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1.
Transl Vis Sci Technol ; 9(7): 16, 2020 06.
Article in English | MEDLINE | ID: mdl-32832223

ABSTRACT

Purpose: The development of new approaches to human vision restoration could be greatly accelerated with the use of nonhuman primate models; however, there is a paucity of primate models of outer retina degeneration with good spatial localization. To limit ablation to the photoreceptors, we developed a new approach that uses a near-infrared ultrafast laser, focused using adaptive optics, to concentrate light in a small focal volume within the retina. Methods: In the eyes of eight anesthetized macaques, 187 locations were exposed to laser powers from 50 to 210 mW. Laser exposure locations were monitored for up to 18 months using fluorescein angiography (FA), optical coherence tomography (OCT), scanning laser ophthalmoscopy (SLO), adaptive optics scanning laser ophthalmoscope (AOSLO) reflectance imaging, two-photon excited fluorescence (TPEF) ophthalmoscopy, histology, and calcium responses of retinal ganglion cells. Results: This method produced localized photoreceptor loss with minimal axial spread of damage to other retinal layers, verified by in-vivo structural imaging and histologic examination, although in some cases evidence of altered autofluorescence was found in the adjacent retinal pigment epithelium (RPE). Functional assessment using blood flow imaging of the retinal plexus and calcium imaging of the response of ganglion cells above the photoreceptor loss shows that inner retinal circuitry was preserved. Conclusions: Although different from a genetic model of retinal degeneration, this model of localized photoreceptor loss may provide a useful testbed for vision restoration studies in nonhuman primates. Translational Relevance: With this model, a variety of vision restoration methods can be tested in the non-human primate.


Subject(s)
Retinal Pigment Epithelium , Tomography, Optical Coherence , Fluorescein Angiography , Ophthalmoscopy , Photoreceptor Cells
2.
Stem Cell Reports ; 15(2): 482-497, 2020 08 11.
Article in English | MEDLINE | ID: mdl-32707075

ABSTRACT

Stem cell-based transplantation therapies offer hope for currently untreatable retinal degenerations; however, preclinical progress has been largely confined to rodent models. Here, we describe an experimental platform for accelerating photoreceptor replacement therapy in the nonhuman primate, which has a visual system much more similar to the human. We deployed fluorescence adaptive optics scanning light ophthalmoscopy (FAOSLO) to noninvasively track transplanted photoreceptor precursors over time at cellular resolution in the living macaque. Fluorescently labeled photoreceptors generated from a CRX+/tdTomato human embryonic stem cell (hESC) reporter line were delivered subretinally to macaques with normal retinas and following selective ablation of host photoreceptors using an ultrafast laser. The fluorescent reporter together with FAOSLO allowed transplanted photoreceptor precursor survival, migration, and neurite formation to be monitored over time in vivo. Histological examination suggested migration of photoreceptor precursors to the outer plexiform layer and potential synapse formation in ablated areas in the macaque eye.


Subject(s)
Photoreceptor Cells/transplantation , Animals , Cell Differentiation , Fluorescence , Humans , Light , Models, Animal , Optics and Photonics , Primates , Retina/metabolism , Single-Cell Analysis , Tomography, Optical Coherence
3.
Nat Commun ; 11(1): 1703, 2020 04 03.
Article in English | MEDLINE | ID: mdl-32245977

ABSTRACT

Optogenetic therapies for vision restoration aim to confer intrinsic light sensitivity to retinal ganglion cells when photoreceptors have degenerated and light sensitivity has been irreversibly lost. We combine adaptive optics ophthalmoscopy with calcium imaging to optically record optogenetically restored retinal ganglion cell activity in the fovea of the living primate. Recording from the intact eye of a living animal, we compare the patterns of activity evoked by the optogenetic actuator ChrimsonR with natural photoreceptor mediated stimulation in the same retinal ganglion cells. Optogenetic responses are recorded more than one year following administration of the therapy and two weeks after acute loss of photoreceptor input in the living animal. This in vivo imaging approach could be paired with any therapy to minimize the number of primates required to evaluate restored activity on the retinal level, while maximizing translational benefit by using an appropriate pre-clinical model of the human visual system.


Subject(s)
Blindness/therapy , Optogenetics/methods , Photoreceptor Cells, Vertebrate/pathology , Retinal Degeneration/therapy , Retinal Ganglion Cells/physiology , Animals , Blindness/diagnosis , Blindness/etiology , Dependovirus , Disease Models, Animal , Female , Fovea Centralis/cytology , Fovea Centralis/diagnostic imaging , Fovea Centralis/pathology , Genetic Vectors/administration & dosage , Genetic Vectors/genetics , Humans , Macaca fascicularis , Male , Ophthalmoscopy , Optical Imaging , Parvovirinae/genetics , Retinal Degeneration/complications , Retinal Degeneration/diagnostic imaging , Retinal Degeneration/pathology
4.
Opt Lett ; 40(11): 2465-8, 2015 Jun 01.
Article in English | MEDLINE | ID: mdl-26030533

ABSTRACT

Optical stimulation of cells expressing light-sensitive proteins (opsins) has allowed targeted activation with cellular specificity. However, since narrow-band light has been used for excitation of these optogenetic probes, only active stimulation strategies are being attempted for clinical applications such as restoration of vision. Here, we report use of broad spectral excitation (white light) for optogenetic stimulation of opsin-sensitized cells. We found that ReaChR is optimally excited with white light offering significantly higher photocurrents compared to spectrally filtered narrow-band light stimulation. Our findings open up the possibility of passive stimulation strategy by use of natural sunlight for retinal stimulation, which could have benefits for ambient light stimulated vision restoration.


Subject(s)
Light , Opsins/genetics , Optogenetics/methods , HEK293 Cells , Humans , Optical Imaging
5.
PLoS One ; 9(11): e111488, 2014.
Article in English | MEDLINE | ID: mdl-25383687

ABSTRACT

Stimulation of specific neurons expressing opsins in a targeted region to manipulate brain function has proved to be a powerful tool in neuroscience. However, the use of visible light for optogenetic stimulation is invasive due to low penetration depth and tissue damage owing to larger absorption and scattering. Here, we report, for the first time, in-depth non-scanning fiber-optic two-photon optogenetic stimulation (FO-TPOS) of neurons in-vivo in transgenic mouse models. In order to optimize the deep-brain stimulation strategy, we characterized two-photon activation efficacy at different near-infrared laser parameters. The significantly-enhanced in-depth stimulation efficiency of FO-TPOS as compared to conventional single-photon beam was demonstrated both by experiments and Monte Carlo simulation. The non-scanning FO-TPOS technology will lead to better understanding of the in-vivo neural circuitry because this technology permits more precise and less invasive anatomical delivery of stimulation.


Subject(s)
Brain/radiation effects , Fiber Optic Technology/methods , Neurons/radiation effects , Optogenetics/methods , Photons , Analysis of Variance , Animals , Brain/cytology , Deep Brain Stimulation , HEK293 Cells , Humans , Mice , Mice, Transgenic , Models, Chemical , Monte Carlo Method , Patch-Clamp Techniques , Photic Stimulation/methods
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