The Metabolism of Glutamate in Homogenates and Slices of Brain Cortex.
نویسندگان
چکیده
Ashwell, G. (1957). In Method8 in Enzymology, vol. 3, p. 90. Ed. by Colowick, S. P. & Kaplan, N. 0. New York: Academic Press Inc. Borek, E., Rockenbach, J. & Ryan, A. (1956). J. Bad. 71, 318. Borek, E. & Ryan, A. (1958). J. Bad. 75, 72. Borek, E., Ryan, A. & Rockenbach, J. (1955). J. Bad. 69, 460. Britten, R. J. & Roberts, R. B. (1960). Science, 131, 32. Burton, K. (1956). Biochem. J. 62, 315. Dagley, S. & Sykes, J. (1959). Nature, Lond., 183, 1608. Dagley, S. & Sykes, J. (1960). Biochem. J. 74, Ilp. Dagley, S., Turnock, G. & Wild, D. G. (1962a). Biochem. J. 83, 3P. Dagley, S., White, A. E., Wild, D. G. & Sykes, J. (1962b). Nature, Lond., 194, 4823. Fleissner, E. & Borek, E. (1962). Proc. nat. Acad. Sci., Wash., 48, 1199. Goldstein, A., Goldstein, D. B., Brown, B. J. & Chou, S. (1959). Biochim. biophy8. Acta, 36, 163. Gros, F., Hiatt, H., Gilbert, W., Kurland, C. G., Risebrough, R. W. & Watson, J. D. (1961). Nature, Lond., 190, 581. Hahn, F. E., Schaechter, M., Cezlowski, W. S., Hopps, H. E. & Ciak, S. (1957). Biochim. biophy8. Acta, 26, 469. Hughes, D. E. (1951). Brit. J. exp. Path. 32, 97. Jacob, F. & Monod, J. (1961). J. molec. Biol. 3, 318. Kurland, C. G. (1960). J. molec. Biol. 2, 83. Kurland, C. G. & Maal0e, 0. (1962). J. molec. Biol. 4, 193. Kurland, C. G., Nomura, M. & Watson, J. D. (1962). J. molec. Biol. 4, 388. Lowry, 0. H., Rosebrough, N. J., Farr, A. L. & Randall R. J. (1951). J. biol. Chem. 193, 265. McCarthy, B. J., Britten, R. J. & Roberts, R. B. (1962). Biophy8. J. 2, 57. McQuillen, K. (1961). In Protein Bio8ynthe8i8, p. 263. Ed. by Harris, R. J. C. London: Academic Press (Inc.) Ltd. Mandel, L. R. & Borek, E. (1961a). Biochem. biophy8. Re8. Commun. 4, 14. Mandel, L. R. & Borek, E. (1961 b). Biochem. biophy8. Re8. Commun. 6, 138. Mandelstam, J. (1960). Bact. Rev. 24, 289. Midgley, J. E. M. & McCarthy, B. J. (1962). Biochim. biophys. Acta, 61, 696. Nakada, D. & Smith, I. (1962). Biochim. biophys. Ada, 61, 414. Neidhardt, F. C. & Gros, F. (1957). Biochim. biophy8. Acta, 25, 513. Nomura, M. & Watson, J. D. (1959). J. molec. Biol. 1, 204. Pardee, A. B. & Prestridge, L. S. (1956). J. Bact. 71, 677. Petermann, M. L. & Pavlovec, A. (1961). J. biol. Chem. 236, 3235. Roberts, R. B., Abelson, P. H., Cowie, D. B., Bolton, E. T & Britten, R. J. (1955). Publ. Carneg. Instn, no. 607: Studie8 in Biosynthesis in Escherichia coli. Roberts, R. B., Britten, R. J. & Bolton, E. T. (1958). Microsomal Particles and Protein Synthesis, p. 84. Ed. by Roberts, R. B. Washington: Washington Academy of Sciences. Schachman, H. K., Pardee, A. B. & Stanier, R. Y. (1952). Arch. Biochem. Biophy8. 38, 245. Schaechter, M. (1961). Cold Spr. Harb. Symp. quant. Biot. 26, 53. Schneider, W. C. (1957). In Methods in Enzymology, vol. 3, p. 680. Ed. by Colowick, S. P. & Kaplan, N. 0. New York: Academic Press Inc. Siegel, A., Singer, S. J. & Wildman, S. G. (1952). Arch. Biochem. Biophy8. 41, 278. Sols, A. (1947). Nature, Lond., 160, 89. Spahr, P. F. (1962). J. molec. Biol. 4, 395. Spahr, P. F. & Tissieres, A. (1959). J. motec. Biol. 1, 237. Stent, G. S. & Brenner, S. (1961). Proc. nat. Acad. Sci., Wash., 47, 2005. Stickland, L. H. (1951). J. gen. Microbiol. 5, 698. Takeda, Y., Hayashi, S.-I., Nakagawa, H. & Suzuki, F. (1960). J. Biochem., Tokyo, 48, 169. Tissieres, A., Watson, J. D., Schlessinger, D. & Hollingworth, B. R. (1959). J. molec. Biol. 1, 221. Turnock, G.,V White, A. E. & Wild, D. G. (1962). Biochem. J. 84, 107P. Yarmolinski, M. D. & de la Haba, G. L. (1959). Proc. nat. Acad. Sci., Wash., 44, 189.
منابع مشابه
(S)- 3,5-Dihydroxyphenylglycine )an agonist for group I metabotropic glutamate receptors( induced synaptic potentiation at excitatory synapses on fast spiking GABAergic cells in visual cortex
Introduction: (S)- 3,5-Dihydroxyphenylglycine (DHPG) is an agonist for group I metabotropic glutamate receptors. DHPG-induced synaptic depression of excitatory synapses on hippocampal pyramidal neurons is well known model for synaptic plasticity studies. The aim of the present study was to examine the effects of DHPG superfusion on excitatory synapses on pyramidal and fast-spiking GABAergic cel...
متن کاملEffect of acute exposure to ethanol on distribution of NR1 subunit of NMDA receptor of glutamate in cerebral cortex of chick embryo
Introduction: There is considerable evidence that glutamate-mediated excitatory neurotransmission plays an important role in mediating the behavioral actions of acutely administered ethanol. The aim of the present study was to investigate the effect of acute ethanol exposure on NR1 subunit of NMDA (n-methyl-d-aspartate) receptor distribution in the cerebral cortex of chick embryo on the 10th...
متن کاملنقش مهار منتشر شونده قشری بر القای تشنج در هیپوکمپ موش صحرایی نر
Background & Aims : Spreading depression is a pathophysiological phenomenon that is initiated by a self-propagating depolarization wave with a short-term excitability and is followed immediately by an inhibitory phase and then continues with a long-term secondary excitability. Spreading depression has a critical role in many disorders such as migraine and seizures . The purpose of this stud...
متن کاملNoradrenergic System Increases Miniature Excitatory Synaptic Currents in the Barrel Cortex
Introduction: Neurons in layer II and III of the somatosensory cortex in rats show high frequency (33 ± 13 Hz) of miniature excitatory postsynaptic currents (mEPSCs) that their rates and amplitudes are independent of sodium channels. There are some changes in these currents in neurodegenerative and psychological disorders. Regarding to well known roles of the neuromodulatory brain systems in...
متن کاملNatural products as safeguards against monosodium glutamate-induced toxicity
Monosodium glutamate is a sodium salt of a nonessential amino acid, L-glutamic acid, which is widely used in food industry. Glutamate plays an important role in principal brain functions including formation and stabilization of synapses, memory, cognition, learning, as well as cellular metabolism. However, ingestion of foodstuffs rich in monosodium glutamate can result in the outbreak of severa...
متن کاملEffects of visual deprivation on epileptic activity in mature rat visual cortex
Effects of visual deprivation on the induction of epileptiform activity were studied in layer II/III of mature rat primary visual cortex. Field potentials were evoked by stimulation of layer IV in slices from control and dark-reared (OR) rats. Picrotoxin (PTX)-induced epileptic activity was characterized by spontaneous and evoked epileptic field potentials (EFPs). The results showed that OR s...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
- The Biochemical journal
دوره 88 شماره
صفحات -
تاریخ انتشار 1963