Primary Literature
Literature that either focuses on the pathway or contains information about function, regulation, or biological role of the pathway.
17- Zhu Y, et al. (2025) Phospholipid biosynthesis modulates nucleotide metabolism and reductive capacity. Nat Chem Biol 21(1):35-46 PMID: 39060393
- Hengardi MT, et al. (2024) Reversing the directionality of reactions between non-oxidative pentose phosphate pathway and glycolytic pathway boosts mycosporine-like amino acid production in Saccharomyces cerevisiae. Microb Cell Fact 23(1):121 PMID: 38725068
- Pinson B, et al. (2023) On-demand utilization of phosphoribosyl pyrophosphate by downstream anabolic pathways. J Biol Chem 299(8):105011 PMID: 37414150
- Shymansky CM, et al. (2017) Flux-Enabled Exploration of the Role of Sip1 in Galactose Yeast Metabolism. Front Bioeng Biotechnol 5:31 PMID: 28596955
- Misra A, et al. (2013) Metabolic analyses elucidate non-trivial gene targets for amplifying dihydroartemisinic acid production in yeast. Front Microbiol 4:200 PMID: 23898325
- Gorsich SW, et al. (2006) Tolerance to furfural-induced stress is associated with pentose phosphate pathway genes ZWF1, GND1, RPE1, and TKL1 in Saccharomyces cerevisiae. Appl Microbiol Biotechnol 71(3):339-49 PMID: 16222531
- Blank LM, et al. (2005) Large-scale 13C-flux analysis reveals mechanistic principles of metabolic network robustness to null mutations in yeast. Genome Biol 6(6):R49 PMID: 15960801
- Graille M, et al. (2005) Crystal structure of the S. cerevisiae D-ribose-5-phosphate isomerase: comparison with the archaeal and bacterial enzymes. Biochimie 87(8):763-9 PMID: 16054529
- Pitkänen JP, et al. (2005) Xylose chemostat isolates of Saccharomyces cerevisiae show altered metabolite and enzyme levels compared with xylose, glucose, and ethanol metabolism of the original strain. Appl Microbiol Biotechnol 67(6):827-37 PMID: 15630585
- Kondo H, et al. (2004) Pyridoxine biosynthesis in yeast: participation of ribose 5-phosphate ketol-isomerase. Biochem J 379(Pt 1):65-70 PMID: 14690456
- Jeppsson M, et al. (2002) Reduced oxidative pentose phosphate pathway flux in recombinant xylose-utilizing Saccharomyces cerevisiae strains improves the ethanol yield from xylose. Appl Environ Microbiol 68(4):1604-9 PMID: 11916674
- Maaheimo H, et al. (2001) Central carbon metabolism of Saccharomyces cerevisiae explored by biosynthetic fractional (13)C labeling of common amino acids. Eur J Biochem 268(8):2464-79 PMID: 11298766
- Collard F, et al. (1999) Identification of the cDNA encoding human 6-phosphogluconolactonase, the enzyme catalyzing the second step of the pentose phosphate pathway(1). FEBS Lett 459(2):223-6 PMID: 10518023
- Miosga T and Zimmermann FK (1996) Cloning and characterization of the first two genes of the non-oxidative part of the Saccharomyces cerevisiae pentose-phosphate pathway. Curr Genet 30(5):404-9 PMID: 8929392
- Slekar KH, et al. (1996) The yeast copper/zinc superoxide dismutase and the pentose phosphate pathway play overlapping roles in oxidative stress protection. J Biol Chem 271(46):28831-6 PMID: 8910528
- Walfridsson M, et al. (1995) Xylose-metabolizing Saccharomyces cerevisiae strains overexpressing the TKL1 and TAL1 genes encoding the pentose phosphate pathway enzymes transketolase and transaldolase. Appl Environ Microbiol 61(12):4184-90 PMID: 8534086
- Llobell A, et al. (1988) Glutathione reductase directly mediates the stimulation of yeast glucose-6-phosphate dehydrogenase by GSSG. Biochem J 249(1):293-6 PMID: 3277619