Methods for Three-Dimensional All-Optical Manipulation of Neural Circuits
暂无分享,去创建一个
Emiliano Ronzitti | Valentina Emiliani | Eirini Papagiakoumou | E. Papagiakoumou | V. Emiliani | E. Ronzitti
[1] Jesper Glückstad,et al. Holo-GPC: Holographic Generalized Phase Contrast , 2017 .
[2] M. Häusser,et al. All-Optical Interrogation of Neural Circuits , 2015, The Journal of Neuroscience.
[3] Keith J. Kelleher,et al. Three-dimensional random access multiphoton microscopy for functional imaging of neuronal activity , 2008, Nature Neuroscience.
[4] Y. Silberberg,et al. Scanningless depth-resolved microscopy. , 2005, Optics express.
[5] T. Ozaki,et al. Wavelength dependence of femtosecond laser ablation threshold of corneal stroma. , 2008, Optics express.
[6] P. Bonifazi,et al. Simultaneous high-speed imaging and optogenetic inhibition in the intact mouse brain , 2017, Scientific Reports.
[7] Philipp J. Keller,et al. Whole-brain functional imaging at cellular resolution using light-sheet microscopy , 2013, Nature Methods.
[8] Emiliano Ronzitti,et al. Submillisecond Optogenetic Control of Neuronal Firing with Two-Photon Holographic Photoactivation of Chronos , 2016, The Journal of Neuroscience.
[9] L. Landmesser,et al. New optical tools for controlling neuronal activity , 2007, Current Opinion in Neurobiology.
[10] Balázs Rózsa,et al. Fast two-photon in vivo imaging with three-dimensional random-access scanning in large tissue volumes , 2012, Nature Methods.
[11] D. Tank,et al. Simultaneous cellular-resolution optical perturbation and imaging of place cell firing fields , 2014, Nature Neuroscience.
[12] Brendon O. Watson,et al. SLM Microscopy: Scanless Two-Photon Imaging and Photostimulation with Spatial Light Modulators , 2008, Frontiers in neural circuits.
[13] Philipp J. Keller,et al. Quantitative high-speed imaging of entire developing embryos with simultaneous multiview light-sheet microscopy , 2012, Nature Methods.
[14] E. Boyden,et al. Temporally precise single-cell resolution optogenetics , 2017, Nature Neuroscience.
[15] Valentina Emiliani,et al. Three-dimensional spatiotemporal focusing of holographic patterns , 2016, Nature Communications.
[16] Mary Ann Go,et al. Optimal complex field holographic projection. , 2011, Optics letters.
[17] W. Zipfel,et al. Simultaneous spatial and temporal focusing of femtosecond pulses , 2005, (CLEO). Conference on Lasers and Electro-Optics, 2005..
[18] V. Emiliani,et al. When can temporally focused excitation be axially shifted by dispersion? , 2014, Optics express.
[19] Charles P. Lin,et al. Continuous volumetric imaging via an optical phase-locked ultrasound lens , 2015, Nature Methods.
[20] Aaron S. Andalman,et al. Enhancing the performance of the light field microscope using wavefront coding. , 2014, Optics express.
[21] Karl Deisseroth,et al. Optogenetics in Neural Systems , 2011, Neuron.
[22] Johannes D. Seelig,et al. Video-rate volumetric functional imaging of the brain at synaptic resolution , 2016, Nature Neuroscience.
[23] Tony Wilson,et al. Aberration-free optical refocusing in high numerical aperture microscopy. , 2007, Optics letters.
[24] K J Halbhuber,et al. Pulse-length dependence of cellular response to intense near-infrared laser pulses in multiphoton microscopes. , 1999, Optics letters.
[25] Stefan R. Pulver,et al. Independent Optical Excitation of Distinct Neural Populations , 2014, Nature Methods.
[26] Rafael Yuste,et al. Holographic imaging and photostimulation of neural activity , 2018, Current Opinion in Neurobiology.
[27] G. Tamás,et al. Roller Coaster Scanning reveals spontaneous triggering of dendritic spikes in CA1 interneurons , 2011, Proceedings of the National Academy of Sciences.
[28] Euan McLeod,et al. High-speed varifocal imaging with a tunable acoustic gradient index of refraction lens. , 2008, Optics letters.
[29] Valentina Emiliani,et al. Three-dimensional holographic photostimulation of the dendritic arbor , 2011, Journal of neural engineering.
[30] A. Miyawaki,et al. Measurement of two-photon excitation spectrum used to photoconvert a fluorescent protein (Kaede) by nonlinear Fourier-transform spectroscopy , 2010, Biomedical optics express.
[31] F. Helmchen,et al. Imaging cellular network dynamics in three dimensions using fast 3D laser scanning , 2007, Nature Methods.
[32] Valentina Emiliani,et al. Computer-generated holography enhances voltage dye fluorescence discrimination in adjacent neuronal structures , 2015, Neurophotonics.
[33] Zhe Zhao,et al. Rapid volumetric imaging with Bessel-Beam three-photon microscopy. , 2018, Biomedical optics express.
[34] Eirini Papagiakoumou,et al. Optical developments for optogenetics , 2013, Biology of the cell.
[35] E. Isacoff,et al. Two-photon brightness of azobenzene photoswitches designed for glutamate receptor optogenetics , 2015, Proceedings of the National Academy of Sciences.
[36] Geoffrey J Evans,et al. Random-access scanning microscopy for 3D imaging in awake behaving animals , 2016, Nature Methods.
[37] R. Gerchberg. A practical algorithm for the determination of phase from image and diffraction plane pictures , 1972 .
[38] Misha B. Ahrens,et al. Visualizing Whole-Brain Activity and Development at the Single-Cell Level Using Light-Sheet Microscopy , 2015, Neuron.
[39] Raag D. Airan,et al. Temporally precise in vivo control of intracellular signalling , 2009, Nature.
[40] M. Ducros,et al. Encoded multisite two-photon microscopy , 2013, Proceedings of the National Academy of Sciences.
[41] Jesper Glückstad,et al. GPC light shaper for speckle-free one- and two-photon contiguous pattern excitation. , 2014, Optics express.
[42] J. Squier,et al. Simultaneous imaging of multiple focal planes using a two-photon scanning microscope. , 2007, Optics letters.
[43] K. Svoboda,et al. A large field of view two-photon mesoscope with subcellular resolution for in vivo imaging , 2016, bioRxiv.
[44] Benjamin F. Grewe,et al. Two-photon optogenetic toolbox for fast inhibition, excitation and bistable modulation , 2012, Nature Methods.
[45] A. Losonczy,et al. Improved Synthesis of Caged Glutamate and Caging Each Functional Group. , 2018, ACS chemical neuroscience.
[46] R. Silver,et al. A compact Acousto-Optic Lens for 2D and 3D femtosecond based 2-photon microscopy. , 2010, Optics express.
[47] Rafael Yuste,et al. Two-photon optogenetics of dendritic spines and neural circuits in 3D , 2012, Nature Methods.
[48] José María Gómez Hidalgo,et al. Using Personality Recognition Techniques to Improve Bayesian Spam Filtering , 2016, Proces. del Leng. Natural.
[49] Jeffrey N. Stirman,et al. Wide field-of-view, multi-region two-photon imaging of neuronal activity in the mammalian brain , 2016, Nature Biotechnology.
[50] E. Boyden,et al. Simultaneous whole-animal 3D-imaging of neuronal activity using light-field microscopy , 2014, Nature Methods.
[51] Yajie Liang,et al. Three-photon fluorescence microscopy with an axially elongated Bessel focus , 2018, bioRxiv.
[52] K. Svoboda,et al. A Cellular Resolution Map of Barrel Cortex Activity during Tactile Behavior , 2015, Neuron.
[53] H. Tiziani,et al. Multi-functional optical tweezers using computer-generated holograms , 2000 .
[54] Valentina Emiliani,et al. Patterned two-photon illumination by spatiotemporal shaping of ultrashort pulses. , 2008, Optics express.
[55] D. Tank,et al. Two-photon excitation of channelrhodopsin-2 at saturation , 2009, Proceedings of the National Academy of Sciences.
[56] R. Prevedel,et al. Fast volumetric calcium imaging across multiple cortical layers using sculpted light , 2016, Nature Methods.
[57] Ramón Carriles,et al. Simultaneous imaging of multiple focal planes in scanning two-photon absorption microscope by photon counting , 2007, SPIE Optics East.
[58] Martin J. Booth,et al. Adaptive optical microscopy: the ongoing quest for a perfect image , 2014, Light: Science & Applications.
[59] A. Jesacher,et al. Four-dimensional light shaping: manipulating ultrafast spatiotemporal foci in space and time , 2017, Light: Science & Applications.
[60] Johannes D. Seelig,et al. Neural dynamics for landmark orientation and angular path integration , 2015, Nature.
[61] R. Yuste,et al. Instantaneous Three-dimensional Sensing Using Spatial Light Modulator Illumination with Extended Depth of Field Imaging References and Links , 2022 .
[62] R. Yuste,et al. Imprinting and recalling cortical ensembles , 2016, Science.
[63] Mitra Javadzadeh,et al. Long-range population dynamics of anatomically defined neocortical networks , 2016, eLife.
[64] E. Isacoff,et al. Scanless two-photon excitation of channelrhodopsin-2 , 2010, Nature Methods.
[65] Fabio Benfenati,et al. Three-dimensional in vivo scanning microscopy with inertia-free focus control. , 2011, Optics letters.
[66] Kristin Branson,et al. Whole-central nervous system functional imaging in larval Drosophila , 2015, Nature Communications.
[67] Eric Betzig,et al. High-speed, low-photodamage nonlinear imaging using passive pulse splitters , 2008, Nature Methods.
[68] Kira E. Poskanzer,et al. Optical Probes for Neurobiological Sensing and Imaging. , 2018, Accounts of chemical research.
[69] Rafael Yuste,et al. Attenuation of Synaptic Potentials in Dendritic Spines. , 2017, Cell reports.
[70] Rainer W Friedrich,et al. Remote z-scanning with a macroscopic voice coil motor for fast 3D multiphoton laser scanning microscopy , 2016, Biomedical optics express.
[71] J. Huisken,et al. A guide to light-sheet fluorescence microscopy for multiscale imaging , 2017, Nature Methods.
[72] Brian R. Lee,et al. Parallel holographic illumination enables sub-millisecond two-photon optogenetic activation in mouse visual cortex in vivo , 2018, bioRxiv.
[73] Natalie A. Kuhlman,et al. Linking , 1986, The Fairchild Books Dictionary of Fashion.
[74] Valentina Emiliani,et al. Towards circuit optogenetics , 2018, Current Opinion in Neurobiology.
[75] Surya Ganguli,et al. Identification of cellular-activity dynamics across large tissue volumes in the mammalian brain , 2017, bioRxiv.
[76] A. Cheng,et al. simultaneous two-photon calcium imaging at different depths with spatiotemporal multiplexing , 2011 .
[77] Jordi Andilla,et al. Decoupled illumination detection in light sheet microscopy for fast volumetric imaging , 2015 .
[78] Weijian Yang,et al. In vivo imaging of neural activity , 2017, Nature Methods.
[79] B. Zemelman,et al. Two-photon single-cell optogenetic control of neuronal activity by sculpted light , 2010, Proceedings of the National Academy of Sciences.
[80] T. Wilson,et al. Scanning two photon fluorescence microscopy with extended depth of field , 2006 .
[81] Gregory L. Futia,et al. Three dimensional two-photon imaging of neuronal activity in freely moving mice using a miniature fiber coupled microscope with active axial-scanning , 2018, bioRxiv.
[82] Tommaso Fellin,et al. Two-Photon Bidirectional Control and Imaging of Neuronal Excitability with High Spatial Resolution In Vivo , 2018, Cell reports.
[83] M. Durst,et al. Simultaneous Spatial and Temporal Focusing in Nonlinear Microscopy. , 2008, Optics communications.
[84] Benjamin F. Grewe,et al. High-speed in vivo calcium imaging reveals neuronal network activity with near-millisecond precision , 2010, Nature Methods.
[85] Benjamin F. Grewe,et al. Fast two-layer two-photon imaging of neuronal cell populations using an electrically tunable lens , 2011, Biomedical optics express.
[86] S. Redman,et al. Simultaneous multi‐site two‐photon photostimulation in three dimensions , 2012, Journal of biophotonics.
[87] Herwig Baier,et al. Linking Neurons to Network Function and Behavior by Two-Photon Holographic Optogenetics and Volumetric Imaging , 2017, Neuron.
[88] D. R. Muir,et al. Functional organization of excitatory synaptic strength in primary visual cortex , 2015, Nature.
[89] L. Paninski,et al. Simultaneous Multi-plane Imaging of Neural Circuits , 2016, Neuron.
[90] Benjamin F. Grewe,et al. Visualizing mammalian brain area interactions by dual-axis two-photon calcium imaging , 2015, 2015 Conference on Lasers and Electro-Optics (CLEO).
[91] Pierre Alexandre Blanche. Computer-Generated Holograms , 2014 .
[92] Nina Vogt. Neuroscience: All-optical electrophysiology in behaving animals , 2015, Nature Methods.
[93] Joseph Shamir,et al. Wave fields in three dimensions: analysis and synthesis , 1996 .
[94] Tsuyoshi Umeda,et al. A PP6-ASK3 Module Coordinates the Bidirectional Cell Volume Regulation under Osmotic Stress. , 2018, Cell reports.
[95] Jerome Mertz,et al. Wide-field fluorescence sectioning with hybrid speckle and uniform-illumination microscopy. , 2008, Optics letters.
[96] Andreas Dreuw,et al. A red-shifted two-photon-only caging group for three-dimensional photorelease , 2018, Chemical science.
[97] Giancarlo Ruocco,et al. Computer generation of optimal holograms for optical trap arrays. , 2007, Optics express.
[98] Valentina Emiliani,et al. Recent advances in patterned photostimulation for optogenetics , 2017 .
[99] Valentina Emiliani,et al. Two-Photon Holographic Stimulation of ReaChR , 2016, Front. Cell. Neurosci..
[100] Aaron S. Andalman,et al. Wave optics theory and 3-D deconvolution for the light field microscope. , 2013, Optics express.
[101] Lars Hufnagel,et al. Multiview light-sheet microscope for rapid in toto imaging , 2012, Nature Methods.
[102] S. Shoham,et al. Remotely scanned multiphoton temporal focusing by axial grism scanning. , 2012, Optics letters.
[103] M. Durst,et al. Simultaneous spatial and temporal focusing for axial scanning. , 2006, Optics express.
[104] Jesper Glückstad. Phase contrast image synthesis , 1996 .
[105] Laura Waller,et al. Precise multimodal optical control of neural ensemble activity , 2018, Nature Neuroscience.
[106] Fabio Benfenati,et al. Simultaneous two-photon imaging and photo-stimulation with structured light illumination. , 2010, Optics express.
[107] Fook Siong Chau,et al. Ultra-compact optical zoom endoscope using solid tunable lenses. , 2017, Optics express.
[108] Hans J. Tiziani,et al. Computer-generated holograms from 3D-objects written on twisted-nematic liquid crystal displays , 1997 .
[109] Herwig Baier,et al. An optogenetic toolbox for unbiased discovery of functionally connected cells in neural circuits , 2017, Nature Communications.
[110] E. Papagiakoumou,et al. Temperature Rise under Two-Photon Optogenetic Brain Stimulation. , 2018, Cell reports.
[111] Valentina Emiliani,et al. Two-Photon Optogenetics by Computer-Generated Holography , 2018 .
[112] Nathan C. Klapoetke,et al. Sub-millisecond optogenetic control of neuronal firing with two-photon holographic photoactivation of Chronos , 2016, bioRxiv.
[113] Benjamin Schmid,et al. Rapid 3D light-sheet microscopy with a tunable lens. , 2013, Optics express.
[114] Christoph Lutz,et al. Holographic photolysis of caged neurotransmitters , 2008, Nature Methods.
[115] F. Wise,et al. In vivo three-photon microscopy of subcortical structures within an intact mouse brain , 2012, Nature Photonics.
[116] Valentina Emiliani,et al. Imaging membrane potential changes from dendritic spines using computer-generated holography , 2017, Neurophotonics.
[117] Heping Cheng,et al. Fast high-resolution miniature two-photon microscopy for brain imaging in freely behaving mice , 2017, Nature Methods.
[118] A. Bègue,et al. Three-dimensional imaging and photostimulation by remote-focusing and holographic light patterning , 2011, Proceedings of the National Academy of Sciences.
[119] Jeremy Freeman,et al. Technologies for imaging neural activity in large volumes , 2016, Nature Neuroscience.
[120] Jonathan Bradley,et al. Spatially Selective Holographic Photoactivation and Functional Fluorescence Imaging in Freely Behaving Mice with a Fiberscope , 2014, Neuron.
[121] Valentina Emiliani,et al. Two-photon excitation in scattering media by spatiotemporally shaped beams and their application in optogenetic stimulation. , 2013, Biomedical optics express.
[122] Rafael Yuste,et al. Calcium imaging of neural circuits with extended depth-of-field light-sheet microscopy. , 2016, Optics letters.
[123] Rafael Yuste,et al. Two-photon photostimulation and imaging of neural circuits , 2007, Nature Methods.
[124] Valentina Emiliani,et al. Multiplexed temporally focused light shaping for high-resolution multi-cell targeting , 2018 .
[125] R. Yuste,et al. Simultaneous two-photon imaging and two-photon optogenetics of cortical circuits in three dimensions , 2018, eLife.
[126] E. Papagiakoumou,et al. Functional patterned multiphoton excitation deep inside scattering tissue , 2013, Nature Photonics.
[127] A. Schier,et al. Optical Control of Metabotropic Glutamate Receptors , 2013, Nature Neuroscience.
[128] E. Papagiakoumou,et al. Two-photon optogenetics. , 2012, Progress in brain research.
[129] O. Paulsen,et al. Aberration-free three-dimensional multiphoton imaging of neuronal activity at kHz rates , 2012, Proceedings of the National Academy of Sciences.