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Segev, R., Goodhouse, J., Puchalla, J., & Berry, M. J. (2004). Recording spikes from a large fraction of the ganglion cells in a retinal patch. Nature Neuroscience, 7(10), 1155–1162.

Authors 4
  1. Ronen Segev (first)
  2. Joe Goodhouse (additional)
  3. Jason Puchalla (additional)
  4. Michael J Berry (additional)
References 30 Referenced 183
  1. Rodieck, R.W. The First Steps in Seeing (Sinauer Associates, Sunderland, Massachusetts, USA, 1998). / The First Steps in Seeing by RW Rodieck (1998)
  2. Meister, M., Pine, J. & Baylor, D.A. Multi-neuronal signals from the retina: acquisition and analysis. J. Neurosci. Methods 51, 95–106 (1994). (10.1016/0165-0270(94)90030-2) / J. Neurosci. Methods by M Meister (1994)
  3. Schnitzer, M.J. & Meister, M. Multineuronal firing patterns in the signal from eye to brain. Neuron 37, 499–511 (2003). (10.1016/S0896-6273(03)00004-7) / Neuron by MJ Schnitzer (2003)
  4. DeVries, S.H. & Baylor, D.A. Mosaic arrangement of ganglion cell receptive fields in rabbit retina. J. Neurophysiol. 78, 2048–2060 (1997). (10.1152/jn.1997.78.4.2048) / J. Neurophysiol. by SH DeVries (1997)
  5. Lewicki, M.S. A review of methods for spike sorting: the detection and classification of neural action potentials. Network 9, R53–R78 (1998). (10.1088/0954-898X_9_4_001) / Network by MS Lewicki (1998)
  6. Hulata, E., Segev, R. & Ben-Jacob, E. A method for spike sorting and detection based on wavelet packets and Shannon's mutual information. J. Neurosci. Methods 117, 1–12 (2002). (10.1016/S0165-0270(02)00032-8) / J. Neurosci. Methods by E Hulata (2002)
  7. Atiya, A.F. Recognition of multiunit neural signals. IEEE Trans. Biomed. Eng. 39, 723–729 (1992). (10.1109/10.142647) / IEEE Trans. Biomed. Eng. by AF Atiya (1992)
  8. Gray, C.M., Maldonado, P.E., Wilson, M. & McNaughton, B. Tetrodes markedly improve the reliability and yield of multiple single-unit isolation from multi-unit recordings in cat striate cortex. J. Neurosci. Methods 63, 43–54 (1995). (10.1016/0165-0270(95)00085-2) / J. Neurosci. Methods by CM Gray (1995)
  9. Fee, M.S., Mitra, P.P. & Kleinfeld, D. Automatic sorting of multiple unit neuronal signals in the presence of anisotropic and non-gaussian variability. J. Neurosci. Methods 69, 175–188 (1996). (10.1016/S0165-0270(96)00050-7) / J. Neurosci. Methods by MS Fee (1996)
  10. Henze, D.A. et al. Intracellular features predicted by extracellular recordings in the hippocampus in vivo. J. Neurophysiol. 84, 390–400 (2000). (10.1152/jn.2000.84.1.390) / J. Neurophysiol. by DA Henze (2000)
  11. Watt, C.B., Yang, S.Z., Lam, D.M. & Wu, S.M. Localization of tyrosine-hydroxylase-like-immunoreactive amacrine cells in the larval tiger salamander retina. J. Comp. Neurol. 272, 114–126 (1988). (10.1002/cne.902720108) / J. Comp. Neurol. by CB Watt (1988)
  12. Zhang, J. & Wu, S.M. Immunocytochemical analysis of cholinergic amacrine cells in the tiger salamander retina. NeuroReport 12, 1371–1375 (2001). (10.1097/00001756-200105250-00017) / NeuroReport by J Zhang (2001)
  13. Zhang, J., Yang, Z. & Wu, S.M. Immunocytochemical analysis of spatial organization of photoreceptors and amacrine and ganglion cells in the tiger salamander retina. Vis. Neurosci. 21, 157–166 (2004). (10.1017/S0952523804042075) / Vis. Neurosci. by J Zhang (2004)
  14. Sakai, H.M., Machuca, H. & Naka, K.I. Processing of color- and noncolor-coded signals in the gourami retina. II. Amacrine cells. J. Neurophysiol. 78, 2018–2033 (1997). (10.1152/jn.1997.78.4.2018) / J. Neurophysiol. by HM Sakai (1997)
  15. Cleland, B.G. & Levick, W.R. Brisk and sluggish concentrically organized ganglion cells in the cat's retina. J. Physiol. (Lond.) 240, 421–456 (1974). (10.1113/jphysiol.1974.sp010617) / J. Physiol. (Lond.) by BG Cleland (1974)
  16. Cleland, B.G. & Levick, W.R. Properties of rarely encountered types of ganglion cells in the cat's retina and an overall classification. J. Physiol. (Lond.) 240, 457–492 (1974). (10.1113/jphysiol.1974.sp010618) / J. Physiol. (Lond.) by BG Cleland (1974)
  17. Toris, C.B., Eiesland, J.L. & Miller, R.F. Morphology of ganglion cells in the neotenous tiger salamander retina. J. Comp. Neurol. 352, 535–559 (1995). (10.1002/cne.903520405) / J. Comp. Neurol. by CB Toris (1995)
  18. Sun, W., Li, N. & He, S. Large-scale morphological survey of mouse retinal ganglion cells. J. Comp. Neurol. 451, 115–126 (2002). (10.1002/cne.10323) / J. Comp. Neurol. by W Sun (2002)
  19. Rockhill, R.L., Daly, F.J., MacNeil, M.A., Brown, S.P. & Masland, R.H. The diversity of ganglion cells in a mammalian retina. J. Neurosci. 22, 3831–3843 (2002). (10.1523/JNEUROSCI.22-09-03831.2002) / J. Neurosci. by RL Rockhill (2002)
  20. Wässle, H. & Boycott, B.B. Functional architecture of the mammalian retina. Physiol. Rev. 71, 447–480 (1991). (10.1152/physrev.1991.71.2.447) / Physiol. Rev. by H Wässle (1991)
  21. Lewicki, M.S. Bayesian modeling and classification of neural signals. Neural Comput. 6, 1005–1030 (1994). (10.1162/neco.1994.6.5.1005) / Neural Comput. by MS Lewicki (1994)
  22. Hulata, E., Segev, R., Shapira, Y., Benveniste, M. & Ben-Jacob, E. Detection and sorting of neural spikes using wavelet packets. Phys. Rev. Lett. 85, 4637–4640 (2000). (10.1103/PhysRevLett.85.4637) / Phys. Rev. Lett. by E Hulata (2000)
  23. Wheeler, B.C. & Smith, S.R. High-resolution alignment of action potential waveforms using cubic spline interpolation. J. Biomed. Eng. 10, 47–53 (1988). (10.1016/0141-5425(88)90025-8) / J. Biomed. Eng. by BC Wheeler (1988)
  24. Yang, X.W. & Shamma, S.A. A totally automated system for the detection and classification of neural spikes. IEEE Trans. Biomed. Eng. 35, 806–816 (1988). (10.1109/10.7287) / IEEE Trans. Biomed. Eng. by XW Yang (1988)
  25. Wheeler, B.C. & Brewer, G.J. Multineuron patterning and recording. Enabling Technologies for Culturing Neural Networks (eds. Stenger, D.A. & McKenna, T.M.) 167–185 (Academic, San Diego, California, USA, 1994). / Enabling Technologies for Culturing Neural Networks by BC Wheeler (1994)
  26. McNaughton, B.L., O'Keefe, J. & Barnes, C.A. The stereotrode: a new technique for simultaneous isolation of several single units in the central nervous system from multiple unit records. J. Neurosci. Methods 8, 391–397 (1983). (10.1016/0165-0270(83)90097-3) / J. Neurosci. Methods by BL McNaughton (1983)
  27. Vetter, R.J., Williams, J.C., Hetke, J.F., Nunamaker, E.A. & Kipke, D.R. Chronic neural recording using silicon-substrate microelectrode arrays implanted in cerebral cortex. IEEE Trans. Biomed. Eng. 51, 896–904 (2004). (10.1109/TBME.2004.826680) / IEEE Trans. Biomed. Eng. by RJ Vetter (2004)
  28. Balasubramanian, V. & Berry, M.J. A test of metabolically efficient coding in the retina. Network 13, 531–552 (2002). (10.1088/0954-898X_13_4_306) / Network by V Balasubramanian (2002)
  29. Dacey, D.M., Peterson, B.B., Robinson, F.R. & Gamlin, P.D. Fireworks in the primate retina: in vitro photodynamics reveals diverse LGN-projecting ganglion cell types. Neuron 37, 15–27 (2003). (10.1016/S0896-6273(02)01143-1) / Neuron by DM Dacey (2003)
  30. Roth, G. Visual Behavior in Salamanders (Springer, Berlin, 1987). (10.1007/978-3-642-72713-9) / Visual Behavior in Salamanders by G Roth (1987)
Dates
Type When
Created 20 years, 11 months ago (Sept. 27, 2004, 6:31 p.m.)
Deposited 2 years, 3 months ago (May 18, 2023, 7:53 p.m.)
Indexed 1 month ago (Aug. 6, 2025, 8:10 a.m.)
Issued 20 years, 11 months ago (Sept. 27, 2004)
Published 20 years, 11 months ago (Sept. 27, 2004)
Published Online 20 years, 11 months ago (Sept. 27, 2004)
Published Print 20 years, 11 months ago (Oct. 1, 2004)
Funders 0

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@article{Segev_2004, title={Recording spikes from a large fraction of the ganglion cells in a retinal patch}, volume={7}, ISSN={1546-1726}, url={http://dx.doi.org/10.1038/nn1323}, DOI={10.1038/nn1323}, number={10}, journal={Nature Neuroscience}, publisher={Springer Science and Business Media LLC}, author={Segev, Ronen and Goodhouse, Joe and Puchalla, Jason and Berry, Michael J}, year={2004}, month=sep, pages={1155–1162} }