Literature DB >> 26670523

Effect of scanning beam size on the lateral resolution of mouse retinal imaging with SLO.

Pengfei Zhang, Mayank Goswami, Azhar Zam, Edward N Pugh, Robert J Zawadzki.   

Abstract

Scanning laser ophthalmoscopy (SLO) employs the eye's optics as a microscope objective for retinal imaging in vivo. The mouse retina has become an increasingly important object for investigation of ocular disease and physiology with optogenetic probes. SLO imaging of the mouse eye, in principle, can achieve submicron lateral resolution thanks to a numerical aperture (NA) of ∼0.5, about 2.5 times larger than that of the human eye. In the absence of adaptive optics, however, natural ocular aberrations limit the available optical resolution. The use of a contact lens, in principle, can correct many aberrations, permitting the use of a wider scanning beam and, thus, achieving greater resolution then would otherwise be possible. In this Letter, using an SLO equipped with a rigid contact lens, we report the effect of scanning beam size on the lateral resolution of mouse retinal imaging. Theory predicts that the maximum beam size full width at half-maximum (FWHM) that can be used without any deteriorating effects of aberrations is ∼0.6  mm. However, increasing the beam size up to the diameter of the dilated pupil is predicted to improve lateral resolution, though not to the diffraction limit. To test these predictions, the dendrites of a retinal ganglion cell expressing YFP were imaged, and transverse scans were analyzed to quantify the SLO system resolution. The results confirmed that lateral resolution increases with the beam size as predicted. With a 1.3 mm scanning beam and no high-order aberration correction, the lateral resolution is ∼1.15  μm, superior to that achievable by most human AO-SLO systems. Advantages of this approach include stabilization of the mouse eye and simplified optical design.

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Year:  2015        PMID: 26670523      PMCID: PMC4915368          DOI: 10.1364/OL.40.005830

Source DB:  PubMed          Journal:  Opt Lett        ISSN: 0146-9592            Impact factor:   3.776


  10 in total

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Authors:  William J Donnelly; Austin Roorda
Journal:  J Opt Soc Am A Opt Image Sci Vis       Date:  2003-11       Impact factor: 2.129

Review 2.  The scanning laser ophthalmoscope--a review of its role in bioscience and medicine.

Authors:  P F Sharp; A Manivannan; H Xu; J V Forrester
Journal:  Phys Med Biol       Date:  2004-04-07       Impact factor: 3.609

3.  In vivo confocal imaging of the retina in animal models using scanning laser ophthalmoscopy.

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Journal:  Vision Res       Date:  2005-09-26       Impact factor: 1.886

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5.  High resolution fundus imaging by confocal scanning laser ophthalmoscopy in the mouse.

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7.  Periscope for noninvasive two-photon imaging of murine retina in vivo.

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  10 in total
  10 in total

1.  Aperture phase modulation with adaptive optics: a novel approach for speckle reduction and structure extraction in optical coherence tomography.

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2.  In vivo optophysiology reveals that G-protein activation triggers osmotic swelling and increased light scattering of rod photoreceptors.

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3.  Volumetric data analysis enabled spatially resolved optoretinogram to measure the functional signals in the living retina.

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4.  Extraction of phase-based optoretinograms (ORG) from serial B-scans acquired over tens of seconds by mouse retinal raster scanning OCT system.

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5.  A Novel Reporter Mouse Uncovers Endogenous Brn3b Expression.

Authors:  Adam M Miltner; Yesica Mercado-Ayon; Simranjeet K Cheema; Pengfei Zhang; Robert J Zawadzki; Anna La Torre
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6.  In vivo imaging reveals transient microglia recruitment and functional recovery of photoreceptor signaling after injury.

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7.  Optical modelling of a supplementary tunable air-spaced goggle lens for rodent eye imaging.

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8.  Effect of a contact lens on mouse retinal in vivo imaging: Effective focal length changes and monochromatic aberrations.

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9.  Temporal speckle-averaging of optical coherence tomography volumes for in-vivo cellular resolution neuronal and vascular retinal imaging.

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10.  Retinal analysis of a mouse model of Alzheimer's disease with multicontrast optical coherence tomography.

Authors:  Danielle J Harper; Marco Augustin; Antonia Lichtenegger; Johanna Gesperger; Tanja Himmel; Martina Muck; Conrad W Merkle; Pablo Eugui; Stefan Kummer; Adelheid Woehrer; Martin Glösmann; Bernhard Baumann
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  10 in total

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