Quantification and mass isotopomer profiling of α-keto acids in central carbon metabolism.
暂无分享,去创建一个
[1] C. Borchers,et al. Metabolomic analysis of key central carbon metabolism carboxylic acids as their 3‐nitrophenylhydrazones by UPLC/ESI‐MS , 2013, Electrophoresis.
[2] U. Sauer,et al. Nontargeted profiling of coenzyme A thioesters in biological samples by tandem mass spectrometry. , 2013, Analytical chemistry.
[3] T. Hwa,et al. Coordination of bacterial proteome with metabolism by cyclic AMP signalling , 2013, Nature.
[4] U. Sauer,et al. Systematic identification of allosteric protein-metabolite interactions that control enzyme activity in vivo , 2013, Nature Biotechnology.
[5] N. Kishikawa,et al. Determination of glyoxylic acid in urine by liquid chromatography with fluorescence detection, using a novel derivatization procedure based on the Petasis reaction , 2012, Analytical and Bioanalytical Chemistry.
[6] Wolfgang Wiechert,et al. Collisional fragmentation of central carbon metabolites in LC‐MS/MS increases precision of 13C metabolic flux analysis , 2012, Biotechnology and bioengineering.
[7] N. Wingreen,et al. α-ketoglutarate coordinates carbon and nitrogen utilization via Enzyme I inhibition , 2011, Nature chemical biology.
[8] Terence Hwa,et al. Overcoming Fluctuation and Leakage Problems in the Quantification of Intracellular 2-Oxoglutarate Levels in Escherichia coli , 2011, Applied and Environmental Microbiology.
[9] Matthias Heinemann,et al. Condition-Dependent Cell Volume and Concentration of Escherichia coli to Facilitate Data Conversion for Systems Biology Modeling , 2011, PloS one.
[10] Joerg M. Buescher,et al. Ultrahigh performance liquid chromatography-tandem mass spectrometry method for fast and robust quantification of anionic and aromatic metabolites. , 2010, Analytical chemistry.
[11] U. Sauer,et al. 13C-based metabolic flux analysis , 2009, Nature Protocols.
[12] J. Rabinowitz,et al. Absolute Metabolite Concentrations and Implied Enzyme Active Site Occupancy in Escherichia coli , 2009, Nature chemical biology.
[13] Nicola Zamboni,et al. High-throughput quantitative metabolomics: workflow for cultivation, quenching, and analysis of yeast in a multiwell format. , 2009, Analytical chemistry.
[14] J. Rabinowitz,et al. Kinetic flux profiling for quantitation of cellular metabolic fluxes , 2008, Nature Protocols.
[15] M. Weigand,et al. Effects of α-ketoglutarate on neutrophil intracellular amino and α-keto acid profiles and ROS production , 2008, Amino Acids.
[16] T. Menges,et al. Intracellular alpha-keto acid quantification by fluorescence-HPLC , 2008, Amino Acids.
[17] U. Sauer,et al. Article number: 62 REVIEW Metabolic networks in motion: 13 C-based flux analysis , 2022 .
[18] Uwe Sauer,et al. The PEP-pyruvate-oxaloacetate node as the switch point for carbon flux distribution in bacteria. , 2005, FEMS microbiology reviews.
[19] J J Heijnen,et al. MIRACLE: mass isotopomer ratio analysis of U‐13C‐labeled extracts. A new method for accurate quantification of changes in concentrations of intracellular metabolites , 2004, Biotechnology and bioengineering.
[20] D. Merkler,et al. An enzyme-coupled assay for glyoxylic acid. , 2003, Analytical biochemistry.
[21] T. Menges,et al. Quantitative determination of free intracellular α-keto acids in neutrophils , 2003 .
[22] B. Chung,et al. Gas chromatographic-mass spectrometric determination of urinary oxoacids using O-(2,3,4,5,6-pentafluorobenzyl)oxime-trimethylsilyl ester derivatization and cation-exchange chromatography. , 1998, Journal of chromatography. B, Biomedical sciences and applications.
[23] J. Saudubray,et al. Inborn Metabolic Diseases: Diagnosis and Treatment , 1995 .
[24] M. Mályusz,et al. Fast method for the simultaneous determination of 2-oxo acids in biological fluids by high-performance liquid chromatography. , 1994, Journal of chromatography. B, Biomedical applications.
[25] N. Vermeulen,et al. High-performance liquid chromatography-fluorescence assay of pyruvic acid to determine cysteine conjugate beta-lyase activity: application to S-1,2-dichlorovinyl-L-cysteine and S-2-benzothiazolyl-L-cysteine. , 1992, Analytical biochemistry.
[26] F. Arias‐Mendoza,et al. A sensitive multienzymatic assay for the measurement of pyruvate, dihydroxyacetone phosphate, oxaloacetate, and acetoacetate in clear extracts from biological samples. , 1991, Preparative biochemistry.
[27] M. Marangella,et al. High-performance liquid chromatographic determination of glyoxylic acid in urine. , 1988, Journal of chromatography.
[28] Robert A. Harris,et al. Enzymatic determination of the branched-chain α-keto acids , 1987 .
[29] Y. Ohkura,et al. Determination of α-keto acids in serum and urine by high-performance liquid chromatography with fluorescence detection , 1985 .
[30] L. Woolf,et al. Estimation of branched-chain α-keto acids in blood by gas chromatography , 1982 .
[31] H. Naruse,et al. High-performance liquid chromatographic determination of α-keto acids in human urine and plasma , 1982 .
[32] H. Naruse,et al. High-performance liquid chromatographic determination of a-keto acids , 1981 .
[33] S. Ohmori,et al. A sensitive determination of alpha-keto acids by gas-liquid chromatography and its application to the assay of L-glutamate dehydrogenase and aminotransferases. , 1981, Analytical biochemistry.
[34] G. Livesey,et al. Enzymic determination of branched-chain amino acids and 2-oxoacids in rat tissues. Transfer of 2-oxoacids from skeletal muscle to liver in vivo. , 1980, The Biochemical journal.
[35] S. Hutson,et al. Gas-liquid chromatography of α-keto acids: Quantification of the branched-chain α-keto acids from physiological sources , 1979 .
[36] H. E. Williams. Oxalic acid and the hyperoxaluric syndromes. , 1978, Kidney international.
[37] H. Kallio,et al. Gas-liquid chromatographic analysis of 2,4-dinitrophenylhydrazones of keto acid methyl esters. , 1973, Journal of chromatography.