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Erschienen in: Experimental Brain Research 2/2009

01.08.2009 | Research Article

Differential expression of two glutamate transporters, GLAST and GLT-1, in an experimental rat model of glaucoma

verfasst von: Chan Kee Park, Jiook Cha, Soo Chul Park, Phil Young Lee, Jie Hyun Kim, Hwa Sun Kim, Shin Ae Kim, In-Beom Kim, Myung-Hoon Chun

Erschienen in: Experimental Brain Research | Ausgabe 2/2009

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Abstract

Glutamate is the major excitatory neurotransmitter of the mammalian retina, and excessive glutamate has been implicated in the pathogenesis of glaucoma. It is well known that glutamate transport, mainly via GLAST and GLT-1, is cardinal mechanism for maintaining glutamate homeostasis in normal and pathological conditions, including ischemia in the brain. In an effort to understand the role of glutamate and the glutamate regulation system of the retina in the pathogenesis of glaucoma, we examined changes in the expression of two glutamate transporters, GLAST and GLT-1, by Western blot analysis and immunocytochemistry in a rat glaucoma model. GLT-1 was expressed in cone photoreceptors and some cone bipolar cells and the levels of expression were significantly increased in the cauterized eyes throughout the entire experimental period. In contrast, GLAST expression, which occurred in Müller cells, the main retinal glial cells, remained stable during the experimental period. These results suggest that GLT-1 may be a prerequisite for the maintenance of glutamate homeostasis in the retina undergoing glaucoma.
Literatur
Zurück zum Zitat Arriza JL, Eliasof S, Kavanaugh MP, Amara SG (1997) Excitatory amino acid transporter 5, a retinal glutamate transporter coupled to a chloride conductance. Proc Natl Acad Sci USA 94:4155–4160PubMedCrossRef Arriza JL, Eliasof S, Kavanaugh MP, Amara SG (1997) Excitatory amino acid transporter 5, a retinal glutamate transporter coupled to a chloride conductance. Proc Natl Acad Sci USA 94:4155–4160PubMedCrossRef
Zurück zum Zitat Bringmann A, Pannicke T, Grosche J, Francke M, Wiedermann P, Skatchkov SN, Osborne NN, Reichenbach A (2006) Müller cells in the healthy and diseased retina. Prog Retin Eye Res 25:397–424PubMedCrossRef Bringmann A, Pannicke T, Grosche J, Francke M, Wiedermann P, Skatchkov SN, Osborne NN, Reichenbach A (2006) Müller cells in the healthy and diseased retina. Prog Retin Eye Res 25:397–424PubMedCrossRef
Zurück zum Zitat Danbolt NC, Storm-Mathisen J, Kanner BI (1992) An [Na+ + K+] coupled L-glutamate transporter purified from rat brain is located in glial cell processes. Neuroscience 51:295–310PubMedCrossRef Danbolt NC, Storm-Mathisen J, Kanner BI (1992) An [Na+ + K+] coupled L-glutamate transporter purified from rat brain is located in glial cell processes. Neuroscience 51:295–310PubMedCrossRef
Zurück zum Zitat Dreyer EB, Zurakowski D, Schumer RA, Podos SM, Lipton SA (1996) Elevated glutamate levels in the vitreous body of humans and monkeys with glaucoma. Arch Ophthalmol 114:299–305PubMed Dreyer EB, Zurakowski D, Schumer RA, Podos SM, Lipton SA (1996) Elevated glutamate levels in the vitreous body of humans and monkeys with glaucoma. Arch Ophthalmol 114:299–305PubMed
Zurück zum Zitat Fairman WA, Vandenberg RJ, Arriza JL, Kavanaugh MP, Amara SG (1995) An excitatory amino-acid transporter with properties of a ligand-gated chloride channel. Nature 375:599–603PubMedCrossRef Fairman WA, Vandenberg RJ, Arriza JL, Kavanaugh MP, Amara SG (1995) An excitatory amino-acid transporter with properties of a ligand-gated chloride channel. Nature 375:599–603PubMedCrossRef
Zurück zum Zitat Izumi Y, Shimamoto K, Benz AM, Hammerman SB, Olney JW, Zorumski CF (2002) Glutamate transporters and retinal excitotoxicity. Glia 39:58–68PubMedCrossRef Izumi Y, Shimamoto K, Benz AM, Hammerman SB, Olney JW, Zorumski CF (2002) Glutamate transporters and retinal excitotoxicity. Glia 39:58–68PubMedCrossRef
Zurück zum Zitat Ju KR, Kim HS, Kim JH, Lee NY, Park CK (2006) Retinal glial cell responses and Fas/FasL activation in rats with chronic ocular hypertension. Brain Res 1122:209–221PubMedCrossRef Ju KR, Kim HS, Kim JH, Lee NY, Park CK (2006) Retinal glial cell responses and Fas/FasL activation in rats with chronic ocular hypertension. Brain Res 1122:209–221PubMedCrossRef
Zurück zum Zitat Kanai Y, Hediger MA (1992) Primary structure and functional characterization of a high-affinity glutamate transporter. Nature 360:467–471PubMedCrossRef Kanai Y, Hediger MA (1992) Primary structure and functional characterization of a high-affinity glutamate transporter. Nature 360:467–471PubMedCrossRef
Zurück zum Zitat Kim HS, Chang YI, Kim JH, Park CK (2007a) Alteration of retinal intrinsic survival signal and effect of alpha2-adrenergic receptor agonist in the retina of the chronic ocular hypertension rat. Vis Neurosci 24:127–139PubMedCrossRef Kim HS, Chang YI, Kim JH, Park CK (2007a) Alteration of retinal intrinsic survival signal and effect of alpha2-adrenergic receptor agonist in the retina of the chronic ocular hypertension rat. Vis Neurosci 24:127–139PubMedCrossRef
Zurück zum Zitat Kim JH, Lee NY, Jung SW, Park CK (2007b) Expression of N-methyl-d-aspartate receptor 1 in rats with chronic ocular hypertension. Neuroscience 149:908–916PubMedCrossRef Kim JH, Lee NY, Jung SW, Park CK (2007b) Expression of N-methyl-d-aspartate receptor 1 in rats with chronic ocular hypertension. Neuroscience 149:908–916PubMedCrossRef
Zurück zum Zitat Lehre KP, Levy LM, Ottersen OP, Storm-Mathisen J, Danbolt NC (1995) Differential expression of two glial glutamate transporters in the rat brain: quantitative and immunocytochemical observations. J Neurosci 15:1835–1853PubMed Lehre KP, Levy LM, Ottersen OP, Storm-Mathisen J, Danbolt NC (1995) Differential expression of two glial glutamate transporters in the rat brain: quantitative and immunocytochemical observations. J Neurosci 15:1835–1853PubMed
Zurück zum Zitat Lehre KP, Davanger S, Danbolt NC (1997) Localization of the glutamate transporter protein GLAST in rat retina. Brain Res 744:129–137PubMedCrossRef Lehre KP, Davanger S, Danbolt NC (1997) Localization of the glutamate transporter protein GLAST in rat retina. Brain Res 744:129–137PubMedCrossRef
Zurück zum Zitat Levy LM, Lehre KP, Rolstad B, Danbolt NC (1993) A monoclonal antibody raised against an [Na+ + K+] coupled L-glutamate transporter purified from rat brain confirms glial cell localization. FEBS Lett 317:79–84PubMedCrossRef Levy LM, Lehre KP, Rolstad B, Danbolt NC (1993) A monoclonal antibody raised against an [Na+ + K+] coupled L-glutamate transporter purified from rat brain confirms glial cell localization. FEBS Lett 317:79–84PubMedCrossRef
Zurück zum Zitat Maragakis NJ, Rothstein JD (2001) Glutamate transporters in neurologic disease. Arch Neurol 58:365–370PubMedCrossRef Maragakis NJ, Rothstein JD (2001) Glutamate transporters in neurologic disease. Arch Neurol 58:365–370PubMedCrossRef
Zurück zum Zitat Martin KR, Levkovitch-Verbin H, Valenta D, Baumrind L, Pease ME, Quigley HA (2002) Retinal glutamate transporter changes in experimental glaucoma and after optic nerve transection in the rat. Invest Ophthalmol Vis Sci 43:2236–2243PubMed Martin KR, Levkovitch-Verbin H, Valenta D, Baumrind L, Pease ME, Quigley HA (2002) Retinal glutamate transporter changes in experimental glaucoma and after optic nerve transection in the rat. Invest Ophthalmol Vis Sci 43:2236–2243PubMed
Zurück zum Zitat Massey SC, Miller RF (1990) N-methyl-D-aspartate receptors of ganglion cells in rabbit retina. J Neurophysiol 63:16–30PubMed Massey SC, Miller RF (1990) N-methyl-D-aspartate receptors of ganglion cells in rabbit retina. J Neurophysiol 63:16–30PubMed
Zurück zum Zitat Moore CG, Milne ST, Morrison JC (1993) Noninvasive measurement of rat intraocular pressure with the Tono-Pen. Invest Ophthalmol Vis Sci 34:363–369PubMed Moore CG, Milne ST, Morrison JC (1993) Noninvasive measurement of rat intraocular pressure with the Tono-Pen. Invest Ophthalmol Vis Sci 34:363–369PubMed
Zurück zum Zitat Moore CG, Epley D, Milne ST, Morrison JC (1995) Long-term non-invasive measurement of intraocular pressure in the rat eye. Curr Eye Res 14:711–717PubMedCrossRef Moore CG, Epley D, Milne ST, Morrison JC (1995) Long-term non-invasive measurement of intraocular pressure in the rat eye. Curr Eye Res 14:711–717PubMedCrossRef
Zurück zum Zitat Naskar R, Vorwerk CK, Dreyer EB (2000) Concurrent downregulation of a glutamate transporter and receptor in glaucoma. Invest Ophthalmol Vis Sci 41:1940–1944PubMed Naskar R, Vorwerk CK, Dreyer EB (2000) Concurrent downregulation of a glutamate transporter and receptor in glaucoma. Invest Ophthalmol Vis Sci 41:1940–1944PubMed
Zurück zum Zitat Park SH, Kim JH, Kim YH, Park CH (2007) Expression of neuronal nitric oxide synthase in the retina of a rat model of chronic glaucoma. Vis Res 47:2732–2740PubMedCrossRef Park SH, Kim JH, Kim YH, Park CH (2007) Expression of neuronal nitric oxide synthase in the retina of a rat model of chronic glaucoma. Vis Res 47:2732–2740PubMedCrossRef
Zurück zum Zitat Pines G, Danbolt NC, Bjørås M, Zhang Y, Bendahan A, Eide L, Koepsell H, Storm-Mathisen J, Seeberg E, Kanner BI (1992) Cloning and expression of a rat brain L-glutamate transporter. Nature 360:464–467PubMedCrossRef Pines G, Danbolt NC, Bjørås M, Zhang Y, Bendahan A, Eide L, Koepsell H, Storm-Mathisen J, Seeberg E, Kanner BI (1992) Cloning and expression of a rat brain L-glutamate transporter. Nature 360:464–467PubMedCrossRef
Zurück zum Zitat Pow DV, Barnett NL (2000) Developmental expression of excitatory amino acid transporter 5: a photoreceptor and bipolar cell glutamate transporter in rat retina. Neurosci Lett 280:21–24PubMedCrossRef Pow DV, Barnett NL (2000) Developmental expression of excitatory amino acid transporter 5: a photoreceptor and bipolar cell glutamate transporter in rat retina. Neurosci Lett 280:21–24PubMedCrossRef
Zurück zum Zitat Pow DV, Sullivan R, Scott H (2003) Antibody production and immunocytochemical localization of amino acid transporters. Methods Mol Biol 227:213–244PubMed Pow DV, Sullivan R, Scott H (2003) Antibody production and immunocytochemical localization of amino acid transporters. Methods Mol Biol 227:213–244PubMed
Zurück zum Zitat Rauen T (2000) Diversity of glutamate transporter expression and function in the mammalian retina. Amino Acids 19:53–62PubMedCrossRef Rauen T (2000) Diversity of glutamate transporter expression and function in the mammalian retina. Amino Acids 19:53–62PubMedCrossRef
Zurück zum Zitat Rauen T, Rothstein JD, Wässle H (1996) Differential expression of three glutamate transporter subtypes in the rat retina. Cell Tissue Res 286:325–336PubMedCrossRef Rauen T, Rothstein JD, Wässle H (1996) Differential expression of three glutamate transporter subtypes in the rat retina. Cell Tissue Res 286:325–336PubMedCrossRef
Zurück zum Zitat Rauen T, Taylor WR, Kuhlbrodt K, Wiessner M (1998) High-affinity glutamate transporters in the rat retina: a major role of the glial glutamate transporter GLAST-1 in transmitter clearance. Cell Tissue Res 291:19–31PubMedCrossRef Rauen T, Taylor WR, Kuhlbrodt K, Wiessner M (1998) High-affinity glutamate transporters in the rat retina: a major role of the glial glutamate transporter GLAST-1 in transmitter clearance. Cell Tissue Res 291:19–31PubMedCrossRef
Zurück zum Zitat Robinson MB (1998) The family of sodium-dependent glutamate transporters: a focus on the GLT-1/EAAT2 subtype. Neurochem Int 33:479–491PubMedCrossRef Robinson MB (1998) The family of sodium-dependent glutamate transporters: a focus on the GLT-1/EAAT2 subtype. Neurochem Int 33:479–491PubMedCrossRef
Zurück zum Zitat Rothstein JD, Martin LJ, Kuncl RW (1992) Decreased glutamate transport by the brain and spinal cord in amyotrophic lateral sclerosis. N Engl J Med 326:1464–1468PubMed Rothstein JD, Martin LJ, Kuncl RW (1992) Decreased glutamate transport by the brain and spinal cord in amyotrophic lateral sclerosis. N Engl J Med 326:1464–1468PubMed
Zurück zum Zitat Rothstein JD, Dykes-Hoberg M, Pardo CA, Bristol LA, Jin L, Kuncl RW, Kanai Y, Hediger MA, Wang Y, Schielke JP, Welty DF (1996) Knockout of glutamate transporters reveals a major role for astroglial transport in excitotoxicity and clearance of glutamate. Neuron 16:675–686PubMedCrossRef Rothstein JD, Dykes-Hoberg M, Pardo CA, Bristol LA, Jin L, Kuncl RW, Kanai Y, Hediger MA, Wang Y, Schielke JP, Welty DF (1996) Knockout of glutamate transporters reveals a major role for astroglial transport in excitotoxicity and clearance of glutamate. Neuron 16:675–686PubMedCrossRef
Zurück zum Zitat Salinas-Navarro M, Mayor-Torroglosa S, Jiménz-López M, Avilés-Trigueros M, Holmes TM, Lund RD, Villegas-Pérez MP, Vidal-Sanz M (2009) A computerized analysis of the entire retinal ganglion cell population and its spatial distribution in adult rats. Vision Res 49:115–126PubMedCrossRef Salinas-Navarro M, Mayor-Torroglosa S, Jiménz-López M, Avilés-Trigueros M, Holmes TM, Lund RD, Villegas-Pérez MP, Vidal-Sanz M (2009) A computerized analysis of the entire retinal ganglion cell population and its spatial distribution in adult rats. Vision Res 49:115–126PubMedCrossRef
Zurück zum Zitat Schuettauf F, Thaler S, Bolz S, Fries J, Kalbacher H, Mankowska A, Zurakowski D, Zrenner E, Rejdak R (2007) Alterations of amino acids and glutamate transport in the DBA/2J mouse retina; possible clues to degeneration. Graefes Arch Clin Exp Ophthalmol 245:1157–1168PubMedCrossRef Schuettauf F, Thaler S, Bolz S, Fries J, Kalbacher H, Mankowska A, Zurakowski D, Zrenner E, Rejdak R (2007) Alterations of amino acids and glutamate transport in the DBA/2J mouse retina; possible clues to degeneration. Graefes Arch Clin Exp Ophthalmol 245:1157–1168PubMedCrossRef
Zurück zum Zitat Shareef SR, Garcia-Valenzuela E, Salierno A, Walsh J, Sharma SC (1995) Chronic ocular hypertension following episcleral venous occlusion in rats. Exp Eye Res 61:379–382PubMedCrossRef Shareef SR, Garcia-Valenzuela E, Salierno A, Walsh J, Sharma SC (1995) Chronic ocular hypertension following episcleral venous occlusion in rats. Exp Eye Res 61:379–382PubMedCrossRef
Zurück zum Zitat Storck T, Schulte S, Hofmann K, Stoffel W (1992) Structure, expression, and functional analysis of a Na+-dependent glutamate/aspartate transporter from rat brain. Proc Natl Acad Sci USA 89:10955–10959PubMedCrossRef Storck T, Schulte S, Hofmann K, Stoffel W (1992) Structure, expression, and functional analysis of a Na+-dependent glutamate/aspartate transporter from rat brain. Proc Natl Acad Sci USA 89:10955–10959PubMedCrossRef
Zurück zum Zitat Sullivan RK, Woldemussie E, Macnab L, Ruiz G, Pow DV (2006) Evoked expression of the glutamate transporter GLT-1c in retinal ganglion cells in human glaucoma and in a rat model. Invest Ophthalmol Vis Sci 47:3853–3859PubMedCrossRef Sullivan RK, Woldemussie E, Macnab L, Ruiz G, Pow DV (2006) Evoked expression of the glutamate transporter GLT-1c in retinal ganglion cells in human glaucoma and in a rat model. Invest Ophthalmol Vis Sci 47:3853–3859PubMedCrossRef
Zurück zum Zitat Vorwerk CK, Naskar R, Schuettauf F, Quinto K, Zurakowski D, Gochenauer G, Robinson MB, Mackler SA, Dreyer EB (2000) Depression of retinal glutamate transporter function leads to elevated intravitreal glutamate levels and ganglion cell death. Invest Ophthalmol Vis Sci 41:3615–3621PubMed Vorwerk CK, Naskar R, Schuettauf F, Quinto K, Zurakowski D, Gochenauer G, Robinson MB, Mackler SA, Dreyer EB (2000) Depression of retinal glutamate transporter function leads to elevated intravitreal glutamate levels and ganglion cell death. Invest Ophthalmol Vis Sci 41:3615–3621PubMed
Zurück zum Zitat Wang Q, Zeng YJ, Huo P, Hu JL, Zhang JH (2003) A specialized plug-in software module for computer-aided quantitative measurement of medical images. Med Eng Phys 25:887–892PubMedCrossRef Wang Q, Zeng YJ, Huo P, Hu JL, Zhang JH (2003) A specialized plug-in software module for computer-aided quantitative measurement of medical images. Med Eng Phys 25:887–892PubMedCrossRef
Zurück zum Zitat Williams SM, Sullivan RKP, Scott HL, Finkelstein DI, Colditz PB, Lingwood BE, Dodd PR, Pow DV (2005) Glial glutamate transporter expression patterns in brains from multiple mammalian species. Glia 49:520–541PubMedCrossRef Williams SM, Sullivan RKP, Scott HL, Finkelstein DI, Colditz PB, Lingwood BE, Dodd PR, Pow DV (2005) Glial glutamate transporter expression patterns in brains from multiple mammalian species. Glia 49:520–541PubMedCrossRef
Zurück zum Zitat Wirt H, Draeger J, Rumberger E, Deutsch C, Dauper J (1989) Comparative studies of the calibration of new electronic automatic tonometers. Fortschr Ophthalmol 86:403–406PubMed Wirt H, Draeger J, Rumberger E, Deutsch C, Dauper J (1989) Comparative studies of the calibration of new electronic automatic tonometers. Fortschr Ophthalmol 86:403–406PubMed
Zurück zum Zitat Woldemussie E, Wijono M, Ruiz G (2004) Muller cell response to laser-induced increase in intraocular pressure in rats. Glia 47:109–119PubMedCrossRef Woldemussie E, Wijono M, Ruiz G (2004) Muller cell response to laser-induced increase in intraocular pressure in rats. Glia 47:109–119PubMedCrossRef
Metadaten
Titel
Differential expression of two glutamate transporters, GLAST and GLT-1, in an experimental rat model of glaucoma
verfasst von
Chan Kee Park
Jiook Cha
Soo Chul Park
Phil Young Lee
Jie Hyun Kim
Hwa Sun Kim
Shin Ae Kim
In-Beom Kim
Myung-Hoon Chun
Publikationsdatum
01.08.2009
Verlag
Springer-Verlag
Erschienen in
Experimental Brain Research / Ausgabe 2/2009
Print ISSN: 0014-4819
Elektronische ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-009-1896-0

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