Heterogeneity of Astrocytic Form and Function (original) (raw)
References
Virchow, R. L. K. (1858) Die cellularpathologie in ihrer begründung auf physiologische und pathologische gewebelehre, A. Hirschwald, Berlin,. Google Scholar
Golgi, C. (1871) Contribuzione alla fina Anatomia degli organi centrali del sistema nervosos., Rivista clinica di Bologna, Bologna. Google Scholar
Lenhossek, M. (1893) Der feinere Bau des Nervensystems im Lichte neuester Forschung, Fischer’s Medicinische Buchhandlung, Berlin. Google Scholar
Kölliker, A. (1889) Handbuch der gewebelehre des menschen, 6. umgearb. aufl. ed., n.p. Google Scholar
Cajal, R. (1897) Histology of the Nervous System of Man and Vertebrates., Oxford University Press., Oxford. Google Scholar
Kettenmann, H., and Verkhratsky, A. (2008) Neuroglia: the 150 years after, Trends Neurosci 31, 653–659. ArticlePubMedCAS Google Scholar
Oberheim, N. A., Takano, T., Han, X., He, W., Lin, J. H., Wang, F., Xu, Q., Wyatt, J. D., Pilcher, W., Ojemann, J. G., Ransom, B. R., Goldman, S. A., and Nedergaard, M. (2009) Uniquely hominid features of adult human astrocytes, J Neurosci 29, 3276–3287. ArticlePubMedCAS Google Scholar
Oberheim, N. A., Wang, X., Goldman, S., and Nedergaard, M. (2006) Astrocytic complexity distinguishes the human brain, Trends Neurosci 29, 547–553. ArticlePubMedCAS Google Scholar
Nishiyama, A., Watanabe, M., Yang, Z., and Bu, J. (2002) Identity, distribution, and development of polydendrocytes: NG2-expressing glial cells, J Neurocytol 31, 437–455. ArticlePubMedCAS Google Scholar
Eng, L. F. (1985) Glial fibrillary acidic protein (GFAP): the major protein of glial intermediate filaments in differentiated astrocytes, J Neuroimmunol 8, 203–214. ArticlePubMedCAS Google Scholar
Mishima, T., and Hirase, H. (2010) In vivo intracellular recording suggests that gray matter astrocytes in mature cerebral cortex and hippocampus are electrophysiologically homogeneous, J Neurosci 30, 3093–3100. ArticlePubMedCAS Google Scholar
Doetsch, F., Caille, I., Lim, D. A., Garcia-Verdugo, J. M., and Alvarez-Buylla, A. 1999. Subventricular zone astrocytes are neural stem cells in the adult mammalian brain. Cell 97:703–716. ArticleCAS Google Scholar
Chojnacki, A. K., Mak, G. K., and Weiss, S. (2009) Identity crisis for adult periventricular neural stem cells: subventricular zone astrocytes, ependymal cells or both?, Nat Rev Neurosci10, 153–163. Google Scholar
Matyash, V., and Kettenmann, H. (2009) Heterogeneity in astrocyte morphology and physiology, Brain Res Rev. Google Scholar
Emsley, J. G., and Macklis, J. D. (2006) Astroglial heterogeneity closely reflects the neuronal-defined anatomy of the adult murine CNS, Neuron Glia Biol 2, 175–186. ArticlePubMed Google Scholar
Bushong, E. A., Martone, M. E., Jones, Y. Z., and Ellisman, M. H. (2002) Protoplasmic astrocytes in CA1 stratum radiatum occupy separate anatomical domains, J Neurosci 22, 183–192. PubMedCAS Google Scholar
Ogata, K., and Kosaka, T. (2002) Structural and quantitative analysis of astrocytes in the mouse hippocampus, Neuroscience 113, 221–233. ArticlePubMedCAS Google Scholar
Livet, J., Weissman, T. A., Kang, H., Draft, R. W., Lu, J., Bennis, R. A., Sanes, J. R., and Lichtman, J. W. (2007) Transgenic strategies for combinatorial expression of fluorescent proteins in the nervous system, Nature 450, 56–62. ArticlePubMedCAS Google Scholar
Halassa, M. M., Fellin, T., Takano, H., Dong, J. H., and Haydon, P. G. (2007) Synaptic islands defined by the territory of a single astrocyte, J Neurosci 27, 6473–6477. ArticlePubMedCAS Google Scholar
Oberheim, N. A., Tian, G. F., Han, X., Peng, W., Takano, T., Ransom, B., and Nedergaard, M. (2008) Loss of astrocytic domain organization in the epileptic brain, J Neurosci 28, 3264–3276. ArticlePubMedCAS Google Scholar
Hsiao, K., Chapman, P., Nilsen, S., Eckman, C., Harigaya, Y., Younkin, S., Yang, F., and Cole, G. (1996) Correlative memory deficits, Abeta elevation, and amyloid plaques in transgenic mice, Science 274, 99–102. ArticlePubMedCAS Google Scholar
Ransom, B. R., and Sontheimer, H. (1992) The neurophysiology of glial cells, J Clin Neurophysiol 9, 224–251. ArticlePubMedCAS Google Scholar
Lin, S. C., and Bergles, D. E. (2004) Synaptic signaling between neurons and glia, Glia 47, 290–298. ArticlePubMed Google Scholar
Kuffler, S. W., Nicholls, J. G., and Orkand, R. K. (1966) Physiological properties of glial cells in the central nervous system of amphibia, J Neurophysiol 29, 768–787. PubMedCAS Google Scholar
Orkand, R. K., Nicholls, J. G., and Kuffler, S. W. (1966) Effect of nerve impulses on the membrane potential of glial cells in the central nervous system of amphibia, J Neurophysiol 29, 788–806. PubMedCAS Google Scholar
Butt, A. M., and Kalsi, A. (2006) Inwardly rectifying potassium channels (Kir) in central nervous system glia: a special role for Kir4.1 in glial functions, J Cell Mol Med 10, 33–44. ArticlePubMedCAS Google Scholar
Seifert, G., Huttmann, K., Binder, D. K., Hartmann, C., Wyczynski, A., Neusch, C., and Steinhauser, C. (2009) Analysis of astroglial K+ channel expression in the developing hippocampus reveals a predominant role of the Kir4.1 subunit, J Neurosci 29, 7474–7488. ArticlePubMedCAS Google Scholar
Kofuji, P., Ceelen, P., Zahs, K. R., Surbeck, L. W., Lester, H. A., and Newman, E. A. (2000) Genetic inactivation of an inwardly rectifying potassium channel (Kir4.1 subunit) in mice: phenotypic impact in retina, J Neurosci 20, 5733–5740. PubMedCAS Google Scholar
Neusch, C., Papadopoulos, N., Muller, M., Maletzki, I., Winter, S. M., Hirrlinger, J., Handschuh, M., Bahr, M., Richter, D. W., Kirchhoff, F., and Hulsmann, S. (2006) Lack of the Kir4.1 channel subunit abolishes K+ buffering properties of astrocytes in the ventral respiratory group: impact on extracellular K+ regulation, J Neurophysiol 95, 1843–1852. ArticlePubMedCAS Google Scholar
Olsen, M. L., Campbell, S. L., and Sontheimer, H. (2007) Differential distribution of Kir4.1 in spinal cord astrocytes suggests regional differences in K+ homeostasis, J Neurophysiol 98, 786–793. ArticlePubMedCAS Google Scholar
Muller, T., Fritschy, J. M., Grosche, J., Pratt, G. D., Mohler, H., and Kettenmann, H. (1994) Developmental regulation of voltage-gated K+ channel and GABAA receptor expression in Bergmann glial cells, J Neurosci 14, 2503–2514. PubMedCAS Google Scholar
Nishiyama, A., Lin, X. H., Giese, N., Heldin, C. H., and Stallcup, W. B. (1996) Co-localization of NG2 proteoglycan and PDGF alpha-receptor on O2A progenitor cells in the developing rat brain, J Neurosci Res 43, 299–314. ArticlePubMedCAS Google Scholar
Roy, N. S., Wang, S., Harrison-Restelli, C., Benraiss, A., Fraser, R. A., Gravel, M., Braun, P. E., and Goldman, S. A. (1999) Identification, isolation, and promoter-defined separation of mitotic oligodendrocyte progenitor cells from the adult human subcortical white matter, J Neurosci 19, 9986–9995. PubMedCAS Google Scholar
Nishiyama, A., Komitova, M., Suzuki, R., and Zhu, X. (2009) Polydendrocytes (NG2 cells): multifunctional cells with lineage plasticity, Nat Rev Neurosci 10, 9–22. ArticlePubMedCAS Google Scholar
Nunes, M. C., Roy, N. S., Keyoung, H. M., Goodman, R. R., McKhann, G., Jiang, L., Kang, J., Nedergaard, M., and Goldman, S. A. (2003) Identification and isolation of multipotential neural progenitor cells from the subcortical white matter of the adult human brain, Nature Medicine 9, 439–447. ArticlePubMedCAS Google Scholar
Sim, F. J., McClain, C. R., Schanz, S. J., Protack, T. L., Windrem, M. S., and Goldman, S. A. (2011) CD140a identifies a population of highly myelinogenic, migration-competent and efficiently engrafting human oligodendrocyte progenitor cells, Nature biotechnology29, 934–941. Google Scholar
Kukley, M., Capetillo-Zarate, E., and Dietrich, D. (2007) Vesicular glutamate release from axons in white matter, Nat Neurosci 10, 311–320. ArticlePubMedCAS Google Scholar
Bergles, D. E., Roberts, J. D., Somogyi, P., and Jahr, C. E. (2000) Glutamatergic synapses on oligodendrocyte precursor cells in the hippocampus, Nature 405, 187–191. ArticlePubMedCAS Google Scholar
Ge, W. P., Yang, X. J., Zhang, Z., Wang, H. K., Shen, W., Deng, Q. D., and Duan, S. (2006) Long-term potentiation of neuron-glia synapses mediated by Ca2+−permeable AMPA receptors, Science 312, 1533–1537. ArticlePubMedCAS Google Scholar
Ziskin, J. L., Nishiyama, A., Rubio, M., Fukaya, M., and Bergles, D. E. (2007) Vesicular release of glutamate from unmyelinated axons in white matter, Nat Neurosci 10, 321–330. ArticlePubMedCAS Google Scholar
Karadottir, R., Hamilton, N. B., Bakiri, Y., and Attwell, D. (2008) Spiking and nonspiking classes of oligodendrocyte precursor glia in CNS white matter, Nat Neurosci 11, 450–456. ArticlePubMedCAS Google Scholar
Chittajallu, R., Aguirre, A., and Gallo, V. (2004) NG2-positive cells in the mouse white and grey matter display distinct physiological properties, J Physiol 561, 109–122. ArticlePubMedCAS Google Scholar
Karram, K., Goebbels, S., Schwab, M., Jennissen, K., Seifert, G., Steinhauser, C., Nave, K. A., and Trotter, J. (2008) NG2-expressing cells in the nervous system revealed by the NG2-EYFP-knockin mouse, Genesis 46, 743–757. ArticlePubMedCAS Google Scholar
Sim, F., Lang, J., Waldau, B., Roy, N., Schwartz, T., Chandross, K., Natesan, S., Merrill, J., and Goldman, S. A. (2006) Complementary patterns of gene expression by adult human oligodendrocyte progenitor cells and their white matter environment., Ann. Neurology 59, 763–779. ArticleCAS Google Scholar
Sim, F. J., Windrem, M. S., and Goldman, S. A. (2009) Fate determination of adult human glial progenitor cells, Neuron Glia Biol 5, 45–55. ArticlePubMed Google Scholar
Windrem, M. S., Nunes, M. C., Rashbaum, W. K., Schwartz, T. H., Goodman, R. A., McKhann, G., Roy, N. S., and Goldman, S. A. (2004) Fetal and adult human oligodendrocyte progenitor cell isolates myelinate the congenitally dysmyelinated brain, Nature Medicine 10, 93–97. ArticlePubMedCAS Google Scholar
Dimou, L., Simon, C., Kirchhoff, F., Takebayashi, H., and Gotz, M. (2008) Progeny of Olig2-expressing progenitors in the gray and white matter of the adult mouse cerebral cortex, J Neurosci 28, 10434–10442. ArticlePubMedCAS Google Scholar
Guo, F., Ma, J., McCauley, E., Bannerman, P., and Pleasure, D. (2009) Early postnatal proteolipid promoter-expressing progenitors produce multilineage cells in vivo, J Neurosci 29, 7256–7270. ArticlePubMedCAS Google Scholar
Zhu, X., Bergles, D. E., and Nishiyama, A. (2008) NG2 cells generate both oligodendrocytes and gray matter astrocytes, Development 135, 145–157. ArticlePubMedCAS Google Scholar
Zhu, X., Hill, R. A., and Nishiyama, A. (2008) NG2 cells generate oligodendrocytes and gray matter astrocytes in the spinal cord, Neuron Glia Biol 4, 19–26. ArticlePubMed Google Scholar
Rivers, L. E., Young, K. M., Rizzi, M., Jamen, F., Psachoulia, K., Wade, A., Kessaris, N., and Richardson, W. D. (2008) PDGFRA/NG2 glia generate myelinating oligodendrocytes and piriform projection neurons in adult mice, Nat Neurosci 11, 1392–1401. ArticlePubMedCAS Google Scholar
Nedergaard, M., Takano, T., and Hansen, A. J. (2002) Beyond the role of glutamate as a neurotransmitter, Nat Rev Neurosci 3, 748–755. ArticlePubMedCAS Google Scholar
Regan, M. R., Huang, Y. H., Kim, Y. S., Dykes-Hoberg, M. I., Jin, L., Watkins, A. M., Bergles, D. E., and Rothstein, J. D. (2007) Variations in promoter activity reveal a differential expression and physiology of glutamate transporters by glia in the developing and mature CNS, J Neurosci 27, 6607–6619. ArticlePubMedCAS Google Scholar
Rothstein, J. D., Dykes-Hoberg, M., Pardo, C. A., Bristol, L. A., Jin, L., Kuncl, R. W., Kanai, Y., Hediger, M. A., Wang, Y., Schielke, J. P., and Welty, D. F. (1996) Knockout of glutamate transporters reveals a major role for astroglial transport in excitotoxicity and clearance of glutamate, Neuron 16, 675–686. ArticlePubMedCAS Google Scholar
Tanaka, K., Watase, K., Manabe, T., Yamada, K., Watanabe, M., Takahashi, K., Iwama, H., Nishikawa, T., Ichihara, N., Kikuchi, T., Okuyama, S., Kawashima, N., Hori, S., Takimoto, M., and Wada, K. (1997) Epilepsy and exacerbation of brain injury in mice lacking the glutamate transporter GLT-1, Science 276, 1699–1702. ArticlePubMedCAS Google Scholar
Macnab, L. T., and Pow, D. V. (2007) Expression of the exon 9-skipping form of EAAT2 in astrocytes of rats, Neuroscience 150, 705–711. ArticlePubMedCAS Google Scholar
Cornell-Bell, A. H., Finkbeiner, S. M., Cooper, M. S., and Smith, S. J. (1990) Glutamate induces calcium waves in cultured astrocytes: long-range glial signaling, Science 247, 470–473. ArticlePubMedCAS Google Scholar
Shigetomi, E., Kracun, S., Sofroniew, M. V., and Khakh, B. S. (2010) A genetically targeted optical sensor to monitor calcium signals in astrocyte processes, Nat Neurosci 13, 759–766. ArticlePubMedCAS Google Scholar
Cotrina, M. L., Lin, J. H., Alves-Rodrigues, A., Liu, S., Li, J., Azmi-Ghadimi, H., Kang, J., Naus, C. C., and Nedergaard, M. (1998) Connexins regulate calcium signaling by controlling ATP release, Proc Natl Acad Sci USA 95, 15735–15740. ArticlePubMedCAS Google Scholar
Kimelberg, H. K., Anderson, E., and Kettenmann, H. (1990) Swelling-induced changes in electrophysiological properties of cultured astrocytes and oligodendrocytes. II. Whole-cell currents, Brain Res 529, 262–268. ArticlePubMedCAS Google Scholar
Porter, J. T., and McCarthy, K. D. (1995) Adenosine receptors modulate [Ca2+]i in hippocampal astrocytes in situ, J Neurochem 65, 1515–1523. ArticlePubMedCAS Google Scholar
Kang, J., Jiang, L., Goldman, S. A., and Nedergaard, M. (1998) Astrocyte-mediated potentiation of inhibitory synaptic transmission, Nat Neurosci 1, 683–692. ArticlePubMedCAS Google Scholar
Duffy, S., and MacVicar, B. A. (1995) Adrenergic calcium signaling in astrocyte networks within the hippocampal slice, J Neurosci 15, 5535–5550. PubMedCAS Google Scholar
Cotrina, M. L., Lin, J. H., Lopez-Garcia, J. C., Naus, C. C., and Nedergaard, M. (2000) ATP-mediated glia signaling, J Neurosci 20, 2835–2844. PubMedCAS Google Scholar
Porter, J. T., and McCarthy, K. D. (1995) GFAP-positive hippocampal astrocytes in situ respond to glutamatergic neuroligands with increases in [Ca2+]i, Glia 13, 101–112. ArticlePubMedCAS Google Scholar
Parri, H. R., and Crunelli, V. (2003) The role of Ca2+ in the generation of spontaneous astrocytic Ca2+ oscillations, Neuroscience 120, 979–992. ArticlePubMedCAS Google Scholar
Parri, H. R., Gould, T. M., and Crunelli, V. (2001) Spontaneous astrocytic Ca2+ oscillations in situ drive NMDAR-mediated neuronal excitation, Nat Neurosci 4, 803–812. ArticlePubMedCAS Google Scholar
Nett, W. J., Oloff, S. H., and McCarthy, K. D. (2002) Hippocampal astrocytes in situ exhibit calcium oscillations that occur independent of neuronal activity, J Neurophysiol 87, 528–537. PubMed Google Scholar
Zur Nieden, R., and Deitmer, J. W. (2006) The role of metabotropic glutamate receptors for the generation of calcium oscillations in rat hippocampal astrocytes in situ, Cereb Cortex 16, 676–687. ArticlePubMed Google Scholar
Bekar, L. K., He, W., and Nedergaard, M. (2008) Locus coeruleus alpha-adrenergic-mediated activation of cortical astrocytes in vivo, Cereb Cortex 18, 2789–2795. ArticlePubMed Google Scholar
Wang, X., Lou, N., Xu, Q., Tian, G. F., Peng, W. G., Han, X., Kang, J., Takano, T., and Nedergaard, M. (2006) Astrocytic Ca2+ signaling evoked by sensory stimulation in vivo, Nat Neurosci 9, 816–823. ArticlePubMedCAS Google Scholar
Schummers, J., Yu, H., and Sur, M. (2008) Tuned responses of astrocytes and their influence on hemodynamic signals in the visual cortex, Science 320, 1638–1643. ArticlePubMedCAS Google Scholar
Araque, A., Martin, E. D., Perea, G., Arellano, J. I., and Buno, W. (2002) Synaptically released acetylcholine evokes Ca2+ elevations in astrocytes in hippocampal slices, J Neurosci 22, 2443–2450. PubMedCAS Google Scholar
Bezzi, P., Carmignoto, G., Pasti, L., Vesce, S., Rossi, D., Rizzini, B. L., Pozzan, T., and Volterra, A. (1998) Prostaglandins stimulate calcium-dependent glutamate release in astrocytes, Nature 391, 281–285. ArticlePubMedCAS Google Scholar
Bowser, D. N., and Khakh, B. S. (2004) ATP excites interneurons and astrocytes to increase synaptic inhibition in neuronal networks, J Neurosci 24, 8606–8620. ArticlePubMedCAS Google Scholar
Perea, G., and Araque, A. (2005) Properties of synaptically evoked astrocyte calcium signal reveal synaptic information processing by astrocytes, J Neurosci 25, 2192–2203. ArticlePubMedCAS Google Scholar
Navarrete, M., and Araque, A. (2008) Endocannabinoids mediate neuron-astrocyte communication, Neuron 57, 883–893. ArticlePubMedCAS Google Scholar
Porter, J. T., and McCarthy, K. D. (1996) Hippocampal astrocytes in situ respond to glutamate released from synaptic terminals, J Neurosci 16, 5073–5081. PubMedCAS Google Scholar
Piet, R., and Jahr, C. E. (2007) Glutamatergic and purinergic receptor-mediated calcium transients in Bergmann glial cells, J Neurosci 27, 4027–4035. ArticlePubMedCAS Google Scholar
Beierlein, M., and Regehr, W. G. (2006) Brief bursts of parallel fiber activity trigger calcium signals in bergmann glia, J Neurosci 26, 6958–6967. ArticlePubMedCAS Google Scholar
Matyash, V., Filippov, V., Mohrhagen, K., and Kettenmann, H. (2001) Nitric oxide signals parallel fiber activity to Bergmann glial cells in the mouse cerebellar slice, Mol Cell Neurosci 18, 664–670. ArticlePubMedCAS Google Scholar
Kulik, A., Haentzsch, A., Luckermann, M., Reichelt, W., and Ballanyi, K. (1999) Neuron-glia signaling via alpha(1) adrenoceptor-mediated Ca(2+) release in Bergmann glial cells in situ, J Neurosci 19, 8401–8408. PubMedCAS Google Scholar
Newman, E. A. (2005) Calcium increases in retinal glial cells evoked by light-induced neuronal activity, J Neurosci 25, 5502–5510. ArticlePubMedCAS Google Scholar
Rieger, A., Deitmer, J. W., and Lohr, C. (2007) Axon-glia communication evokes calcium signaling in olfactory ensheathing cells of the developing olfactory bulb, Glia 55, 352–359. ArticlePubMed Google Scholar
Takata, N., and Hirase, H. (2008) Cortical layer 1 and layer 2/3 astrocytes exhibit distinct calcium dynamics in vivo, PLoS One 3, e2525. ArticlePubMedCAS Google Scholar
Shigetomi, E., Bowser, D. N., Sofroniew, M. V., and Khakh, B. S. (2008) Two forms of astrocyte calcium excitability have distinct effects on NMDA receptor-mediated slow inward currents in pyramidal neurons, J Neurosci 28, 6659–6663. ArticlePubMedCAS Google Scholar
Haas, B., Schipke, C. G., Peters, O., Sohl, G., Willecke, K., and Kettenmann, H. (2006) Activity-dependent ATP-waves in the mouse neocortex are independent from astrocytic calcium waves, Cereb Cortex 16, 237–246. ArticlePubMed Google Scholar
Schipke, C. G., Boucsein, C., Ohlemeyer, C., Kirchhoff, F., and Kettenmann, H. (2002) Astrocyte Ca2+ waves trigger responses in microglial cells in brain slices, FASEB J 16, 255–257. PubMedCAS Google Scholar
Beattie, E. C., Stellwagen, D., Morishita, W., Bresnahan, J. C., Ha, B. K., Von Zastrow, M., Beattie, M. S., and Malenka, R. C. (2002) Control of synaptic strength by glial TNFalpha, Science 295, 2282–2285. ArticlePubMedCAS Google Scholar
Cotrina, M. L., Lin, J. H., and Nedergaard, M. (1998) Cytoskeletal assembly and ATP release regulate astrocytic calcium signaling, J Neurosci 18, 8794–8804. PubMedCAS Google Scholar
Parpura, V., Basarsky, T. A., Liu, F., Jeftinija, K., Jeftinija, S., and Haydon, P. G. (1994) Glutamate-mediated astrocyte-neuron signalling, Nature 369, 744–747. ArticlePubMedCAS Google Scholar
Zonta, M., Angulo, M. C., Gobbo, S., Rosengarten, B., Hossmann, K. A., Pozzan, T., and Carmignoto, G. (2003) Neuron-to-astrocyte signaling is central to the dynamic control of brain microcirculation, Nat Neurosci 6, 43–50. ArticlePubMedCAS Google Scholar
Schell, M. J., Molliver, M. E., and Snyder, S. H. (1995) D-serine, an endogenous synaptic modulator: localization to astrocytes and glutamate-stimulated release, Proc Natl Acad Sci USA 92, 3948–3952. ArticlePubMedCAS Google Scholar
Stellwagen, D., and Malenka, R. C. (2006) Synaptic scaling mediated by glial TNF-alpha, Nature 440, 1054–1059. ArticlePubMedCAS Google Scholar
Pascual, O., Casper, K. B., Kubera, C., Zhang, J., Revilla-Sanchez, R., Sul, J. Y., Takano, H., Moss, S. J., McCarthy, K., and Haydon, P. G. (2005) Astrocytic purinergic signaling coordinates synaptic networks, Science 310, 113–116. ArticlePubMedCAS Google Scholar
Henneberger, C., Papouin, T., Oliet, S. H., and Rusakov, D. A. (2010) Long-term potentiation depends on release of D-serine from astrocytes, Nature 463, 232–236. ArticlePubMedCAS Google Scholar
Tian, G. F., Azmi, H., Takano, T., Xu, Q., Peng, W., Lin, J., Oberheim, N., Lou, N., Wang, X., Zielke, H. R., Kang, J., and Nedergaard, M. (2005) An astrocytic basis of epilepsy, Nat Med 11, 973–981. PubMedCAS Google Scholar
Jourdain, P., Bergersen, L. H., Bhaukaurally, K., Bezzi, P., Santello, M., Domercq, M., Matute, C., Tonello, F., Gundersen, V., and Volterra, A. (2007) Glutamate exocytosis from astrocytes controls synaptic strength, Nat Neurosci 10, 331–339. ArticlePubMedCAS Google Scholar
Liu, Q. S., Xu, Q., Kang, J., and Nedergaard, M. (2004) Astrocyte activation of presynaptic metabotropic glutamate receptors modulates hippocampal inhibitory synaptic transmission, Neuron Glia Biol 1, 307–316. ArticlePubMedCAS Google Scholar
Liu, Q. S., Xu, Q., Arcuino, G., Kang, J., and Nedergaard, M. (2004) Astrocyte-mediated activation of neuronal kainate receptors, Proc Natl Acad Sci USA 101, 3172–3177. ArticlePubMedCAS Google Scholar
Brockhaus, J., and Deitmer, J. W. (2002) Long-lasting modulation of synaptic input to Purkinje neurons by Bergmann glia stimulation in rat brain slices, J Physiol 545, 581–593. ArticlePubMedCAS Google Scholar
Lee, S., Yoon, B. E., Berglund, K., Oh, S. J., Park, H., Shin, H. S., Augustine, G. J., and Lee, C. J. (2010) Channel-mediated tonic GABA release from glia, Science 330, 790–796. ArticlePubMedCAS Google Scholar
Kozlov, A. S., Angulo, M. C., Audinat, E., and Charpak, S. (2006) Target cell-specific modulation of neuronal activity by astrocytes, Proc Natl Acad Sci USA 103, 10058–10063. ArticlePubMedCAS Google Scholar
Newman, E. A., and Zahs, K. R. (1998) Modulation of neuronal activity by glial cells in the retina, J Neurosci 18, 4022–4028. PubMedCAS Google Scholar
Newman, E. A. (2003) Glial cell inhibition of neurons by release of ATP, J Neurosci 23, 1659–1666. PubMedCAS Google Scholar
Agulhon, C., Fiacco, T. A., and McCarthy, K. D. (2010) Hippocampal short- and long-term plasticity are not modulated by astrocyte Ca2+ signaling, Science 327, 1250–1254. ArticlePubMedCAS Google Scholar
Fiacco, T. A., Agulhon, C., Taves, S. R., Petravicz, J., Casper, K. B., Dong, X., Chen, J., and McCarthy, K. D. (2007) Selective stimulation of astrocyte calcium in situ does not affect neuronal excitatory synaptic activity, Neuron 54, 611–626. ArticlePubMedCAS Google Scholar
Petravicz, J., Fiacco, T. A., and McCarthy, K. D. (2008) Loss of IP3 receptor-dependent Ca2+ increases in hippocampal astrocytes does not affect baseline CA1 pyramidal neuron synaptic activity, J Neurosci 28, 4967–4973. ArticlePubMedCAS Google Scholar
Rouach, N., Avignone, E., Meme, W., Koulakoff, A., Venance, L., Blomstrand, F., and Giaume, C. (2002) Gap junctions and connexin expression in the normal and pathological central nervous system, Biol Cell 94, 457–475. ArticlePubMedCAS Google Scholar
Houades, V., Rouach, N., Ezan, P., Kirchhoff, F., Koulakoff, A., and Giaume, C. (2006) Shapes of astrocyte networks in the juvenile brain, Neuron Glia Biol 2, 3–14. ArticlePubMed Google Scholar
Houades, V., Koulakoff, A., Ezan, P., Seif, I., and Giaume, C. (2008) Gap junction-mediated astrocytic networks in the mouse barrel cortex, J Neurosci 28, 5207–5217. ArticlePubMedCAS Google Scholar
Muller, T., Moller, T., Neuhaus, J., and Kettenmann, H. (1996) Electrical coupling among Bergmann glial cells and its modulation by glutamate receptor activation, Glia 17, 274–284. ArticlePubMedCAS Google Scholar
Wiencken-Barger, A. E., Djukic, B., Casper, K. B., and McCarthy, K. D. (2007) A role for Connexin43 during neurodevelopment, Glia 55, 675–686. ArticlePubMed Google Scholar
Theis, M., Jauch, R., Zhuo, L., Speidel, D., Wallraff, A., Doring, B., Frisch, C., Sohl, G., Teubner, B., Euwens, C., Huston, J., Steinhauser, C., Messing, A., Heinemann, U., and Willecke, K. (2003) Accelerated hippocampal spreading depression and enhanced locomotory activity in mice with astrocyte-directed inactivation of connexin43, J Neurosci 23, 766–776. PubMedCAS Google Scholar
Wallraff, A., Kohling, R., Heinemann, U., Theis, M., Willecke, K., and Steinhauser, C. (2006) The impact of astrocytic gap junctional coupling on potassium buffering in the hippocampus, J Neurosci 26, 5438–5447. ArticlePubMedCAS Google Scholar
Takano, T., Kang, J., Jaiswal, J. K., Simon, S. M., Lin, J. H., Yu, Y., Li, Y., Yang, J., Dienel, G., Zielke, H. R., and Nedergaard, M. (2005) Receptor-mediated glutamate release from volume sensitive channels in astrocytes, Proc Natl Acad Sci USA 102, 16466–16471. ArticlePubMedCAS Google Scholar
Ye, Z. C., Oberheim, N., Kettenmann, H., and Ransom, B. R. (2009) Pharmacological “cross-inhibition” of connexin hemichannels and swelling activated anion channels, Glia 57, 258–269. ArticlePubMed Google Scholar
Ye, Z. C., Wyeth, M. S., Baltan-Tekkok, S., and Ransom, B. R. (2003) Functional hemichannels in astrocytes: a novel mechanism of glutamate release, J Neurosci 23, 3588–3596. PubMedCAS Google Scholar
Hewett, J. A. (2009) Determinants of regional and local diversity within the astroglial lineage of the normal central nervous system, J Neurochem 110, 1717–1736. ArticlePubMedCAS Google Scholar
Silver, J., and Miller, J. H. (2004) Regeneration beyond the glial scar, Nat Rev Neurosci 5, 146–156. ArticlePubMedCAS Google Scholar
Pekny, M., and Nilsson, M. (2005) Astrocyte activation and reactive gliosis, Glia 50, 427–434. ArticlePubMed Google Scholar
Benediktsson, A. M., Schachtele, S. J., Green, S. H., and Dailey, M. E. (2005) Ballistic labeling and dynamic imaging of astrocytes in organotypic hippocampal slice cultures, J Neurosci Methods 141, 41–53. ArticlePubMed Google Scholar
Hirrlinger, J., Hulsmann, S., and Kirchhoff, F. (2004) Astroglial processes show spontaneous motility at active synaptic terminals in situ, Eur J Neurosci 20, 2235–2239. ArticlePubMed Google Scholar
Nishida, H., and Okabe, S. (2007) Direct astrocytic contacts regulate local maturation of dendritic spines, J Neurosci 27, 331–340. ArticlePubMedCAS Google Scholar
Oliet, S. H., Piet, R., and Poulain, D. A. (2001) Control of glutamate clearance and synaptic efficacy by glial coverage of neurons, Science 292, 923–926. ArticlePubMedCAS Google Scholar
Piet, R., Vargova, L., Sykova, E., Poulain, D. A., and Oliet, S. H. (2004) Physiological contribution of the astrocytic environment of neurons to intersynaptic crosstalk, Proc Natl Acad Sci USA 101, 2151–2155. ArticlePubMedCAS Google Scholar
Levison, S. W., Young, G. M., and Goldman, J. E. (1999) Cycling cells in the adult rat neocortex preferentially generate oligodendroglia, J Neurosci Res 57, 435–446. ArticlePubMedCAS Google Scholar
Goldman, S. A., Zukhar, A., Barami, K., Mikawa, T., and Niedzwiecki, D. (1996) Ependymal/subependymal zone cells of postnatal and adult songbird brain generate both neurons and nonneuronal siblings in vitro and in vivo, J Neurobiol 30, 505–520. ArticlePubMedCAS Google Scholar
Gray, G., and Sanes, J. (1992) Lineage of radial glia in the chicken optic tectum, Development 114, 271–283. PubMedCAS Google Scholar
Malatesta, P., Hack, M. A., Hartfuss, E., Kettenmann, H., Klinkert, W., Kirchhoff, F., and Gotz, M. (2003) Neuronal or glial progeny: regional differences in radial glia fate, Neuron 37, 751–764. ArticlePubMedCAS Google Scholar
Goldman, J. E. (1995) Lineage, migration, and fate determination of postnatal subventricular zone cells in the mammalian CNS, J Neurooncol 24, 61–64. ArticlePubMedCAS Google Scholar
Marshall, C. A., and Goldman, J. E. (2002) Subpallial dlx2-expressing cells give rise to astrocytes and oligodendrocytes in the cerebral cortex and white matter, J Neurosci 22, 9821–9830. PubMedCAS Google Scholar
Beckervordersandforth, R., Tripathi, P., Ninkovic, J., Bayam, E., Lepier, A., Stempfhuber, B., Kirchhoff, F., Hirrlinger, J., Haslinger, A., Lie, D. C., Beckers, J., Yoder, B., Irmler, M., and Gotz, M. (2010) In vivo fate mapping and expression analysis reveals molecular hallmarks of prospectively isolated adult neural stem cells, Cell Stem Cell 7, 744–758. ArticlePubMedCAS Google Scholar
Ono, K., Takebayashi, H., Ikeda, K., Furusho, M., Nishizawa, T., Watanabe, K., and Ikenaka, K. (2008) Regional- and temporal-dependent changes in the differentiation of Olig2 progenitors in the forebrain, and the impact on astrocyte development in the dorsal pallium, Dev Biol 320, 456–468. ArticlePubMedCAS Google Scholar
Zhou, Q., and Anderson, D. J. (2002) The bHLH transcription factors OLIG2 and OLIG1 couple neuronal and glial subtype specification, Cell 109, 61–73. ArticlePubMedCAS Google Scholar
Zhou, Q., Wang, S., and Anderson, D. J. (2000) Identification of a novel family of oligodendrocyte lineage-specific basic helix-loop-helix transcription factors, Neuron 25, 331–343. ArticlePubMedCAS Google Scholar
Masahira, N., Takebayashi, H., Ono, K., Watanabe, K., Ding, L., Furusho, M., Ogawa, Y., Nabeshima, Y., Alvarez-Buylla, A., Shimizu, K., and Ikenaka, K. (2006) Olig2-positive progenitors in the embryonic spinal cord give rise not only to motoneurons and oligodendrocytes, but also to a subset of astrocytes and ependymal cells, Dev Biol 293, 358–369. ArticlePubMedCAS Google Scholar
Hochstim, C., Deneen, B., Lukaszewicz, A., Zhou, Q., and Anderson, D. J. (2008) Identification of positionally distinct astrocyte subtypes whose identities are specified by a homeodomain code, Cell 133, 510–522. ArticlePubMedCAS Google Scholar
Retzius, G. (1894) Die neuroglia des Gehirns beim Menschen und bei Saeugethieren, Biol Untersuchungen 6, 1–28. Google Scholar
Colombo, J. A., and Reisin, H. D. (2004) Interlaminar astroglia of the cerebral cortex: a marker of the primate brain, Brain Res 1006, 126–131. ArticlePubMedCAS Google Scholar
Colombo, J. A., Yanez, A., Puissant, V., and Lipina, S. (1995) Long, interlaminar astroglial cell processes in the cortex of adult monkeys, J Neurosci Res 40, 551–556. ArticlePubMedCAS Google Scholar
Colombo, J. A. (1996) Interlaminar astroglial processes in the cerebral cortex of adult monkeys but not of adult rats, Acta Anat (Basel) 155, 57–62. ArticleCAS Google Scholar
Garcia-Marin, V., Garcia-Lopez, P., and Freire, M. (2007) Cajal’s contributions to glia research, Trends Neurosci 30, 479–487. ArticlePubMedCAS Google Scholar