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Carboxykinase also catalyzes C3 carboxylation at the interface of glyc…

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Carboxykinase also catalyzes C3 carboxylation at the interface of glycolysis and the TCA cycle of Bacillus subtilis. Metab Eng. 2004;6:277?4. 27. Gubbens J, Janus M, Florea BI, Overkleeft HS, van Wezel GP. Identification of glucose kinase-dependent and -independent pathways for carbon control of primary metabolism development and antibiotic production in Streptomyces coelicolor by quantitative proteomics. Mol Microbiol. 2012;86:1490?07. 28. Challis GL, Hopwood DA. Synergy and contingency as driving PubMed ID:https://www.ncbi.nlm.nih.gov/pubmed/6833145 forces for the evolution of multiple secondary metabolite production by Streptomyces species. Proc Natl Acad Sci U S A. 2003;100:14555?1. 29. Avignone-Rossa C, White J, Kuiper A, Postma PW, Bibb M, Teixeira de Mattos MJ. Carbon flux distribution in antibiotic-producing chemostat cultures of Streptomyces lividans. Metab Eng. 2001;4:138?0. 30. Ramachandran S, Fontanille P, Pandey A, Larroche C. Gluconic acid: properties, applications and microbial production. Food Technol Biotech. 2006;44:185?5. 31. Letek M, Valbuena N, Ramos A, Ord ez E, Gil JA, Mateos LM. Characterization and use of catabolite-repressed promoters from gluconate genes in Corynebacterium glutamicum. J Bacteriol. 2006;188:409?3. 32. G ke B, St ke J. Carbon catabolite repression in bacteria: many ways to make the most out of nutrients. Nat Rev Microbiol. 2008;6:613?4. 33. witek MA, Gubbens J, Bucca G, Song E, Yang YH, Laing E, Kim BG, Smith CP, van Wezel GP. The ROK family regulator Rok7B7 pleiotropically affects xylose utilization, carbon catabolite repression, and antibiotic production in Streptomyces coelicolor. J Bacteriol. 2013;195:1236?8. 34. Hindle Z, Smith CP. Substrate induction and catabolite repression of the Streptomyces coelicolor glycerol operon are mediated through the GylR protein. Mol Microbiol. 1994;5:737?5. 35. Temuujin U, Chi WJ, Chang Capecitabine YK, Hong SK. Identification and biochemical characterization of Sco3487 from Streptomyces coelicolor A3(2), an exo- and endo-type -agarase-producing neoagarobiose. J Bacteriol. 2012;194:142?. 36. Temuujin U, Chi WJ, Lee SY, Chang YK, Hong SK. Overexpression and biochemical characterization of DagA from Streptomyces coelicolor A3(2): an endo-type -agarase producing neoagarotetraose and neoagarohexaose. Appl Microbiol Biotechnol. 2011;92:749?9. 37. Caspi R, Altman T, Billington T, Dreher K, Foerster H, Fulcher CA, et al. The MetaCyc database of metabolic pathways and enzymes and the BioCyc collection of Pathway/Genome Databases. Nucleic Acids Res. 2014;42:D459?1. 38. Chi W-J, Chang Y-K, Hong S-K. Agar degradation by microorganisms and agar-degrading enzymes. Appl Microbiol Biotechnol. 2012;94:917?0. 39. Servin-Gonz ez L, Jensen MR, White J, Bibb M. Transcriptional regulation of the four promoters of the agarase gene (dagA) of Streptomyces coelicolor A3(2). BMC Microbiol. 1994;140:2555?5. 40. Tiffert Y, Supra P, Wurm R, Wohlleben W, Wagner R, Reuther J. The Streptomyces coelicolor GlnR regulon: identification of new GlnR targets and evidence for a central role of GlnR in nitrogen metabolism in actinomycetes. Mol Microbiol. 2008;67:861?0. 41. Tiffert Y, Franz-Wachtel M, Fladerer C, Nordheim A, Reuther J, Wohlleben W, Mast Y. Proteomic analysis of the GlnR-mediated response to nitrogen limitation in Streptomyces coelicolor M145. Appl Microbiol Biotechnol. 2011;89:1149?9. 42. Salerno P, Larsson J, Bucca G, Laing E, Smith CP, Fl dh K. One of the two genes encoding nucleoid-associated HU proteins in Streptomyces coelicolor is developme.

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