Photovoltaic retinal prosthesis restores high-resolution responses to single-pixel stimulation in blind retinas
暂无分享,去创建一个
Diego Ghezzi | Marta Jole Ildelfonsa Airaghi Leccardi | Naïg Aurelia Ludmilla Chenais | D. Ghezzi | M. J. A. Airaghi Leccardi | Naïg A. L. Chenais
[1] G. Lanzani,et al. Light-evoked hyperpolarization and silencing of neurons by conjugated polymers , 2016, Scientific Reports.
[2] Jessy D. Dorn,et al. The Detection of Motion by Blind Subjects With the Epiretinal 60-Electrode (Argus II) Retinal Prosthesis. , 2013, JAMA ophthalmology.
[3] J. D. Weiland,et al. Resolution of the Epiretinal Prosthesis is not Limited by Electrode Size , 2011, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[4] Christopher Hamel. Retinitis pigmentosa , 2006, Orphanet journal of rare diseases.
[5] J. Sommerhalder,et al. Prospects and Limitations of Spatial Resolution , 2017 .
[6] N. Chiba,et al. Young's modulus, fracture strain, and tensile strength of sputtered titanium thin films , 2005 .
[7] S. Diebels,et al. Nanoindentation of Soft Polymers : Modeling , Experiments and Parameter Identification , 2014 .
[8] E. Zrenner,et al. The Subretinal Implant ALPHA: Implantation and Functional Results , 2017 .
[9] Eric J. Sawyer,et al. Mechanical degradation and stability of organic solar cells: molecular and microstructural determinants , 2015 .
[10] Helma Korzybska,et al. What do blind people "see" with retinal prostheses? Observations and qualitative reports of epiretinal implant users. , 2021, PloS one.
[11] P. Detwiler,et al. Cellular Origin of Spontaneous Ganglion Cell Spike Activity in Animal Models of Retinitis Pigmentosa , 2010, Journal of ophthalmology.
[12] N. J. Thai,et al. Determination of retinal surface area , 2017, Journal of anatomy.
[13] Florian Waschkowski,et al. The very large electrode array for retinal stimulation (VLARS)—A concept study , 2019, Journal of neural engineering.
[14] J. Weiland,et al. Improving the spatial resolution of epiretinal implants by increasing stimulus pulse duration , 2015, Science Translational Medicine.
[15] Diego Ghezzi,et al. Virtual reality simulation of epiretinal stimulation highlights the relevance of the visual angle in prosthetic vision , 2020, Journal of neural engineering.
[16] Daniel K Freeman,et al. Multiple components of ganglion cell desensitization in response to prosthetic stimulation , 2011, Journal of neural engineering.
[17] G. Ying,et al. In vivo human choroidal thickness measurements: evidence for diurnal fluctuations. , 2009, Investigative ophthalmology & visual science.
[18] Michael R. Ibbotson,et al. Stimulation Strategies for Improving the Resolution of Retinal Prostheses , 2020, Frontiers in Neuroscience.
[19] E. Mohammadi,et al. Barriers and facilitators related to the implementation of a physiological track and trigger system: A systematic review of the qualitative evidence , 2017, International journal for quality in health care : journal of the International Society for Quality in Health Care.
[20] Gerwin H Gelinck,et al. Near‐Infrared Tandem Organic Photodiodes for Future Application in Artificial Retinal Implants , 2018, Advanced materials.
[21] D. Dacey. The mosaic of midget ganglion cells in the human retina , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[22] Spencer C. Chen,et al. Simulating prosthetic vision: II. Measuring functional capacity , 2009, Vision Research.
[23] Jessy D. Dorn,et al. Interim results from the international trial of Second Sight's visual prosthesis. , 2012, Ophthalmology.
[24] Avi Parush,et al. Human Factors in Healthcare: A Field Guide to Continuous Improvement , 2017, Synthesis Lectures on Assistive, Rehabilitative, and Health-Preserving Technologies.
[25] Alfred Stett,et al. Subretinal electronic chips allow blind patients to read letters and combine them to words , 2010, Proceedings of the Royal Society B: Biological Sciences.
[26] Guglielmo Lanzani,et al. A hybrid bioorganic interface for neuronal photoactivation. , 2011, Nature communications.
[27] Cordelia Erickson-Davis,et al. What do blind people “see” with retinal prostheses? Observations and qualitative reports of epiretinal implant users , 2020, bioRxiv.
[28] P. Greenberg,et al. Retinal implants: a systematic review , 2014, British Journal of Ophthalmology.
[29] R. Jensen,et al. Responses of ganglion cells to repetitive electrical stimulation of the retina , 2007, Journal of neural engineering.
[30] H. Lorach,et al. Implantation of Modular Photovoltaic Subretinal Prosthesis. , 2016, Ophthalmic surgery, lasers & imaging retina.
[31] Y. Shin,et al. Depression and the vision-related quality of life in patients with retinitis pigmentosa , 2008, British Journal of Ophthalmology.
[32] Guglielmo Lanzani,et al. A polymer optoelectronic interface restores light sensitivity in blind rat retinas , 2013, Nature Photonics.
[33] D. G. Green,et al. Evidence that L-AP5 and D,L-AP4 can preferentially block cone signals in the rat retina , 2007, Visual Neuroscience.
[34] S. Liebowitz. Retinitis pigmentosa. , 1979, Journal - American Intra-Ocular Implant Society.
[35] B. Hodson,et al. The effect of passage in vitro and in vivo on the properties of murine fibrosarcomas. II. Sensitivity to cell-mediated cytotoxicity in vitro. , 1985, British Journal of Cancer.
[36] B. Wilhelm,et al. Subretinal Visual Implant Alpha IMS – Clinical trial interim report , 2015, Vision Research.
[37] D. Ghezzi,et al. Naturalistic spatiotemporal modulation of epiretinal stimulation increases the response persistence of retinal ganglion cell , 2020, Journal of neural engineering.
[38] Michael Bach,et al. Basic quantitative assessment of visual performance in patients with very low vision. , 2010, Investigative ophthalmology & visual science.
[39] Eberhart Zrenner,et al. Safety evaluation of “retina implant alpha IMS”—a prospective clinical trial , 2015, Graefe's Archive for Clinical and Experimental Ophthalmology.
[40] D. Dacey,et al. Dendritic field size and morphology of midget and parasol ganglion cells of the human retina. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[41] James D. Weiland,et al. Retinal stimulation strategies to restore vision: Fundamentals and systems , 2016, Progress in Retinal and Eye Research.
[42] Jessy D. Dorn,et al. Blind subjects implanted with the Argus II retinal prosthesis are able to improve performance in a spatial-motor task , 2010, British Journal of Ophthalmology.
[43] G. Boynton,et al. Learning to see again: biological constraints on cortical plasticity and the implications for sight restoration technologies , 2017, bioRxiv.
[44] Matthias Bethge,et al. The functional diversity of retinal ganglion cells in the mouse , 2015, Nature.
[45] D. Ghezzi,et al. Capacitive-like photovoltaic epiretinal stimulation enhances and narrows the network-mediated activity of retinal ganglion cells by recruiting the lateral inhibitory network , 2019, Journal of neural engineering.
[46] V. Bruce,et al. Visual Perception: Physiology, Psychology and Ecology , 1985 .
[47] Ryad Benosman,et al. Behavioural responses to a photovoltaic subretinal prosthesis implanted in non-human primates , 2019, Nature Biomedical Engineering.
[48] Angélica Pérez Fornos,et al. Simulation of artificial vision: IV. Visual information required to achieve simple pointing and manipulation tasks , 2008, Vision Research.
[49] K. Jha,et al. BIO-HEAT TRANSFER SIMULATION OF SQUARE AND CIRCULAR ARRAY OF RETINAL LASER IRRADIATION , 2011 .
[50] Yvonne Hsu-Lin Luo,et al. The Argus II Retinal Prosthesis System , 2019, Prosthesis.
[51] Enrica Strettoi,et al. Retinal organization in the retinal degeneration 10 (rd10) mutant mouse: A morphological and ERG study , 2007, The Journal of comparative neurology.
[52] R. Quian Quiroga,et al. Unsupervised Spike Detection and Sorting with Wavelets and Superparamagnetic Clustering , 2004, Neural Computation.
[53] Damir Čemerin,et al. IV , 1882, Nauka czytania i pisania, wypracowana z polecenia Towarzystwa pedagogicznego w Poznaniu.
[54] Maesoon Im,et al. Non-rectangular waveforms are more charge-efficient than rectangular one in eliciting network-mediated responses of ON type retinal ganglion cells , 2018, Journal of neural engineering.
[55] Gengfeng Zheng,et al. Nanowire arrays restore vision in blind mice , 2018, Nature Communications.
[56] Angelika Braun,et al. Artificial vision with wirelessly powered subretinal electronic implant alpha-IMS , 2013, Proceedings of the Royal Society B: Biological Sciences.
[57] J. Dual,et al. Mechanical characterization of PEDOT : PSS thin films , 2009 .
[58] D. J. Warren,et al. A neural interface for a cortical vision prosthesis , 1999, Vision Research.
[59] Robert E. MacLaren,et al. Assessment of the Electronic Retinal Implant Alpha AMS in Restoring Vision to Blind Patients with End-Stage Retinitis Pigmentosa , 2017, Ophthalmology.
[60] U. Dräger,et al. Ganglion cell distribution in the retina of the mouse. , 1981, Investigative ophthalmology & visual science.
[61] Diego Ghezzi,et al. Design and validation of a foldable and photovoltaic wide-field epiretinal prosthesis , 2018, Nature Communications.
[62] A Roggan,et al. Optical properties of ocular fundus tissues--an in vitro study using the double-integrating-sphere technique and inverse Monte Carlo simulation. , 1995, Physics in medicine and biology.
[63] Kristopher Pataky,et al. Polyimide/SU-8 catheter-tip MEMS gauge pressure sensor , 2012, Biomedical microdevices.
[64] A. Sher,et al. Photovoltaic restoration of sight with high visual acuity , 2015, Nature Medicine.
[65] Daniel Palanker,et al. Photovoltaic Restoration of Central Vision in Atrophic Age-Related Macular Degeneration. , 2020, Ophthalmology.
[66] K. Horch,et al. Mobility performance with a pixelized vision system , 1992, Vision Research.
[67] K. Jonnalagadda,et al. Mechanical Behavior and Anisotropy of Spin-Coated SU-8 Thin Films for MEMS , 2014, Journal of Microelectromechanical Systems.
[68] Michael P. Andrews,et al. Developmental time course distinguishes changes in spontaneous and light-evoked retinal ganglion cell activity in rd1 and rd10 mice. , 2011, Journal of neurophysiology.
[69] D. Ghezzi,et al. Photovoltaic organic interface for neuronal stimulation in the near-infrared , 2020, Communications Materials.
[70] Mark E Pennesi,et al. Long-term characterization of retinal degeneration in rd1 and rd10 mice using spectral domain optical coherence tomography. , 2012, Investigative ophthalmology & visual science.
[71] David Rand,et al. A Polymer Optoelectronic Interface Provides Visual Cues to a Blind Retina , 2014, Advanced materials.
[72] S. Bisti,et al. Characterization of a Polymer‐Based, Fully Organic Prosthesis for Implantation into the Subretinal Space of the Rat , 2016, Advanced healthcare materials.
[73] Diego Ghezzi,et al. Retinal prostheses: progress toward the next generation implants , 2015, Front. Neurosci..
[74] D. Palanker,et al. Selectivity of direct and network-mediated stimulation of the retinal ganglion cells with epi-, sub- and intraretinal electrodes , 2014, Journal of neural engineering.
[75] M. Mladejovsky,et al. ‘Braille’ reading by a blind volunteer by visual cortex stimulation , 1976, Nature.
[76] Dhiraj K. Sardar,et al. Optical absorption and scattering of bovine cornea, lens and retina in the visible region , 2009, Lasers in Medical Science.
[77] Arthur James Lowery,et al. Restoration of vision in blind individuals using bionic devices: A review with a focus on cortical visual prostheses , 2015, Brain Research.
[78] Stefano Di Marco,et al. A fully organic retinal prosthesis restores vision in a rat model of degenerative blindness , 2017, Nature materials.
[79] Review: Visual Perception: Physiology, Psychology and Ecology , 1997 .
[80] D. Dacey,et al. Morphology of wide-field, monostratified ganglion cells of the human retina , 1999, Visual Neuroscience.
[81] Eberhart Zrenner,et al. Fighting Blindness with Microelectronics , 2013, Science Translational Medicine.
[82] David H Sliney,et al. Maximum permissible exposures for ocular safety (ANSI 2000), with emphasis on ophthalmic devices. , 2007, Journal of the Optical Society of America. A, Optics, image science, and vision.
[83] Yannis M Paulus,et al. Retinal safety of near-infrared lasers in cataract surgery , 2012, Journal of biomedical optics.
[84] James D. Weiland,et al. Thermal elevation in the human eye and head due to the operation of a retinal prosthesis , 2004, IEEE Transactions on Biomedical Engineering.
[85] J. Heckenlively,et al. Two mouse retinal degenerations caused by missense mutations in the β-subunit of rod cGMP phosphodiesterase gene , 2007, Vision Research.
[86] James D. Weiland,et al. Argus® II Retinal Prosthesis System , 2017 .
[87] M. Abrishami,et al. Temperature distribution simulation of the human eye exposed to laser radiation. , 2013, Journal of lasers in medical sciences.
[88] Gislin Dagnelie,et al. Real and virtual mobility performance in simulated prosthetic vision , 2007, Journal of neural engineering.
[89] I L Bailey,et al. Face recognition in age-related maculopathy. , 1991, Investigative ophthalmology & visual science.
[90] J. Mortimer,et al. Visual sensations produced by optic nerve stimulation using an implanted self-sizing spiral cuff electrode , 1998, Brain Research.
[91] Onkar S. Dhande,et al. Visual Circuits: Mouse Retina No Longer a Level Playing Field , 2014, Current Biology.
[92] Silvestro Micera,et al. Spatially selective activation of the visual cortex via intraneural stimulation of the optic nerve , 2019, Nature Biomedical Engineering.
[93] N. Keller,et al. High‐Frequency Stimulation of Normal and Blind Mouse Retinas Using TiO2 Nanotubes , 2018, Advanced Functional Materials.
[94] Joel Villalobos,et al. Safety Studies for a 44-Channel Suprachoroidal Retinal Prosthesis: A Chronic Passive Study. , 2018, Investigative ophthalmology & visual science.
[95] D. Mercier,et al. Determination of the Young's Modulus of a TiN Thin Film by Nanoindentation: Analytical Models and FEM Simulation , 2012 .
[96] Daniel Palanker,et al. Design of a high-resolution optoelectronic retinal prosthesis , 2005, Journal of neural engineering.
[97] Gislin Dagnelie,et al. Performance of real‐world functional vision tasks by blind subjects improves after implantation with the Argus® II retinal prosthesis system , 2016, Clinical & experimental ophthalmology.
[98] Jessy D. Dorn,et al. Long-Term Results from an Epiretinal Prosthesis to Restore Sight to the Blind. , 2015, Ophthalmology.