultrahigh-speed GPU processing platform and fast modal optimization algorithm presented in this paper was essential in enabling real-time, in vivo imaging of human retinas with wavefront sensorless AO correction. WSAO-OCT is especially advantageous for developing a clinical high-resolution retinal imaging system as it enables the use of a compact, low-cost and robust lens-based adaptive optics design. In this report, we describe our WSAO-OCT system for imaging the human photoreceptor mosaic in vivo. We validated our system performance by imaging the retina at several eccentricities, and demonstrated the improvement in photoreceptor visibility with WSAO compensation.

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References
1.
Bonora S, Zawadzki R . Wavefront sensorless modal deformable mirror correction in adaptive optics: optical coherence tomography. Opt Lett. 2013; 38(22):4801-4. DOI: 10.1364/OL.38.004801. View

2.
Booth M . Wavefront sensorless adaptive optics for large aberrations. Opt Lett. 2006; 32(1):5-7. DOI: 10.1364/ol.32.000005. View

3.
Lee S, Werner J, Zawadzki R . Improved visualization of outer retinal morphology with aberration cancelling reflective optical design for adaptive optics - optical coherence tomography. Biomed Opt Express. 2013; 4(11):2508-17. PMC: 3829545. DOI: 10.1364/BOE.4.002508. View

4.
Dubra A, Sulai Y . Reflective afocal broadband adaptive optics scanning ophthalmoscope. Biomed Opt Express. 2011; 2(6):1757-68. PMC: 3114240. DOI: 10.1364/BOE.2.001757. View

5.
Pircher M, Baumann B, Gotzinger E, Sattmann H, Hitzenberger C . Simultaneous SLO/OCT imaging of the human retina with axial eye motion correction. Opt Express. 2009; 15(25):16922-32. PMC: 2975933. DOI: 10.1364/oe.15.016922. View