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A Kluyveromyces marxianus 2-deoxyglucoseresistant mutant with enhanced activity of xylose utilization
Suprayogi, Limtong; Nguyen, Minh T; Lertwattanasakul, Noppon; Rodrussamee, Nadchanok; Limtong, Savitree; Kosaka, Tomoyuki; Yamada, Mamoru.
Affiliation
  • Suprayogi, Limtong; University of Brawijaya. Faculty of Agriculture Technology. Department of Agroindustrial Technology. Malang. Indonesia
  • Nguyen, Minh T; Vietnam National University of Agriculture. Faculty of Environment. Department of Microbiology. Hanoi. Vietnam
  • Lertwattanasakul, Noppon; Kasetsart University. Faculty of Science. Department of Microbiology. Bangkok. Thailand
  • Rodrussamee, Nadchanok; Chiang Mai University. Faculty of Science. Department of Biology. Chiang Mai. Theiland
  • Limtong, Savitree; Kasetsart University. Faculty of Science. Department of Microbiology. Bangkok. Thailand
  • Kosaka, Tomoyuki; Yamaguchi University. Faculty of Agriculture. Department of Biological Chemistry. Yamaguchi. Japan
  • Yamada, Mamoru; Yamaguchi University. Faculty of Agriculture. Department of Biological Chemistry. Yamaguchi. Japan
Int. microbiol ; 18(4): 235-244, dic. 2015. tab, ilus, graf
Article in English | IBECS | ID: ibc-153127
Responsible library: ES1.1
Localization: BNCS
ABSTRACT
Thermotolerant ethanologenic yeast Kluyveromyces marxianus is capable of fermenting various sugars including xylose but glucose represses to hamper the utilization of other sugars. To acquire glucose repression-defective strains, 33 isolates as 2-deoxyglucose (2-DOG)-resistant mutants were acquired from about 100 colonies grown on plates containing 2-DOG, which were derived from an efficient strain DMKU 3-1042. According to the characteristics of sugar consumption abilities and cell growth and ethanol accumulation along with cultivation time, they were classified into three groups. The first group (3 isolates) utilized glucose and xylose in similar patterns along with cultivation to those of the parental strain, presumably due to reduction of the uptake of 2-DOG or enhancement of its export. The second group (29 isolates) showed greatly delayed utilization of glucose, presumably by reduction of the uptake or initial catabolism of glucose. The last group, only one isolate, showed enhanced utilization ability of xylose in the presence of glucose. Further analysis revealed that the isolate had a single nucleotide mutation to cause amino acid substitution (G270S) in RAG5 encoding hexokinase and exhibited very low activity of the enzyme. The possible mechanism of defectiveness of glucose repression in the mutant is discussed in this paper (AU)
RESUMEN
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Subject(s)

Full text: Available Collection: National databases / Spain Database: IBECS Main subject: Repressor Proteins / Xylose / Kluyveromyces Language: English Journal: Int. microbiol Year: 2015 Document type: Article Institution/Affiliation country: Chiang Mai University/Theiland / Kasetsart University/Thailand / University of Brawijaya/Indonesia / Vietnam National University of Agriculture/Vietnam / Yamaguchi University/Japan

Full text: Available Collection: National databases / Spain Database: IBECS Main subject: Repressor Proteins / Xylose / Kluyveromyces Language: English Journal: Int. microbiol Year: 2015 Document type: Article Institution/Affiliation country: Chiang Mai University/Theiland / Kasetsart University/Thailand / University of Brawijaya/Indonesia / Vietnam National University of Agriculture/Vietnam / Yamaguchi University/Japan
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