배양조건이 Bacillus subtilis 융합주의 ${\gamma}-Glutamyltranspeptidase{\;}({\gamma}-GTP)$ 활성에 미치는 영향

Culture Characteristics on the Activity of ${\gamma}-Glutamyltranspeptidase{\;}({\gamma}-GTP)$ by Bacillus subtilis Fusant

  • 발행 : 2001.06.01

초록

Bacillus subtilis 돌연변이주 중 ${\gamma}-GTP$활성이 높은 SM-2와 SM-10을 융합시켜 획득한 융합주 중 ${\gamma}-GTP$활성이 높은 융합주 FG-21의 배양적 특성을 조사하였다. 융합주 FG-21에 의한 ${\gamma}-GTP$의 생산은 1% glycerol, 1% peptone, 0.1% citric acid, 5 mM $K_2HPO_4$, 1 mM $FeCl_3$, 1 mM $MgCl_2$, 1 mM $NH_4Cl$, pH 7.0의 배지에 의해 $37^{\circ}C$에서 36시간 배양했을 때 621 U/mL으로 최대한 활성을 보였다. 융합주 FG-21이 생산한 biopolymer A가 단백질함량이 38.4%이고 B. subtilis K-1이 생산하는 biopolymer B의 단백질함량은 19.3%로 융합주 FG-21이 생산하는 Biopolymer A보다 함량이 낮았다. 융합주 FG-21의 biopolymer가 모균주의 biopolymer B보다 단백질함량이 높은 것은 상대적으로 높은 ${\gamma}-GTP$활성이 높아서 생성된 PGA가 levan보다 함량이 많기 때문인 것으로 사료된다. 총당함량은 biopolymer A가 58.5%, biopolymer B가 76.5%로 나타났다. 융합주 FG-21과 모균주가 생산하는 biopolymer의 단백질함량과 총당함량비는 융합주 FG-21이 생성한 biopolymer는 38 : 59. 모균주가 생산한 biopolymer B는 19 : 78의 비율이었고 HPLC 분석에 의한 biopolymer A와 B의 fructose함량은 각각 537.7 mg/g biopolymer, 764.4 mg/g biopolymer으로 나타났다. Biopolymer A와 B의 glutamic acid함량은 각각 163.7 mg/g, 94.3 mg/g이었다. Biopolymer A와 B의 fructose와 glutamic acid의 함량비는 각각 78 : 22, 89 : 11의 비로 함유되어 있었다. 따라서 융합주에 의해 생산된 biopolymer는 모균주보다 구성상태가 변화된 biopolymer를 생산한 것으로 판단되어 fusion과 같은 균주개량을 통하여 물질의 구성적, 물질적 변화된 biopolymer를 생산할 수 있을 것이라 사료된다.

A fusant FG-21 was selected on the basis of higher ${\gamma}-GTP$ activity following fusion process between SM-2 and SM-10 of Bacillus subtilis mutants. ${\gamma}-GTP$ activity of the mutant FG-21 was increased up to 612 U/mL when grown for 36 hr at $37^{\circ}C$ in culture media containing 1% glycerol 1% glycerol, 1% peptone, 0.1% citric acid, 5 mM $K_2HPO_4$, 1 mM $FeCl_3$, 1 mM $MgCl_2$, 1 mM $NH_4Cl$, pH 7.0. In fusnat FG-21, the ratio of protein to total sugar contents for biopolymer A was 38 to 59. for biopolymer B from parental strains it was 19 to 78. Fructose contents determined by HPLC were $573.7\;\mu\textrm{g}/mg\;and\;764.4\;\mu\textrm{g}/mg$ for biopolymer A and B, respectively. And glutamic acid content were $163.7\;\mu\textrm{g}/mg\;and\;94.6\;\mu\textrm{g}/mg$ for biopolymer A and B, respectively. In fusant FG-21, the ratio of fructose to glutamic acid contents for biopolymer A was 78 to 22. For biopolymer B from parental strains it was 89 to 11.

키워드

참고문헌

  1. J. Infectious Diseases v.80 Studies on infection with Bacillus anthracis, V. The isolation of B. anthracis infection and its biological and chemical relationships to glutamylpolypeptide Watson, D.W.;Cromartine, W J;Bloom, W.L.;Heckly, R.J.;McGhee, W.J.;Weissman, N.
  2. J. Bacteriol. v.68 Production of glutamylpolypeptide by Bacillus subtilis Thorne, C.B.;Gomez, C G.;Noyes, H E;Housewright, R.D.
  3. J Bacteriol v.76 Effect of some metallic ions on glutamylpolypeptide synthesis by Bacillus subtilis Leonard, C.G.;Housewright, R.D.;Thorne, C.B.
  4. The bacteria Ⅲ The biosynthesis of homopolymeric peptides Housewright, R D.;Gunsalus, I.C.(ed.);Stainer, R.Y.(ed.)
  5. J. Biol. Chem. v.212 Further studies on the biosynthesis of γ-glutamylpeptides by transfer reactions Williams, W J;Litwin, J.;Thorne, C.B
  6. J. Biol. Chem. v.211 Biosynthesis of glutamylpeptides from glutarmine by a transfer reaction Williams, W.J.;Thorne, C.B.
  7. J. Biol Chem. v.211 Elongation of γ-D-glutamic acid peptide chains by transfer reaction Williams, W.J.;Thorne, C.B.
  8. Science and Engineering v.62 Biosynthesis of unusual polyamides contraining glutamic acid : Proceedings American Chemical Society Division Polymeric Material Giannos, S.;Shah, D;Gross, R.;Kaplan, D.L.;Arcidiacono, S.;Mayer, J
  9. Antonieous Van Leeuwenhoek. J. Microbiol. Serol v.49 Genetic transfer systems in lactic acid bacreia Gasson, M J.
  10. Planta v.115 A method for high frequency intergeneric fusion of plant protoplasts Kao, K N.;Michayluk, M.R.
  11. Proc Natl. Acad. Sci. v.73 Fusion of protoplasts of Bacillus megaterium Fodor, K.;Alfoldi, L.
  12. Proc. Natl. Acad Sci v.76 Fusion of bacterial protoplasts Schaeffer, P;Cami, B.;Hotchkiss, R.D.
  13. Mol Gen. Genet. v.151 Protoplast fusion of Schizosaccharomyces pombe auxotrophic mutants of identical mating-type Sipiczki, M;Ferenczy, L
  14. Agric. Biol. Chem. v.43 Fusion of protoplasts and genetic recombination of Brevibacterium flavum Kaneko, H.;Sakagushi, K.
  15. G.I.M. Abstract v.60 Santamaric, R.;Mesas, J.M.;Martin, J.F.Genetic recombination by protoplast fusion in Coryneform bacteria(4th)
  16. J. Bacteriol. v.139 High-frequency fusion of Streptomyces antibioticus protoplasts induced by polyethylene glycol Ochi, K M.;Hitchcock, J M.;Katz, E
  17. Staphylococci J. Bacteriol. v.145 Plasmid transfer and genetic recombination by protoplast fusion Gotz, F.;Ahrne, S.;Lindberg, M.
  18. Biotechnol. Lett. v.6 Transfer of DNA coding for cellulases from Cellulomonas species to Bacillus subtilis by protoplast fusion Gokhale, V.D.;Eun, S H.;Strini Vasan, V R;Beobagkar, D.N.
  19. Kor. J. Appl. Microbiol. Biotechnol. v.18 Studies on protoplast formation and regeneration of Bacillus pumilus and Cellulomonas funi Kim, D.M;Lee, K.H.
  20. J Bacteriol. v.169 Construction and characterization of Pseudomonas aeruginosa alg B mutants : Role of alg B in high-level production of alginate Goldberg, J B;Ohem, D.E.
  21. J. Bacteriol. v.169 Genetic and physical analyses of a cluster of genes essential for xantban gum biosynthesis in Xanthomonas campestris Harding, N.E.
  22. J. Kor Soc Agri Chem. Biotechnol. v.42 Cell fusion and fusants characterization of Bacillus strains producing biopolymer Kim, S H;Yim, M.H.
  23. Biochim. Biophys. Acta. v.73 γ-Glutamyl-p-nitroanihde: A new convenient substrate for determination and study of L- and D-γ-glutamyltranspeptidase activites Orlowski, M.;Meister, A
  24. Anal. Chem. v.28 Colorimetric method for determination of sugar and related substances Dubios, M.;Gilles, K.A.;Hamilton, J.K.;Roberts, P.A.;Smith. F.
  25. Appl. Environ. Microbiol v.44 Eliminaton of plasmid-linked polyglutamate production by Bacillus subtillis(natto) with acridine orange Hara, T.;Aumayr, A.;Fusio, T.;Ueda, S.
  26. Agric. Biol. Chem. v.41 The isolation and identification of γ-glutamylpeptides from L-glutamic acid fermentation broths and their actions to the crystallization of the amino acid Hasegawa, M.;Fukuda, N.;Higuchi, H.;Noguchi, S;Matsubara, I
  27. Agric. Biol. Chem v.46 Regulation of polyglutamate production in Bacillus subtilis (natto) : Transformation of high PGA productivity Hara, T.;Ueda, S
  28. Biotechnol. Bioeng. v.5 Polyglutamic acid production by Bacillus subtilis NRRL B-2612 grown of wheat gluten Ward, R.M.;Anderson, R.F.;Dean, F.K