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HORT640 - Metabolic Plant Physiology
References, succin and semialdehyde
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Baril C, Richaud C, Fournie E, Baranton G, Saint Girons I. Cloning of dapD, aroD and asd of Leptospira interrogans serovar icterohaemorrhagiae, and nucleotide sequence of the asd gene. J. Gen. Microbiol. 138: 47-53 (1992).
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Blickling S, Renner C, Laber B, Pohlenz HD, Holak TA, Huber R. Reaction mechanism of Escherichia coli dihydrodipicolinate synthase investigated by X-ray crystallography and NMR spectroscopy. Biochemistry 36: 24-33 (1997).
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Busch K, Piehler J, Fromm H. Plant succinic semialdehyde dehydrogenase: dissection of nucleotide binding by surface plasmon resonance and fluorescence spectroscopy. Biochemistry 39: 10110-10117 (2000).
Busch KB, Fromm H. Plant succinic semialdehyde dehydrogenase. Cloning, purification, localization in mitochondria, and regulation by adenine nucleotides. Plant Physiol. 121: 589-598 (1999).
Canadas S, Gonzalez MP, Ventura ME. Protection by GABA and succinic semialdehyde of seed germination and some enzymatic activities against high concentration of hydroxylamine. Rev. Esp. Fisiol. 32: 91-94 (1976).
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Chambliss KL, Caudle DL, Hinson DD, Moomaw CR, Slaughter CA, Jakobs C, Gibson KM. Molecular cloning of the mature NAD(+)-dependent succinic semialdehyde dehydrogenase from rat and human. cDNA isolation, evolutionary homology, and tissue expression. J. Biol. Chem. 270: 461-467 (1995).
Chambliss KL, Gibson KM. Succinic semialdehyde dehydrogenase from mammalian brain: subunit analysis using polyclonal antiserum. Int. J. Biochem. 24: 1493-1499 (1992).
Chen W, Wright L, Li S, Cosloy SD, Russell CS. Expression of glutamyl-tRNA reductase in Escherichia coli. Biochim. Biophys. Acta 1309: 109-121 (1996).
Cho SW, Hong JW, Lee SJ, Choi SY. Inactivation of an NADPH-dependent succinic semialdehyde reductase by o-phthalaldehyde. FEBS Lett. 382: 179-182 (1996).
Choi SY, Churchich JE. Biosynthesis of 4-aminobutyrate aminotransferase. Eur. J. Biochem. 161: 289-294 (1986).
Clark SM, Di Leo R, Dhanoa PK, Van Cauwenberghe OR, Mullen RT, Shelp BJ. Biochemical characterization, mitochondrial localization, expression, and potential functions for an Arabidopsis gamma-aminobutyrate transaminase that utilizes both pyruvate and glyoxylate. J. Exp. Bot. 60: 1743-1757 (2009).
Clark SM, Di Leo R, Van Cauwenberghe OR, Mullen RT, Shelp BJ. Subcellular localization and expression of multiple tomato gamma-aminobutyrate transaminases that utilize both pyruvate and glyoxylate. J. Exp. Bot. 60: 3255-3267 (2009).
Coleman ST, Fang TK, Rovinsky SA, Turano FJ, Moye-Rowley WS. Expression of a glutamate decarboxylase homologue is required for normal oxidative stress tolerance in Saccharomyces cerevisiae. J. Biol. Chem. 276: 244-250 (2001).
Contestabile R, Jenn T, Akhtar M, Gani D, John RA. Reactions of glutamate 1-semialdehyde aminomutase with R- and S-enantiomers of a novel, mechanism-based inhibitor, 2,3-diaminopropyl sulfate. Biochemistry 39: 3091-3096 (2000).
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Dockham PA, Lee MO, Sladek NE. Identification of human liver aldehyde dehydrogenases that catalyze the oxidation of aldophosphamide and retinaldehyde. Biochem. Pharmacol. 43: 2453-2469 (1992).
Donnelly MI, Cooper RA. Succinic semialdehyde dehydrogenases of Escherichia coli: their role in the degradation of p-hydroxyphenylacetate and gamma-aminobutyrate. Eur. J. Biochem. 113: 555-561 (1981).
Donnelly MI, Cooper RA. Two succinic semialdehyde dehydrogenases are induced when Escherichia coli K-12 Is grown on gamma-aminobutyrate. J. Bacteriol. 145: 1425-1427 (1981).
Erecinska M, Nelson D, Daikhin Y, Yudkoff M. Regulation of GABA level in rat brain synaptosomes: fluxes through enzymes of the GABA shunt and effects of glutamate, calcium, and ketone bodies. J. Neurochem. 67: 2325-2334 (1996).
Fait A, Yellin A, Fromm H. GABA shunt deficiencies and accumulation of reactive oxygen intermediates: insight from Arabidopsis mutants. FEBS Lett. 579: 415-420 (2005).
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Gibson KM, Hoffmann GF, Hodson AK, Bottiglieri T, Jakobs C. 4-Hydroxybutyric acid and the clinical phenotype of succinic semialdehyde dehydrogenase deficiency, an inborn error of GABA metabolism. Neuropediatrics 29: 14-22 (1998).
Gibson KM, Schor DS, Gupta M, Guerand WS, Senephansiri H, Burlingame TG, Bartels H, Hogema BM, Bottiglieri T, Froestl W, Snead OC, Grompe M, Jakobs C. Focal neurometabolic alterations in mice deficient for succinate semialdehyde dehydrogenase. J. Neurochem. 81: 71-79 (2002).
Gibson KM, Sweetman L, Nyhan WL, Jakobs C, Rating D, Siemes H, Hanefeld F. Succinic semialdehyde dehydrogenase deficiency: an inborn error of gamma-aminobutyric acid metabolism. Clin. Chim. Acta 133: 33-42 (1983).
Gibson KM, Sweetman L, Nyhan WL, Lenoir G, Divry P. Defective succinic semialdehyde dehydrogenase activity in 4-hydroxybutyric aciduria. Eur. J. Pediatr. 142: 257-259 (1984).
Gluck MR, Thomas RG, Davis KL, Haroutunian V. Implications for altered glutamate and GABA metabolism in the dorsolateral prefrontal cortex of aged schizophrenic patients. Am. J. Psychiat. 159: 1165-1173 (2002).
Green LS, Li Y, Emerich DW, Bergersen FJ, Day DA. Catabolism of alpha-ketoglutarate by a sucA mutant of Bradyrhizobium japonicum: evidence for an alternative tricarboxylic acid cycle. J. Bacteriol. 182: 2838-2844 (2000).
Gupta M, Greven R, Jansen EEW, Jakobs C, Hogema BM, Froestl W, Snead OC, Bartels H, Grompe M, Gibson KM. Therapeutic intervention in mice deficient for succinate semialdehyde dehydrogenase (gamma-hydroxybutyric aciduria). J. Pharmacol. Exp. Ther. 302: 180-187 (2002).
Hearl WG, Churchich JE. A mitochondrial NADP+-dependent reductase related to the 4-aminobutyrate shunt. Purification, characterization, and mechanism. J. Biol. Chem. 260: 16361-16366 (1985).
Hearl WG, Churchich JE. Interactions between 4-aminobutyrate aminotransferase and succinic semialdehyde dehydrogenase, two mitochondrial enzymes. J. Biol. Chem. 259: 11459-11463 (1984).
Hoffmann GF, Gibson KM, Trefz FK, Nyhan WL, Bremer HJ, Rating D. Neurological manifestations of organic acid disorders. Eur. J. Pediatr. 153: S94-S100 (1994).
Hong JW, Cho SW, Yoo JS, Yoo BK, Lee KS, Choi SY. Modulation of the catalytic activity of brain succinic semialdehyde reductase by reaction with pyridoxal 5'-phosphate. Eur. J. Biochem. 247: 274-279 (1997).
Hopkins MH, Bichler KA, Su T, Chamberlain CL, Silverman RB. Inactivation of gamma-aminobutyric acid aminotransferase by various amine buffers. J. Enzyme Inhib. 6: 195-199 (1992).
Jakobs C, Jaeken J, Gibson KM. Inherited disorders of GABA metabolism. J. Inherit. Metab. Dis. 16: 704-715 (1993).
Kim YT, Song YH, Churchich JE. Recombinant brain 4-aminobutyrate aminotransferases overexpression, purification, and identification of Lys-330 at the active site. Biochim. Biophys. Acta 1337: 248-256 (1997).
Kumar S, Punekar NS. The metabolism of 4-aminobutyrate (GABA) in fungi. Mycol. Res. 101: 403-409 (1997).
Kumar S, Punekar NS. Inhibition of succinic semialdehyde dehydrogenase by N-formylglycine. J. Enzyme Inhib. 13: 369-376 (1998).
Ledwidge R, Blanchard JS. The dual biosynthetic capability of N-acetylornithine aminotransferase in arginine and lysine biosynthesis. Biochemistry 38: 3019-3024 (1999).
Lee BR, Kim DW, Hong JW, Eum WS, Choi HS, Choi SH, Kim SY, An JJ, Ahn JY, Kwon OS, Kang TC, Won MH, Cho SW, Lee KS, Park J, Choi SY. Brain succinic semialdehyde dehydrogenase. Reactions of sulfhydryl residues connected with catalytic activity. Eur. J. Biochem. 271: 4903-4908 (2004).
Ling M, Allen SW, Wood JM. Sequence analysis identifies the proline dehydrogenase and delta 1-pyrroline-5-carboxylate dehydrogenase domains of the multifunctional Escherichia coli PutA protein. J. Mol. Biol. 243: 950-956 (1994).
Lutke-Eversloh T, Steinbuchel A. Biochemical and molecular characterization of a succinate semialdehyde dehydrogenase involved in the catabolism of 4-hydroxybutyric acid in Ralstonia eutropha. FEMS Microbiol. Lett. 181: 63-71 (1999).
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Medina-Kauwe LK, Tobin AJ, Meirleir LD, Jaeken J, Jakobs C, Nyhan WL, Gibson KM. 4-Aminobutyrate aminotransferase (GABA-transaminase) deficiency. J. Inherit. Metab. Dis. 22: 414-427 (1999).
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Metzer E, Levitz R, Halpern YS. Isolation and properties of Escherichia coli K-12 mutants impaired in the utilization of gamma-aminobutyrate. J. Bacteriol. 137: 1111-1118 (1979).
Mixson AJ, Phang JM. Structural analogues of pyrroline 5-carboxylate specifically inhibit its uptake into cells. J. Membr. Biol. 121: 269-277 (1991).
Murphy TC, Amarnath V, Gibson KM, Picklo MJ Sr. Oxidation of 4-hydroxy-2-nonenal by succinic semialdehyde dehydrogenase (ALDH5A). J. Neurochem. 86: 298-305 (2003).
Niegemann E, Schulz A, Bartsch K. Molecular organization of the Escherichia coli gab cluster: nucleotide sequence of the structural genes gabD and gabP and expression of the GABA permease gene. Arch. Microbiol. 160: 454-460 (1993).
Park J, Osei YD, Churchich JE. Isolation and characterization of recombinant mitochondrial 4-aminobutyrate aminotransferase. J. Biol. Chem. 268: 7636-7699 (1993).
Pitson SM, Mendz GL, Srinivasan S, Hazell SL. The tricarboxylic acid cycle of Helicobacter pylori. Eur. J. Biochem. 260: 258-267 (1999).
Ramos F, el Guezzar M, Grenson M, Wiame JM. Mutations affecting the enzymes involved in the utilization of 4-aminobutyric acid as nitrogen source by the yeast Saccharomyces cerevisiae. Eur. J. Biochem. 149: 401-404 (1985).
Ryzlak MT, Pietruszko R. Human brain "high Km" aldehyde dehydrogenase: purification, characterization, and identification as NAD+ -dependent succinic semialdehyde dehydrogenase. Arch. Biochem. Biophys. 266: 386-396 (1988).
Sanchez M, Alvarez MA, Balana R, Garrido-Pertierra A. Properties and functions of two succinic-semialdehyde dehydrogenases from Pseudomonas putida. Biochim. Biophys. Acta 953: 249-257 (1988).
Sanchez M, Fernandez J, Martin M, Gibello A, Garrido-Pertierra A. Purification and properties of two succinic semialdehyde dehydrogenases from Klebsiella pneumoniae. Biochim. Biophys. Acta 990: 225-231 (1989).
Satya Narayan V, Nair PM. Potato tuber succinate semialdehyde dehydrogenase: purification and characterization. Arch. Biochem. Biophys. 275: 469-477 (1989).
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Number of references = 89
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