• 제목/요약/키워드: DFAIV

검색결과 3건 처리시간 0.014초

Probing the Critical Residues for Intramolecular Fructosyl Transfer Reaction of a Levan Fructotransferase

  • Moon, Keum-Ok;Choi, Kyoung-Hwa;Kang, Ho-Young;Oh, Jeong-Il;Jang, Se-Bok;Park, Cheon-Seok;Lee, Jong-Hoon;Cha, Jae-Ho
    • Journal of Microbiology and Biotechnology
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    • 제18권6호
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    • pp.1064-1069
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    • 2008
  • Levan fructotransferase (LFTase) preferentially catalyzes the transfructosylation reaction in addition to levan hydrolysis, whereas other levan-degrading enzymes hydrolyze levan into a levan-oligosaccharide and fructose. Based on sequence comparisons and enzymatic properties, the fructosyl transfer activity of LFTase is proposed to have evolved from levanase. In order to probe the residues that are critical to the intramolecular fructosyl transfer reaction of the Microbacterium sp. AL-210 LFTase, an error-prone PCR mutagenesis process was carried out, and the mutants that led to a shift in activity from transfructosylation towards hydrolysis of levan were screened by the DNS method. After two rounds of mutagenesis, TLC and HPLC analyses of the reaction products by the selected mutants revealed two major products; one is a di-D-fructose-2,6':6,2'-dianhydride (DFAIV) and the other is a levanbiose. The newly detected levanbiose corresponds to the reaction product from LFTase lacking transferring activity. Two mutants (2-F8 and 2-G9) showed a high yield of levanbiose (38-40%) compared with the wild-type enzyme, and thus behaved as levanases. Sequence analysis of the individual mutants responsible for the enhanced hydrolytic activity indicated that Asn-85 was highly involved in the transfructosylation activity of LFTase.

High-Level Production of Low-Branched Levan from Pseudomonas aurantiaca S-4380 for the Production of $di-\beta-D-Fructofuranose$ Dianhydride IV

  • JANG KI-HYO;JANG EUN-KYUNG;KIM SEUNG-HWAN;KIM IN-HWAN;KANG SOON AH;KOH ISSAC;PARK YOUNG-IL;KIM YOUNG-JUN;HA SANG-DO;KIM CHUL HO
    • Journal of Microbiology and Biotechnology
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    • 제16권1호
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    • pp.102-108
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    • 2006
  • The IscA gene, encoding a levansucrase of 424 amino acids (aa) residues, was cloned from the genomic DNA of Pseudomonas aurantiaca S-4380, and overexpressed in Escherichia coli. The recombinant levansucrase overexpressed in E. coli was then used to produce levan from sucrose. Levan crystals with 98% purity could be obtained from the reaction mixture with $62\%$ yield using an alcohol precipitation method. The molecular weight of the levan was $7\times10^5$ daltons. Methylation studies showed that the levan was branched: main linkage C-2,6; branched linkage C-2,1; and degree of branching $6\%$. Three bacterial levans from different strains were incubated with levan fructotransferase (LFTase) from Arthrobacter ureafaciens K2032, which produced $di-\beta-D-fructofuranose$ dianhydride IV (DFA IV); final conversion yields from the levans to DFA IV were $39\%$ in Zymomonas mobilis, $53\%$ in Serratia levanicum, and $59\%$ in P. aurantiaca S-4380 levansucrase. The levan from P. aurantiaca S-4380 levansucrase gave the highest conversion yield of levan to DFAIV so far reported.

Microbacterium sp. A-210이 생성하는 Levan fructotransferase의 정제 및 생물학적 특성에 관한 연구 (Purification and Biological Characterization of Wild-type and Mutants of a Levan Fructotransferase from Microbacterium sp. AL-210)

  • 황은영;정미숙;차재호;장세복
    • 생명과학회지
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    • 제19권9호
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    • pp.1218-1225
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    • 2009
  • DFA (Difructose anhydride)는 특유의 구조적인 안정성 때문에 당뇨병 환자를 위한 당원으로써 적합하다는 연구가 보고 되어 있다. DFA에는 4가지 type이 있는데 inulin에 의한 DFA I DFA III DFAV가 있고 levan에 의한 DFA IV가 있는 것으로 알려져 있다. 특히 DFA IV는 당뇨병 환자를 위한 당원 뿐 만 아니라 rat을 이용한 연구에서 칼슘의 흡수를 도와 준다는 보고가 있었다. 이러한 DFAIV를 생성하는 데 쓰이는 Microbacterium sp. AL-210에서 유래한 LFTase (Levan fructotransferase)의 wild-type과 mutants (D63A, D195N, N85S)의 구조적 특성을 밝히기 위해 정제하였다. LFTase의 wild-type과 mutants들을 대량 발현시킨 후 흡착 크로마토그래피, 이온교환 크로마토그래피 그리고 젤 여과 크로마토그래피를 이용하여 고순도로 분리 정제하였으며 이를 SDS-PAGE를 통하여 확인하였다. 분리 정제된 단백질을 JNET 이차 구조 예측 프로그램, solubility 측정, CD (원 편광 이색성 분광편광계), fluorescence spectroscopy (형광분석법), DSC (시차주사열량계)를 이용하여 분석하였다. 또한 다중 정렬과 2차 구조 예측 프로그램을 이용하여 wild-type의 2차 구조를 분석하였다. Solubility 측정에서 가장 적합한 온도는 $55^{\circ}C$, 최상의 pH는 7.5로 나타났다. CD 분석에서 wild-type과 비교한 결과 다른 mutant에 비해 N85S의 $\alpha$-helix가 많이 감소한 것과 $\beta$ strand와 random coil이 증가한 것을 확인하였다. 또한 DSC 분석을 통해 wild-type이 다른 mutants에 비해 안정적인 구조를 지닌 것을 확인하였다. 형광분석에서 N85S가 wild-type과 가장 유사하게 나타났으며 D63A와 D195N은 wild-type에 비해 높은 강도를 나타내었다. 또한 wild-type의 sequence를 Exo-inulinase from Aspegillus awamori, a plant fructan 1-exohydrolase from Cichorium intybus 그리고 invertase from Thermotogo maritime (Tm)의 sequence와 다중 정렬한 결과 Exo-inulinase와 높은 identity를 보였다.