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154 results on '"Phosphate Acetyltransferase metabolism"'

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51. Systems biology approach reveals that overflow metabolism of acetate in Escherichia coli is triggered by carbon catabolite repression of acetyl-CoA synthetase.

52. Characterization of Escherichia coli EutD: a phosphotransacetylase of the ethanolamine operon.

53. Role of acetyl-phosphate in activation of the Rrp2-RpoN-RpoS pathway in Borrelia burgdorferi.

54. Functional dissection of Escherichia coli phosphotransacetylase structural domains and analysis of key compounds involved in activity regulation.

55. Isolation and properties of malic enzyme and its gene in Rhodopseudomonas palustris No. 7.

56. An insight into the role of phosphotransacetylase (pta) and the acetate/acetyl-CoA node in Escherichia coli.

57. Mechanism of thiol-supported arsenate reduction mediated by phosphorolytic-arsenolytic enzymes: II. Enzymatic formation of arsenylated products susceptible for reduction to arsenite by thiols.

58. Mechanism of thiol-supported arsenate reduction mediated by phosphorolytic-arsenolytic enzymes: I. The role of arsenolysis.

59. Pathway identification combining metabolic flux and functional genomics analyses: acetate and propionate activation by Corynebacterium glutamicum.

60. Uropathogenic Escherichia coli CFT073 is adapted to acetatogenic growth but does not require acetate during murine urinary tract infection.

61. The Pta-AckA pathway controlling acetyl phosphate levels and the phosphorylation state of the DegU orphan response regulator both play a role in regulating Listeria monocytogenes motility and chemotaxis.

62. [Breeding of Actinobacillus succiniogenes mutants with improved succinate production based on metabolic flux analysis].

63. Control of acetate production rate in Escherichia coli by regulating expression of single-copy pta using lacI(Q) in multicopy plasmid.

64. Ethanol catabolism in Corynebacterium glutamicum.

65. Expression of two recombinant chloramphenicol acetyltransferase variants in highly reduced genome Escherichia coli strains.

66. Analyses of the acetate-producing pathways in Corynebacterium glutamicum under oxygen-deprived conditions.

67. Two-component signal transduction in Synechocystis sp. PCC 6803 under phosphate limitation: role of acetyl phosphate.

68. In vivo and in vitro analyses of single-amino acid variants of the Salmonella enterica phosphotransacetylase enzyme provide insights into the function of its N-terminal domain.

69. Requirement for the acetyl phosphate pathway in Escherichia coli ATP-dependent proteolysis.

70. Construction and characterization of ack deleted mutant of Clostridium tyrobutyricum for enhanced butyric acid and hydrogen production.

71. Acetate kinase: not just a bacterial enzyme.

72. Control of carbon flux through enzymes of central and intermediary metabolism during growth of Escherichia coli on acetate.

73. Mutation of phosphotransacetylase but not isocitrate lyase reduces the virulence of Salmonella enterica serovar Typhimurium in mice.

74. Steady-state kinetic analysis of phosphotransacetylase from Methanosarcina thermophila.

75. Structural and functional studies suggest a catalytic mechanism for the phosphotransacetylase from Methanosarcina thermophila.

76. Metabolism of taurine in microorganisms: a primer in molecular biodiversity?

77. Crystal structures of a phosphotransacetylase from Bacillus subtilis and its complex with acetyl phosphate.

78. Minimal functions and physiological conditions required for growth of salmonella enterica on ethanolamine in the absence of the metabolosome.

79. Acetate excretion during growth of Salmonella enterica on ethanolamine requires phosphotransacetylase (EutD) activity, and acetate recapture requires acetyl-CoA synthetase (Acs) and phosphotransacetylase (Pta) activities.

80. Characterization of the acetate-producing pathways in Escherichia coli.

81. The amrG1 gene is involved in the activation of acetate in Corynebacterium glutamicum.

82. Long-term anaerobic survival of the opportunistic pathogen Pseudomonas aeruginosa via pyruvate fermentation.

83. Effect of pH on metabolic pathway shift in fermentation of xylose by Clostridium tyrobutyricum.

84. Metabolic engineering of a phosphoketolase pathway for pentose catabolism in Saccharomyces cerevisiae.

85. Enzymes and genes of taurine and isethionate dissimilation in Paracoccus denitrificans.

86. Crystal structure of phosphotransacetylase from the methanogenic archaeon Methanosarcina thermophila.

87. Restricted distribution of the butyrate kinase pathway among butyrate-producing bacteria from the human colon.

88. The eutD gene of Salmonella enterica encodes a protein with phosphotransacetylase enzyme activity.

89. Production of isoamyl acetate in ackA-pta and/or ldh mutants of Escherichia coli with overexpression of yeast ATF2.

90. Mitochondrial activities in human cultured skin fibroblasts contaminated by Mycoplasma hyorhinis.

91. Influence of residual ethanol concentration on the growth of Gluconacetobacter xylinus I 2281.

92. Evidence of an association between poly(3-hydroxybutyrate) accumulation and phosphotransbutyrylase expression in Bacillus megaterium.

93. Propionyl coenzyme A is a common intermediate in the 1,2-propanediol and propionate catabolic pathways needed for expression of the prpBCDE operon during growth of Salmonella enterica on 1,2-propanediol.

94. Biosynthesis of poly (3-mercaptopropionate) and poly (3-mercaptopropionate-co-3-hydroxybutyrate) with recombinant Escherichia coli.

95. Short-chain fatty acid activation by acyl-coenzyme A synthetases requires SIR2 protein function in Salmonella enterica and Saccharomyces cerevisiae.

96. An analysis of multifactorial influences on the transcriptional control of ompF and ompC porin expression under nutrient limitation.

97. Role of arginines in coenzyme A binding and catalysis by the phosphotransacetylase from Methanosarcina thermophila.

98. An NMR and enzyme study of the carbon metabolism of Neisseria meningitidis.

99. Phosphotransbutyrylase expression in Bacillus megaterium.

100. Involvement of acetyl phosphate in the in vivo activation of the response regulator ComA in Bacillus subtilis.

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