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Original

Regional Difference in Stainability with Calcium-Sensitive Acetoxymethyl-Ester Probes in Mouse Brain Slices

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Pages 214-226 | Published online: 24 Aug 2009

REFERENCES

  • Airan R. D., Meltzer L. A., Roy M., Gong Y., Chen H., Deisseroth K. High-speed imaging reveals neurophysiological links to behavior in an animal model of depression. Science 2007; 317(5839)819–823
  • Altman J., Bayer S. A. Prolonged sojourn of developing pyramidal cells in the intermediate zone of the hippocampus and their settling in the stratum pyramidale. Journal of Comparative Neurology 1990a; 301(3)343–364
  • Altman J., Bayer S. A. Migration and distribution of two populations of hippocampal granule cell precursors during the perinatal and postnatal periods. Journal of Comparative Neurology 1990b; 301(3)365–381
  • Bayer S. A., Altman J. Neocortical Development, et al. Raven press, New York 1991
  • Bozza T., McGann J. P., Mombaerts P., Wachowiak M. In vivo imaging of neuronal activity by targeted expression of a genetically encoded probe in the mouse. Neuron 2004; 42(1)9–21
  • Canepari M., Mammano F., Kachalsky S. G., Rahamimoff R., Cherubini E. GABA- and glutamate-mediated network activity in the hippocampus of neonatal and juvenile rats revealed by fast calcium imaging. Cell Calcium 2000; 27(1)25–33
  • Cossart R., Aronov D., Yuste R. Attractor dynamics of network UP states in the neocortex. Nature 2003; 423(6937)283–288
  • Crepel V., Aronov D., Jorquera I., Represa A., Ben-Ari Y., Cossart R. A parturition-associated nonsynaptic coherent activity pattern in the developing hippocampus. Neuron 2007; 54(1)105–120
  • Diez-Garcia J., Matsushita S., Mutoh H., Nakai J., Ohkura M., Yokoyama J., et al. Activation of cerevellar parallel fibers monitored in transgenic mice expressing a fluorescent Ca2+ indicator protein. European Journal of Neuroscience 2005; 22(3)627–635
  • Franklin K. B. J., Paxinos G. The Mouse Brain in Stereotaxic Coordinates, et al. Academic press, San Diego 1997
  • Galan R. F., Weidert M., Menzel R., Herz A. V., Galizia C. G. Sensory memory for odors is encoded in spontaneous correlated activity between olfactory glomeruli. Neural Computation 2006; 18(1)10–25
  • Ghozland S., Aguado F., Espinosa-Parrilla J. F., Soriano E., Maldonado R. Spontaneous network activity of cerebellar granule neurons: Impairment by in vivo chronic cannabinoid administration. European Journal of Neuroscience 2002; 16(4)641–651
  • Hasan M. T., Friedrich R. W., Euler T., Larkum M. E., Giese G., Both M., et al. Functional fluorescent Ca2+ indicator proteins in transgenic mice under TET control. PLoS Biology 2004; 2(6)e163
  • Ikegaya Y., Aaron G., Cossart R., Aronov D., Lampl I., Ferster D., et al. Synfire chains and cortical songs: Temporal modules of cortical activity. Science 2004; 304(5670)559–564
  • Ikegaya Y., Le Bon-Jego M., Yuste R. Large-scale imaging of cortical network activity with calcium indicators. Neuroscience Research 2005; 52(2)132–138
  • Kapoor V., Urban N. N. Glomerulus-specific, long-latency activity in the olfactory bulb granule cell network. Journal of Neuroscience 2006; 26(45)11709–11719
  • Karnup S. V., Hayar A., Shipley M. T., Kurnikova M. G. Spontaneous field potentials in the glomeruli of the olfactory bulb: The leading role of juxtaglomerular cells. Neuroscience 2006; 142(1)203–221
  • Kriegstein A., Noctor S., Martinez-Cerdeno V. Patterns of neural stem and progenitor cell division may underlie evolutionary cortical expansion. Nature Reviews Neuroscience 2006; 7(11)883–890
  • Lein E. S., Zhao X., Gage F. H. Defining a molecular atlas of the hippocampus using DNA microarrays and high-throughput in situ hybridization. Journal of Neuroscience 2004; 24(15)3879–3889
  • Mao B. Q., Hamzei-Sichani F., Aronov D., Froemke R. C., Yuste R. Dynamics of spontaneous activity in neocortical slices. Neuron 2001; 32(5)883–898
  • McNay E. C., Sherwin R. S. From artificial cerebro-spinal fluid (aCSF) to artificial extracellular fluid (aECF): Microdialysis perfusate composition effects on in vivo brain ECF glucose measurements. Journal of Neuroscience Methods 2004; 132(1)35–43
  • Ohki K., Chung S., Ch’ng Y. H., Kara P., Reid R. C. Functional imaging with cellular resolution reveals precise micro-architecture in visual cortex. Nature 2005; 433(7026)597–603
  • Osanai M., Yamada N., Yagi T. Long-lasting spontaneous calcium transients in the striatal cells. Neuroscience Letters 2006; 402: 1–2; 81–85
  • Reiff D. F., Ihring A., Guerrero G., Isacoff E. Y., Joesch M., Nakai J., et al. In vivo performance of genetically encoded indicators of neural activity in flies. Journal of Neuroscience 2005; 25(19)4766–4778
  • Sanchez-Vives M. V., McCormick D. A. Cellular and network mechanisms of rhythmic recurrent activity in neocortex. Nature Neuroscience 2000; 3(10)1027–1034
  • Sasaki T., Kimura R., Tsukamoto M., Matsuki N., Ikegaya Y. Integrative spike dynamics of rat CA1 neurons: A multineuronal imaging study. Journal of Physiology 2006; 574(1)195–208
  • Sasaki T., Matsuki N., Ikegaya Y. Metastability of active CA3 networks. Journal of Neuroscience 2007; 27(3)517–528
  • Sullivan M. R., Nimmerjahn A., Sarkisov D. V., Helmchen F., Wang S. S. In vivo calcium imaging of circuit activity in cerebellar cortex. Journal of Neurophysiology 2005; 94(2)1636–1644
  • Takahashi N., Sasaki T., Usami A., Matsuki N., Ikegaya Y. Watching neuronal circuit dynamics through functional multineuron calcium imaging (fMCI). Neuroscience Research 2007; 58(3)219–225
  • Yuste R., Katz L. C. Control of postsynaptic Ca2+ influx in developing neocortex by excitatory and inhibitory neurotransmitters. Neuron 1991; 6(3)333–344

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