• 제목/요약/키워드: pSJE

검색결과 4건 처리시간 0.016초

김치유산균용 발현벡터 pSJE6c 개발과 이를 이용한 외래 유전자 발현 (Development of pSJE6c, an Expression Vector for Kimchi Lactic Acid Bacteria, and Heterologous Gene Expression Using the Vector)

  • 이강욱;박지영;이지연;이황아;백창운;조현덕;김주연;권건희;천지연;김정환
    • 한국미생물·생명공학회지
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    • 제37권4호
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    • pp.389-398
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    • 2009
  • 본 연구실에서 개발한, 김치에서 분리한 Leu. mesenteroides SY2 유래 pFMBL1 을 바탕으로 구축한 셔틀벡터인, pSJE[7]를 외래유전자 발현에 적합하게 개량한 발현벡터를 구축하였다. Lactococcus lactis LM0230에서 분리한 프로모터 P6C를 pSJE에 도입하였다. P6C 염기서열을 지닌 oligonucleotide 쌍을 따로 제조한 후 annealing을 통해 짧은 DNA 단편을 얻어서 제한효소 처리후 pSJE에 도입하여 pSJE6c를 구축하였다. PSJE6c 효능 검증을 위해서 외래 유전자인 aga와 lacZ를 각각 pSJE6c에 도입하였다. P6C 프로모터와 비교를 위해 고유 프로모터를 지닌 유전자들도 각각 pSJE에 도입하였다. 재조합 plasmid들을 electroporation 방법으로 Lactobacillus brevis 2.14 균주에 도입하고 재조합균주들의 생육곡선과 효소역가 그리고 slot blot으로 전사체 농도를 측정하였다. 결과를 보면 PSJE6c에 클로닝 된 유전자들이 pSJE상의 유전자보다 효소역가들이 약 1.5배에서 2배 정도로 높았다. 전사체 농도 측정 결과도 pSJE6c 들에서 더 많은 전사체가 생성됨을 보여주었다. 이상 결과들은 효율적인 발현벡터들의 사용을 통해서 김치유산균에서 외래유전자 발현 효율을 높일 수 있음을 보여준다.

Expression of ${\alpha}$-Galactosidase Gene from Leuconostoc mesenteroides SY1 in Lactobacillus brevis 2.14

  • Lee, Kang-Wook;Park, Ji-Yeong;Park, Jae-Yong;Chun, Ji-Yeon;Kim, Jeong-Hwan
    • Food Science and Biotechnology
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    • 제17권5호
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    • pp.1115-1118
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    • 2008
  • ${\alpha}$-Galactosidase gene (aga) from Leuconostoc mesenteroides SY1 was expressed in a heterologous host, Lactobacillus brevis 2.14 using an Escherichia coli-Leuconostoc shuttle vector, pSJE. pSJEaga (pSJE carrying aga) was introduced into Lactobacillus brevis 2.14 by electroporation and transformation efficiency was $1.1{\times}10^3$ per ${\mu}g$ DNA. L. brevis transformants (TFs) showed higher ${\alpha}$-galactosidase (${\alpha}$-Gal) activities than cells containing pSJE. Transcription levels of aga in L. brevis 2.14 grown on different carbon sources (1%, w/v) were examined by slot blot analysis. Aga transcript levels and ${\alpha}$-Gal activities were higher in cells grown on melibiose, raffinose, and galactose than cells on glucose, sucrose, and fructose. Western blot result showed that L. brevis 2.14 harboring pSJEaga produced much more ${\alpha}$-Gal when grown on melibiose than on glucose.

Expression of Alpha-Amylase Gene from Bacillus licheniformis in Lactobacillus brevis 2.14

  • Lee, Kang-Wook;Park, Ji-Yeong;Kim, Gyoung-Min;Kwon, Gun-Hee;Park, Jae-Yong;Lee, Mee-Ryung;Chun, Ji-Yeon;Kim, Jeong-Hwan
    • Preventive Nutrition and Food Science
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    • 제13권3호
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    • pp.190-195
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    • 2008
  • The $\alpha$-amylase gene, amyL, from Bacillus licheniformis was expressed in Lactobacillus brevis 2.14 and Escherichia coli $DH5{\alpha}$ using two different shuttle vectors, pCW4 and pSJE. E. coli transformants (TFs) harboring either $pCW4T{\alpha}$ or $pSJET{\alpha}$ produced active $\alpha$-amylase but L. brevis TFs did not, as determined by enzyme assays and zymography. But amyL transcripts were synthesized in L. brevis TFs. In terms of plasmid stability, pSJE, a theta-type replicon, was more stable than pCW4, an RCR (rolling circle replication) plasmid, in L. brevis without antibiotic selection.

Expression of ${\alpha}$-Galactosidase Gene from Leuconostoc mesenteroides SY1 in Leuconostoc citreum

  • Park, Jae-Yong;Jeong, Seon-Ju;Lee, Ae-Ran;Park, Ji-Yeong;Jeong, Woo-Ju;Kim, Jeong-Hwan
    • Journal of Microbiology and Biotechnology
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    • 제17권12호
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    • pp.2081-2084
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    • 2007
  • A 2.5 kb aga gene encoding ${\alpha}$-galactosidase (${\alpha}$-Gal) from Leuconostoc mesenteroides SY1 was cloned into pSJE, an E. coli-Leuconostoc shuttle vector. The recombinant plasmid, pSJEaga, was introduced into Leuconostoc citreum KCTC3526 (ATCC49370) by electroporation. Transcription level of aga was the highest in cells grown on raffinose (1%, w/v) followed by cells grown on galactose, melibiose, fructose, glucose, and sucrose. Western blot using antibodies against ${\alpha}$-Gal showed similar results to slot-blot results and enzyme activity measurements. All the results indicated that the aga was successfully expressed in L. citreum and its transcription was under the carbon catabolite repression (CCR).