• 제목/요약/키워드: P.E.B. frames

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한국에서의 고초균 유전체 연구: Bacillus subtilis 염색체상 180$^{\circ}$-185$^{\circ}$-부위 53 kb DNA 단편의 염기서열 분석 (The Bacillus subtilis Genome Sequencing Project in Korea: Sequence Analysis of the 53 kb DNA Fragment at 180$^{\circ}$-185$^{\circ}$- of B. subtilis 168 Chromosome)

  • 김사열;최수근;정영미;신병식;박승환
    • 한국미생물·생명공학회지
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    • 제26권1호
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    • pp.23-33
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    • 1998
  • 고초균 유전체 전체 염기서열을 밝히는 연구가 1997년 5월에 종료되어 전체 4,214,810bp의 염기서열이 SubtiList 데이터베이스에 공식적으로 입력되었다. 과제의 진행은 약 8년 동안 국제적인 협력에 의하여 이루어져 왔으며, 유럽의 25개 연구팀, 일본의 7개 연구팀, 두 개의 회사 연구팀 그리고 한국의 본 연구팀이 참여했다. 고초균 유전체 염기서열 해독을 위한 국제협력과제의 일환으로 본 연구팀은 odhA 유전자(181 $^{\circ}$) 상류지역 53, 289bp 부위의 염기서열을 해독하였다. 할당된 부위의 양 끝 부분에 위치한 sspC와 odhA 유전자의 알려진 염기 서열을 시점으로하여, plasmid rescue와 long-range PCR 방법을 써서 염색체 DNA 단편을 획득하였다. 본 연구팀이 염기서열을 밝힌 염색체 DNA 부위에는 이미 보고된 9개 유전자(sspC, cge cluster, orfE5, orfRMl 및 odhA)를 포함하여 모두 65개의 ORF가 들어 있음이 밝혀졌다. 이 부위에서 얻은 흥미로운 결과 중 하나는 인트론으로 여겨지는 한 ORF의 발견인데 세균의 염색체 상에서 인트론이 발견된 예는 흔치 않다. DNA복제 종결 단백질의 결합이 예상되는 염기서열이 세 곳에서 새로이 발견되었는데 이 역시 흥미로운 결과이다. 한편 이 부위 전체의 염기서열 해독을 통하여 기존의 유전자 지도상에 실제와는 매우 다르게 표시되어 온 여러 유전자들의 위치를 바로잡을 수 있었다.

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Production of the polyclonal subunit C protein antibody against Aggregatibacter actinomycetemcomitans cytolethal distending toxin

  • Lee, Su-Jeong;Park, So-Young;Ko, Sun-Young;Ryu, So-Hyun;Kim, Hyung-Seop
    • Journal of Periodontal and Implant Science
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    • 제38권sup2호
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    • pp.335-342
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    • 2008
  • Purpose: Cytolethal distending toxin (CDT) considered as a key factor of localized aggressive periodontitis, endocarditis, meningitis, and osteomyelitis is composed of five open reading frames (ORFs). Among of them, the individual role of CdtA and CdtC is not clear; several reports presents that CDT is an AB2 toxin and they enters the host cell via clathrin-coated pits or through the interaction with GM3 ganglioside. So, CdtA, CdtC, or both seem to be required for the delivery of the CdtB protein into the host cell. Moreover, recombinant CDT was suggested as good vaccine material and antibody against CDT can be used for neutralization or for a detection kit. Materials and Methods: We constructed the pET28a-cdtC plasmid from Aggregatibacter actinomycetemcomitans Y4 by genomic DNA PCR and expressed in BL21 (DE3) Escherichia coli system. We obtained the antibody against the recombinant CdtC in mice system. Using the anti-CdtC antibody, we test the native CdtC detection by ELISA and Western Blotting and confirm the expression time of native CdtC protein during the growth phase of A. actinomycetemcomitans. Results: In this study we reconstructed CdtC subunit of A. actinomycetemcomitans Y4 and generated the anti CdtC antibody against recombinant CdtC subunit expressed in E. coli system. Our anti CdtC antibody can be interacting with recombinant CdtC and native CDT in ELISA and Western system. Also, CDT holotoxin existed at 24h but not at 48h meaning that CDT holotoxin was assembled at specific time during the bacterial growth. Conclusion: In conclusion, we thought that our anti CdtC antibody could be used mucosal adjuvant or detection kit development, because it could interact with native CDT holotoxin.

Cloning and protein expression of Aggregatibacter actinomycetemcomitans cytolethal distending toxin C

  • Lee, Eun-Sun;Park, So-Young;Lee, Eun-Suk;Kim, Hyung-Seop
    • Journal of Periodontal and Implant Science
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    • 제38권sup2호
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    • pp.317-324
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    • 2008
  • Purpose: Aggregatibacter actinomycetemcomitans was associated with localized aggressive periodontitis, endocarditis, meningitis, and osteomyelitis. The cytolethal distending toxin (CDT) of A. actinomycetemcomitans was considered as a key factor of these diseases is composed of five open reading frames (ORFs). Among of them, An enzymatic subunit of the CDT, CdtB has been known to be internalized into the host cell in order to induce its genotoxic effect. However, CdtB can not be localized in host cytoplasm without the help of a heterodimeric complex consisting of CdtA and CdtC. So, some studies suggested that CdtC functions as a ligand to interact with GM3 ganglioside of host cell surface. The precise role of the CdtC protein in the mechanism of action of the holotoxin is unknown at the present time. The aim of this study was to generate recombinant CdtC proteins expression from A. actinomycetemcomitans, through gene cloning and protein used to investigate the function of Cdt C protein in the bacterial pathogenesis. Materials and Methods: The genomic DNA of A. actinomycetemcomitans Y4 (ATCC29522) was isolated using the genomic DNA extraction kit and used as template to yield cdtC genes by PCR. The amplifed cdtC genes were cloned into T-vector and cloned cdt C gene was then subcloned to pET28a expression vector. The pET28a-cdtC plasmid expressed in BL21 (DE3) Escherichia coli system. Diverse conditons were tested to opitimize the expression and purification of functional CdtC protein in E. coli. Results: In this study we reconstructed CdtC subunit of A. actinomycetemcomitans Y4 and comfirmed the recombinant CdtC expression by SDS-PAGE and Western Blotting. The expression level of the recombinant CdtC was about 2% of total bacterial proteins. Conclusion: The lab condition of procedure for the purification of functionally active recombinant CdtC protein is established. The active recombinant CdtC protein will serve to examine the role of CdtC proteins in the host recognition and enzyme activity of CDT and investigate the pathological process of A. actinomycetemcomitans in periodontal disease.

Transcriptional Regulation of a DNA Repair Gene in Saccharomyces cerevisiae

  • Jang, Yeon-Kyu;Sancar, Gwen-B.;Park, Sang-Dai
    • 한국동물학회:학술대회논문집
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    • 한국동물학회 1998년도 한국생물과학협회 학술발표대회
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    • pp.113-113
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    • 1998
  • In Saccharomyces cerevisiae UV irradiation and a variety of chemical DNA -damaging agents induce the transcription of specific genes, including several involved in DNA repair. One of the best characterized of DNA -damage inducible genes is PHRI, which encodes the apoenzyme for DNA photolyase. Basal-level and damage-induced expression of PHRI require an upstream activation sequence, UASPHRI. Here we report the identification of the UlvIE6 gene of S. cerevisiae as a regulator of UASPHRl activity. Surprisingly, the effect of deletion of UME6 is growth phase dependent. In wild-type cells PHRI is induced in late exponential phase, concomitant with the initiation of glycogen accumulation that precedes the diauxic shift. Deletion of UNIE6 abolishes this induction, decreases the steady-state concentration of photolyase molecules and PHRI mRNA, and increases the UV sensitivity of a rad2 mutant. The results suggest that UM E6 contributes to the regulated expression of a subset of damage-responsive genes in yeast. Furthermore, the upstream repression sequence, URSPHRI, is required for repression and damage-induced expression of PHRl. Here we show identification of YER169W and YDR096W as putative regulators acting through $URS_{PHRI}$. These open reading frames were designated as RPHI (YERl69W) and RPH2 (YDR096W) indicating regulator of PHRI. Simultaneous disruption of both genes showed a synergistic effect, producing a four-fold increase in basal level expression and a similar decrease m the induction ratio following treatment of methyl methanesulfonate(MMS). Mutation of the sequence ($AG_4$) bound by Rphlp rendered the promoter of PHRI insensitive to changes in RPHI or RPH2 status. The data suggest that RPHI and RPH2 act as damage-responsive negative regulators of PHRI. Surprisingly, the sequence bound by Rphlp in vitro is found to be $AG_4$ which is identical to the consensus binding site for the regulators Msn2p and Msn4p involved in stress-induced expression. Deletion of MSN2 and MSN4 has little effect on the induction$.$ ratio following DNA damage. However, all deletions led to a significant decrease in basal-level and induced expression of PHRI. These results imply that MSN2 and MSN4 are positive regulators of P HRI but are not required for DNA damage repression. [Supported by grant from NIH]om NIH]

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