CLARITY-compatible lipophilic dyes for electrode marking and neuronal tracing
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[1] A. Aguayo,et al. Persistent retrograde labeling of adult rat retinal ganglion cells with the carbocyanine dye diI , 1988, Experimental Neurology.
[2] K. Deisseroth,et al. Advanced CLARITY for rapid and high-resolution imaging of intact tissues , 2014, Nature Protocols.
[3] W. Guido,et al. ClearT: a detergent- and solvent-free clearing method for neuronal and non-neuronal tissue , 2013, Development.
[4] Kevin T. Beier,et al. Neuroanatomy goes viral! , 2015, Front. Neuroanat..
[5] Richard Apps,et al. Back to front: cerebellar connections and interactions with the prefrontal cortex , 2014, Front. Syst. Neurosci..
[6] Ralf Metzler,et al. Diffusion of finite-size particles in channels with random walls , 2013, 1312.2020.
[7] Frank Bradke,et al. Three-dimensional imaging of the unsectioned adult spinal cord to assess axon regeneration and glial responses after injury , 2011, Nature Medicine.
[8] N. Renier,et al. iDISCO: A Simple, Rapid Method to Immunolabel Large Tissue Samples for Volume Imaging , 2014, Cell.
[9] Incheol Seo,et al. Improved application of the electrophoretic tissue clearing technology, CLARITY, to intact solid organs including brain, pancreas, liver, kidney, lung, and intestine , 2014, BMC Developmental Biology.
[10] N. Pallua,et al. Applicability of the Dyes CFSE, CM-DiI and PKH26 for Tracking of Human Preadipocytes to Evaluate Adipose Tissue Engineering , 2007, Cells Tissues Organs.
[11] Sachie K. Ogawa,et al. Dopamine neurons projecting to the posterior striatum form an anatomically distinct subclass , 2015, eLife.
[12] William W. West,et al. The Dimeric State of Cyanine Dyes , 1965 .
[13] Frank Bradke,et al. Three-dimensional imaging of solvent-cleared organs using 3DISCO , 2012, Nature Protocols.
[14] K. Jacobson,et al. Comparative lateral diffusion of fluorescent lipid analogues in phospholipid multibilayers. , 1980, Biochemistry.
[15] R. Galuske,et al. Tracing of temporo-entorhinal connections in the human brain: cognitively impaired argyrophilic grain disease cases show dendritic alterations but no axonal disconnection of temporo-entorhinal association neurons , 2007, Acta Neuropathologica.
[16] Atsushi Miyawaki,et al. ScaleS: an optical clearing palette for biological imaging , 2015, Nature Neuroscience.
[17] Robert T. Furbank,et al. PEA-CLARITY: 3D molecular imaging of whole plant organs , 2015, Scientific Reports.
[18] R. Frizzell,et al. Methods for detecting internalized, FM 1-43 stained particles in epithelial cells and monolayers. , 2006, Biophysical journal.
[19] J. Hay,et al. The use of the lipophilic fluorochrome CM-DiI for tracking the migration of lymphocytes. , 1996, Journal of immunological methods.
[20] Vincenzo Crunelli,et al. Investigating local and long-range neuronal network dynamics by simultaneous optogenetics, reverse microdialysis and silicon probe recordings in vivo , 2014, Journal of Neuroscience Methods.
[21] Aaron S. Andalman,et al. Structural and molecular interrogation of intact biological systems , 2013, Nature.
[22] Atsushi Miyawaki,et al. Scale: a chemical approach for fluorescence imaging and reconstruction of transparent mouse brain , 2011, Nature Neuroscience.
[23] D. Sparks,et al. Neural tract tracing using Di-I: a review and a new method to make fast Di-I faster in human brain , 2000, Journal of Neuroscience Methods.
[24] Takao K. Hensch,et al. A critical period for auditory thalamocortical connectivity , 2011, Nature Neuroscience.
[25] Hanchuan Peng,et al. V3D enables real-time 3D visualization and quantitative analysis of large-scale biological image data sets , 2010, Nature Biotechnology.
[26] T. Blanche,et al. Polytrodes: high-density silicon electrode arrays for large-scale multiunit recording. , 2005, Journal of neurophysiology.
[27] John W. Lane,et al. Marking microelectrode penetrations with fluorescent dyes , 1996, Journal of Neuroscience Methods.
[28] Amitabha Chattopadhyay,et al. Effect of cholesterol on lateral diffusion of fluorescent lipid probes in native hippocampal membranes. , 2006, Chemistry and physics of lipids.
[29] W. Betz,et al. Imaging synaptic vesicle exocytosis and endocytosis with FM dyes , 2007, Nature Protocols.
[30] K. Staras,et al. Ultrastructural readout of functional synaptic vesicle pools in hippocampal slices based on FM dye labeling and photoconversion , 2014, Nature Protocols.
[31] Acknowledgements , 1992, Experimental Gerontology.
[32] Anna Letizia Allegra Mascaro,et al. A versatile clearing agent for multi-modal brain imaging , 2015, Scientific Reports.
[33] Talia N. Lerner,et al. Intact-Brain Analyses Reveal Distinct Information Carried by SNc Dopamine Subcircuits , 2015, Cell.
[34] Tianzi Jiang,et al. Scalable and DiI-compatible optical clearance of the mammalian brain , 2015, Front. Neuroanat..
[35] Jeff W. Lichtman,et al. Clarifying Tissue Clearing , 2015, Cell.
[36] Benjamin Brandt,et al. Calcium specificity signaling mechanisms in abscisic acid signal transduction in Arabidopsis guard cells , 2015, eLife.
[37] Elaine Dzierzak,et al. Whole-mount three-dimensional imaging of internally localized immunostained cells within mouse embryos , 2012, Nature Protocols.
[38] M. G. Honig,et al. Dil and DiO: versatile fluorescent dyes for neuronal labelling and pathway tracing , 1989, Trends in Neurosciences.
[39] Meng-Tsen Ke,et al. Optical Clearing of Fixed Brain Samples Using SeeDB , 2014, Current protocols in neuroscience.
[40] P. Crago,et al. Applied electric fields accelerate the diffusion rate and increase the diffusion distance of DiI in fixed tissue , 2005, Journal of Neuroscience Methods.
[41] E. Susaki,et al. Whole-Brain Imaging with Single-Cell Resolution Using Chemical Cocktails and Computational Analysis , 2014, Cell.
[42] J. Perrier,et al. Purines released from astrocytes inhibit excitatory synaptic transmission in the ventral horn of the spinal cord , 2014, Front. Neural Circuits.
[43] D. Wahlsten,et al. Prenatal formation of the normal mouse corpus callosum: A quantitative study with carbocyanine dyes , 1992, The Journal of comparative neurology.
[44] Rajan P Kulkarni,et al. Single-Cell Phenotyping within Transparent Intact Tissue through Whole-Body Clearing , 2014, Cell.
[45] Yu Jin Jang,et al. ACT-PRESTO: Rapid and consistent tissue clearing and labeling method for 3-dimensional (3D) imaging , 2016, Scientific Reports.
[46] Taiji Adachi,et al. Procedures for the Quantification of Whole-Tissue Immunofluorescence Images Obtained at Single-Cell Resolution during Murine Tubular Organ Development , 2015, PloS one.
[47] R. Berg,et al. A method for unit recording in the lumbar spinal cord during locomotion of the conscious adult rat , 2009, Journal of Neuroscience Methods.
[48] L. Rinaman,et al. Simplified CLARITY for visualizing immunofluorescence labeling in the developing rat brain , 2016, Brain Structure and Function.
[49] Jeffrey H. Kordower,et al. Tracing neuronal connections in postmortem human hippocampal complex with the carbocyanine dye DiI , 1990, Neurobiology of Aging.
[50] R. North,et al. NMDA Receptors Mediate Neuron-to-Glia Signaling in Mouse Cortical Astrocytes , 2006, The Journal of Neuroscience.
[51] P. Ekström,et al. Dil tracing in combination with immunocytochemistry for analysis of connectivities and chemoarchitectonics of specific neural systems in a teleost, the atlantic salmon , 1992, Journal of Neuroscience Methods.
[52] Kwanghun Chung,et al. Light microscopy mapping of connections in the intact brain , 2013, Trends in Cognitive Sciences.
[53] Paul W. Frankland,et al. Optimization of CLARITY for Clearing Whole-Brain and Other Intact Organs1,2,3 , 2015, eNeuro.
[54] P. Verstreken,et al. FM 1-43 labeling of synaptic vesicle pools at the Drosophila neuromuscular junction. , 2008, Methods in molecular biology.
[55] S. Graham,et al. Reliability of VEP Recordings Using Chronically Implanted Screw Electrodes in Mice. , 2015, Translational vision science & technology.
[56] J. Lanciego,et al. Current concepts in neuroanatomical tracing , 2000, Progress in Neurobiology.
[57] Takeshi Imai,et al. SeeDB: a simple and morphology-preserving optical clearing agent for neuronal circuit reconstruction , 2013, Nature Neuroscience.
[58] Floris G. Wouterlood,et al. A half century of experimental neuroanatomical tracing , 2011, Journal of Chemical Neuroanatomy.
[59] D. Troyer,et al. Therapy with un-engineered naïve rat umbilical cord matrix stem cells markedly inhibits growth of murine lung adenocarcinoma , 2010, BMC Cancer.
[60] M. G. Honig,et al. Double-labeling of tissue containing the carbocyanine dye DiI for immunocytochemistry. , 1990, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[61] Hiroshi Kawasaki,et al. Fluorescent double-labeling with carbocyanine neuronal tracing and immunohistochemistry using a cholesterol-specific detergent digitonin , 2008, Journal of Neuroscience Methods.
[62] W. Anderson,et al. Carbocyanine dyes with long alkyl side-chains: broad spectrum inhibitors of mitochondrial electron transport chain activity. , 1995, Biochemical pharmacology.
[63] Ralf Metzler,et al. Diffusion of finite-size particles in two-dimensional channels with random wall configurations. , 2013, Physical chemistry chemical physics : PCCP.
[64] Tomomi Nemoto,et al. A Rapid Optical Clearing Protocol Using 2,2′-Thiodiethanol for Microscopic Observation of Fixed Mouse Brain , 2015, PloS one.