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Kinetic, ESR, and trapping evidence for in vivo binding of Mn(II) to glutamine synthetase in brain cells

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Abstract

Mn(II) has been proposed as a potential modulator of various important CNS enzymes, particularly glutamine synthetase, which is compartmentalized in the cytoplasm of glia. Previous studies demonstrated that total glial Mn(II) was 50–57 μM, of which 30–40% occurs in the cytoplasm. In the present study, electron spin resonance (ESR) was used to determine that the concentration of free cytoplasmic Mn(II) in cultured chick glial cells is 0.8 (±0.2) μM, very near Kd for the GS-Mn(II) complex. No free Mn(II) could be detected in glial mitochondria. Association of Mn(II) with brain glutamine synthetase (GS) was assessed under in vivo conditions in the presence of millimolar Mg(II) by trapping bound54Mn(II) ions in the active site with irreversible inhibitors, namely methionine-sulfoximine (MSOX) or specific analogues thereof plus ATP. Ovine brain tissue was lysed directly into buffer containing Mn(II), 3 mM Mg(II), 1 mM MSOX, 1 mM ATP, 200 mM KCl, and 20 mM NaCl. Alternatively, primary cultures of chick glial cells were permeabilized into these inactivation mixtures. α-Methyl-d,l-prothionine-S,R-sulfoximine was used to specifically inhibit the mechanistically-related enzyme γ-glutamyl-cysteine synthetase prior to specific inactivation of GS by α-ethyl-d,l-methionine-S,R-sulfoximine. Even inthe presence of 2–3 mM Mg(II), with only 5–10 μM Mn(II) present, approximately 20–30% of GS subunits were trapped with bound Mn(II). These results indicate that brain GS exhibits a high degree of specificity for binding Mn(II) over Mg(II) and that Mn(II) binds to GS to a significant extent under in vivo conditions.

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References

  1. Norenberg, M., and Martinez-Hernandez, A. 1979. Fine structural localization of glutamine synthetase in astrocytes of rat brain, Brain Res. 161:303–310.

    Google Scholar 

  2. Walker, J. E. 1983. Glutamate, GABA, and CNS disease. Neurochem. Res. 8:521–548.

    Google Scholar 

  3. Meister, A. 1974. Glutamine synthetase of mammals, in The Enzymes, 3rd Edn. (Boyer, P.D., ed.) Vol. X, pp. 699–754, Academic Press, New York.

    Google Scholar 

  4. Monder, C. 1965. Metal ion interactions and glutamine synthetase activity: effect of pH on biosynthetic and transferase activity using Mg, Mn, Co, and Fe (II) ions. Biochemistry 4:2677–2686.

    Google Scholar 

  5. Schramm, V. L. 1982. Metabolic regulation: could Mn(II) be involved? Trends Biochem. Sci. 7:369–371.

    Google Scholar 

  6. Wedler, F. C., and Denman, R. B. 1984. Glutamine synthetase: the major Mn(II) enzyme in mammalian brain, in Curr. Top. Cell Regul., Vol. 24 (DeLuca, M., Lardy, H., and Cross, R.L., eds.) pp. 153–169, Academic Press, New York.

    Google Scholar 

  7. Tholey, G., Ledig, M., Mandel, P., Sargentini, L., Frivold, A. H., Leroy, M., Grippo, A. A., and Welder, F. C. 1987. Concentration of physiologically important metal ions in glial cells cultured from chick cerebral cortex. Neurochem. Res. 12:45–50.

    Google Scholar 

  8. Wedler, F. C., Ley, B. W., and Grippo, A. A. 1989. Manganese(II) dynamics and distribution in glial cells cultured from chick cerebral cortex. Neurochem. Res. 14:1129–1135.

    Google Scholar 

  9. Maurizi, M. R., Pinkofsky, H. B. and Ginsburg, A. 1987. ADP, chloride ion, and metal ion binding to bovine brain glutamine synthetase. Biochemistry 26:5023–5031.

    Google Scholar 

  10. Maurizi, M. R., Pinkofsky, H. B., McFarland, P. J., and Ginsburg, A. 1986. Mg2+ is bound to glutamine synthetase extracted from bovine or ovine brain in the presence ofl-methionine-S-sulfoximine phosphate. Arch. Biochem. Biophys. 246:494–500.

    Google Scholar 

  11. Ronzio, R. A., Rowe, W. B., Wilk, S., and Meister, A. 1969. Preparation and studies on the characterization of sheep brain glutamine synthetase. Biochemistry 8:2670–2674.

    Google Scholar 

  12. Bottenstein, J. E., and Sato, G. H. 1979. Growth of a neuroblastoma cell line in serum-free supplemented medium. Proc. Nat. Acad. Sci., USA 76:514–517.

    Google Scholar 

  13. Sugiyama, Y., and Wedler, F. C. 1983. Quantitative separation and analysis of diasteriomers ofl-methionine-S,R-sulfoximine via cyclic N-blocked derivatives. Tetr. Lett. 24:1471–1474.

    Google Scholar 

  14. Griffith, O. W., and Meister, A. 1978. Differential inhibition of glutamine and γ-glutamylcysteine synthetases by α-alkyl analogs of methionine sulfoximine that induce convulsions. J. Biol. Chem. 253:2333–2338.

    Google Scholar 

  15. Griffith, O. W., Anderson, M. E., and Meister, A. 1979. Inhibition of glutathione biosynthesis by prothionine sulfoximine (S-N-propyl-homocysteine sulfoximine), a selective inhibitor of γ-glutamylcysteine synthetase. J. Biol. Chem. 254:1205–1210.

    Google Scholar 

  16. Ash, D. E.,1986. Methods of Mn(II) determination, Pages 327–356,in (Schramm, V. L., and Wedler, F. C., eds.) Manganese in Metabolism and Enzyme Function, Academic Press, New York.

    Google Scholar 

  17. Ash, D. E., and Schramm, V. L. 1982. Determination of free and bound manganese(II) in hepatocytes from fed and fasted rats. J. Biol. Chem. 257:9261–9264.

    Google Scholar 

  18. Lowry, O. H., Rosenbrough, N. J., Farr, A. L., and Randall, R. J. 1951. Protein measurements with the Folin phenol reagent, J. Biol. Chem., 193:265–275.

    Google Scholar 

  19. Goldschmidt, R. C., and Kimelberg, H. K. 1989. Protein analysis of mammalian cells in monolayer culture using the bicinchononic assay. Anal. Biochem. 176:41–45.

    Google Scholar 

  20. Schramm, V. L., and Brandt, M. 1986. The manganese(II) ecomy of rat hepatocytes. Fed. Proc., 45:2817–2820.

    Google Scholar 

  21. Wedler, F. C., Vichnin, M. C., Ley, B. W., Tholey, G., Ledig, M., and Copin, J.-C. 1994. Effects of Ca(II) ions on Mn(II) dynamics in chick glia and rat astrocytes: potential regulation of glutamine synthetase. Neurochem. Res. 19:145–151.

    Google Scholar 

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Wedler, F.C., Ley, B.W. Kinetic, ESR, and trapping evidence for in vivo binding of Mn(II) to glutamine synthetase in brain cells. Neurochem Res 19, 139–144 (1994). https://doi.org/10.1007/BF00966808

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