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枯草芽孢杆菌葡萄糖酸操纵子突变株的构建 被引量:2

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摘要 葡萄糖激酶为核黄素的生物合成原料GTP和5-磷酸核酮糖合成的关键酶,为了提高葡萄糖激酶的表达,构建了整合表达载体pRKS-14,通过同源重组的方法将线性化的pRKS-14转化枯草芽孢杆菌GJ05,得到GJ06,在葡萄糖酸操纵子基因gntR和gntK基因之间引入了强启动子PB14,为进一步提高核黄素的产量提供原料保障。
出处 《江苏农业科学》 CSCD 北大核心 2012年第1期50-52,共3页 Jiangsu Agricultural Sciences
基金 武汉工业学院引进(培养)人才科研启动资金(编号:2010RZ16) 国家重点新产品计划(编号:2003ED760039)
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参考文献13

  • 1Stülke J,Hillen W.Regulation of Carbon Catabolism in Bacillus Spe-cies[J].Annu Rev Microbial,2000,54:849-880.
  • 2John B P,Alan S,Janice G P,et al.Bacterial strains which overpro-duce riboflavin:US,5925538[P].1999-07-20.
  • 3Wulf P D,Vandamme E J,Production of D-ribose by fermentation[J].Appl Microbiol Biotechnol,1997,48(2):141-148.
  • 4Humbelin M,Griesser V,Keller T,et al.GTP cyclohydrolase II and3,4-dihydroxy-2-butanone 4-phosphate synthase are rate- limiting enzymes in riboflavin synthesis of an industrial Bacillus subti-lis strain used for riboflavin production[J].Journal of Industrial Mi-crobiology&Biotechnology,1999,22(1):1-7.
  • 5Perkins J B,Sloma A,Hermann T.Genetic Engineering of Bacillussubtilis for the Commercial Production of Riboflavin [J].Journal ofIndustrial Microbiology&Biotechnology,1999,22(1):8-18.
  • 6Tatsuo H,Setsuko M,Yutaka S.Production of D-ribose:JP,07203982[P].1995-08-08.
  • 7Miyagawa K,Miyazaki J,Kanzaki N.Method of producing D-ribose:European,EP0501 765[P].1992-09-02.
  • 8Reizer A,Deutscher J,Saier Jr M H,et al.Analysis of the gluconate(gnt)operon of Bacillus subtilis[J].Molecular Microbiology,1991,5(5):1081-1089.
  • 9Guerout-Fleury A M,Frandsen N,Stragier P,et al.Plasmids for ec-topic integration in Bacillus subtilis[J].Gene,1996,180:57 -61.
  • 10张西锋,郭蔼光.同源重组法构建枯草芽孢杆菌核黄素操纵子突变株[J].武汉大学学报(理学版),2009,55(3):354-358. 被引量:1

二级参考文献35

  • 1张西锋,李万芬,袁新宇,张炜炜,刘波,王俊,杨明明.枯草芽孢杆菌生物素操纵元的初步改造[J].西北农林科技大学学报(自然科学版),2007,35(7):169-174. 被引量:7
  • 2Mironov A S, Gusarov I, Rafikov R, et al. Sensing Small Molecules by Nascent RNA: A Mechanism to Control Transcription in Bacteria[J]. Cell, 2002,111 (5) :747-756.
  • 3Kil Y V,Mironov V N,Gorishin I Y,et al. Riboflavin Operon of: Unusnal Symmetric Arrangement of the Regulatory Region[J]. Mol Gen Genet, 1992,233 ( 3 ) : 483-486.
  • 4Mack M A,Vanloon P G, Hohmann H P. Regulation of Riboflavin Biosynthesis in Bacillus subtilis Is a Affeted by the Activity of the Flavokinase/flavin Adenine Dinucleotide Synthetase Encoded by ribC[J]. Journal of Bacteriology, 1998,180 (4) : 950-955.
  • 5Mironov A S,Karelov D V,Solov'eva I M,et al. Relationship between the Secondary Structure and the Regulatory Activity of the Leader Region of the Riboflavin Biosynthesis Operon in Bacillus subtilis [J]. Genetika, 2008,44(4) : 467-473.
  • 6Rimma A, Pervmov D A. Genetic Mapping of Regulatory Mutations of Bacillus subtilis Riboflavin Operon[J]. Mol Gen Genet,1990,222:467-469.
  • 7Higashitsuji Y,Angerer A,Berghaus S. RibR, a Possible Regulator of the Bacillus subtilis Riboflavin Biosynthetic Operon, in vivo Interacts with the 5'-Untranslated Leader of Rib mRNA[J].FEMS Microbiol Lett ,2007,274(1) :48-54.
  • 8Perkins J B. Genetic Engineering of Bacillus subtilis for the Commercial Production of Riboflavin[J]. Journal of Industrial Microbiology & Biotechnology, 1999,22:8-18.
  • 9Stepanov G. Production of Riboflavin by Bacteria: French 2546907[P]. 1984.
  • 10Yang M M,Zhang W W,Zhang X F,et al. Construction and Characterization of a Novel Maltose Inducible Expression Vector in B. subtilis[J].Biotechnol Lett, 2006,28 : 1713-1718.

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