• 제목/요약/키워드: N-terminal domain

검색결과 289건 처리시간 0.023초

Subunit 간의 disulfide 결합 형성에 의한 Mycobacterium smegmatis DevS histidine kinase의 불활성화 (Inactivation of the DevS Histidine Kinase of Mycobacterium smegmatis by the Formation of the Intersubunit Disulfide Bond)

  • 이진목;박광진;김민주;고인정;오정일
    • 생명과학회지
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    • 제20권6호
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    • pp.853-860
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    • 2010
  • DevSR two-component system은 Mycobacterium smegmatis의 redox sensing에 관련된 주요한 regulatory system이다. DevSR system은 DevS histidine kinase와 DevR response regulator로 구성되어 있다. 저산소 조건에서 DevS histidine kinase는 활성화되어 DevR response regulator를 인산화 시키고, 인산화된 DevR response regulator는 DevR regulon의 transcriptional activator로 작용한다. DevS의 kinase activity는 DevS의 N-terminal에 위치한 GAF domain에 존재하는 heme의 ligand-binding state에 의해 결정된다. 본 연구에서는 C-terminal kinase domain의 redox-responsive cysteine (C547)이 DevS kinase activity의 redox-dependent control과 연관이 있음을 밝혔다. 산소가 존재할 때, C547 residue 사이의 disulfide bond의 형성은 DevS kinase activity를 불활성화 시킨다. $\beta$-mercaptoethanol과 dithiothreitol과 같은 환원제를 이용하여 산화된 DevS를 환원시켰을 때, DevS kinase activity가 복원된 것이 관찰되었다. 또한, C547을 alanine으로 치환했을 때, M. smegmatis의 DevS의 sensory 기능을 부분적으로 손상되는 것이 complementation 실험을 통해 in vivo 상에서 증명되었다.

Leek Yellow Stripe Virus Can Adjust for Host Adaptation by Trimming the N-Terminal Domain to Allow the P1 Protein to Function as an RNA Silencing Suppressor

  • Sasaki, Jun;Kawakubo, Shusuke;Kim, Hangil;Kim, Ok-Kyung;Yamashita, Kazuo;Shimura, Hanako;Masuta, Chikara
    • The Plant Pathology Journal
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    • 제38권4호
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    • pp.383-394
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    • 2022
  • In Japan, the P1 protein (S-type) encoded by leek yellow stripe virus (LYSV) isolates detected in Honshu and southward is shorter than the P1 (N-type) of LYSV isolates from garlic grown in Hokkaido due to a large deletion in the N-terminal half. In garlic fields in Hokkaido, two types of LYSV isolate with N- and S-type P1s are sometimes found in mixed infections. In this study, we confirmed that N- and S-type P1 sequences were present in the same plant and that they belong to different evolutionary phylogenetic groups. To investigate how LYSV with S-type P1 (LYSV-S) could have invaded LYSV with N-type P1 (LYSV-N)-infected garlic, we examined wild Allium spp. plants in Hokkaido and found that LYSV was almost undetectable. On the other hand, in Honshu, LYSV-S was detected at a high frequency in Allium spp. other than garlic, suggesting that the LYSV-S can infect a wider host range of Allium spp. compared to LYSV-N. Because P1 proteins of potyviruses have been reported to promote RNA silencing suppressor (RSS) activity of HC-Pro proteins, we analyzed whether the same was true for P1 of LYSV. In onion, contrary to expectation, the P1 protein itself had RSS activity. Moreover, the RSS activity of S-type P1 was considerably stronger than that of N-type P1, suggesting that LYSV P1 may be able to enhance its RSS activity when the deletion is in the N-terminal half and that acquiring S-type P1 may have enabled LYSV to expand its host range.

Detection of Mitotic Centromere-Associated Kinesin (MCAK) During Cell-Cycle Progression of Human Jurkat T Cells Using Polyclonal Antibody Raised Against Its N- Terminal Region Overexpressed in E. coli

  • Jun, Do-Youn;Rue, Seok-Woo;Kim, Byung-Woo;Kim, Young-Ho
    • Journal of Microbiology and Biotechnology
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    • 제13권6호
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    • pp.912-918
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    • 2003
  • Mitotic centromere-associated kinesin (MCAK), which is a novel kinesin with a central motor domain, is believed to playa role in mitotic segregation of chromosome during the M phase of the cell cycle. In the present study, it is shown that a rabbit polyclonal antibody has been produced using the N-terminal region (187 aa) of human MCAK expressed in E. coli as the antigen. To express the N-terminal region in E. coli, the MCAK cDNA fragment encoding N-terminal 187 aa was obtained by PCR and was then inserted into the pET 3d expression vector. Molecular mass of the N-terminal region overexpressed in the presence of IPTG was 23.2 kDa on SDS-PAGE, and the protein was insoluble and mainly localized in the inclusion body that could be easily purified from the other cellular proteins. The N-terminal region was purified by electro-elution from the gel after the inclusion body was resolved on the SDS-PAGE. The antiserum obtained after tertiary immunization with the purified protein specifically recognized HsMCAK when subjected to Western blot analysis, and showed a fluctuation of the protein level during the cell cycle of human Jurkat T cells. Synchronization of the cell-cycle progression required for recovery of cells at a specific stage of the cell cycle was performed by either hydroxyurea or nocadazole, and subsequent release from each blocking at 2, 4, and 7 h. Northern and Western analyses revealed that both mRNA and protein of HsMCAK reached a maximum level in the S phase and declined to a basal level in the G1 phase. These results indicate that a polyclonal antibody raised against the N-terminal region (187 aa) of HsMCAK, overexpressed in E. coli, specifically detects HsMCAK (81 kDa), and it can analyze the differential expression of HsMCAK protein during the cell cycle.

1H, 15N and 13C Backbone Assignments and Secondary Structures of C-ter100 Domain of Vibrio Extracellular Metalloprotease Derived from Vibrio vulnificus

  • Yun, Ji-Hye;Kim, Hee-Youn;Park, Jung-Eun;Cheong, Hae-Kap;Cheong, Chae-Joon;Lee, Jung-Sup;Lee, Weon-Tae
    • Bulletin of the Korean Chemical Society
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    • 제33권10호
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    • pp.3248-3252
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    • 2012
  • Vibrio extracellular metalloprotease (vEP), secreted from Vibrio vulnificus, shows various proteolytic function such as prothrombin activation and fibrinolytic activities. Premature form of vEP has an N-terminal (nPP) and a C-terminal (C-ter100) region. The nPP and C-ter100 regions are autocleaved for the matured metalloprotease activity. It has been proposed that two regions play a key role in regulating enzymatic activity of vEP. Especially, C-ter100 has a regulatory function on proteolytic activity of vEP. C-ter100 domain has been cloned into the E. coli expression vectors, pET32a and pGEX 4T-1 with TEV protease cleavage site and purified using gel-filtration chromatography followed by affinity chromatography. To understand how C-ter100 modulates proteolytic activity of vEP, structural studies were performed by heteronuclar multi-dimensional NMR spectroscopy. Backbone $^1H$, $^{15}N$ and $^{13}C$ resonances were assigned by data from standard triple resonance and HCCH-TOCSY experiments. The secondary structures of vEP C-ter100 were determined by TALOS+ and CSI software based on hydrogen/deuterium exchange. NMR data show that C-ter100 of vEP forms a ${\beta}$-barrel structure consisting of eight ${\beta}$-strands.

Crystal Structure of (S)-3-Hydroxybutyryl-CoA Dehydrogenase from Clostridium butyricum and Its Mutations that Enhance Reaction Kinetics

  • Kim, Eun-Jung;Kim, Jieun;Ahn, Jae-Woo;Kim, Yeo-Jin;Chang, Jeong Ho;Kim, Kyung-Jin
    • Journal of Microbiology and Biotechnology
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    • 제24권12호
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    • pp.1636-1643
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    • 2014
  • 3-Hydroxybutyryl-CoA dehydrogenase is an enzyme that catalyzes the second step in the biosynthesis of n-butanol from acetyl-CoA, in which acetoacetyl-CoA is reduced to 3-hydroxybutyryl-CoA. To understand the molecular mechanisms of n-butanol biosynthesis, we determined the crystal structure of 3-hydroxybutyryl-CoA dehydrogenase from Clostridium butyricum (CbHBD). The monomer structure of CbHBD exhibits a two-domain topology, with N- and C-terminal domains, and the dimerization of the enzyme was mostly constituted at the C-terminal domain. The mode of cofactor binding to CbHBD was elucidated by determining the crystal structure of the enzyme in complex with $NAD^+$. We also determined the enzyme's structure in complex with its acetoacetyl-CoA substrate, revealing that the adenosine diphosphate moiety was not highly stabilized compared with the remainder of the acetoacetyl-CoA molecule. Using this structural information, we performed a series of site-directed mutagenesis experiments on the enzyme, such as changing residues located near the substrate-binding site, and finally developed a highly efficient CbHBD K50A/K54A/L232Y triple mutant enzyme that exhibited approximately 5-fold higher enzyme activity than did the wild type. The increased enzyme activity of the mutant was confirmed by enzyme kinetic measurements. The highly efficient mutant enzyme should be useful for increasing the production rate of n-butanol.

Cloning and Expression of a Yeast Cell Wall Hydrolase Gene (ycl) from Alkalophilic Bacillus alcalophilus subsp. YB380

  • Ohk, Seung-Ho;Yeo, Ik-Hyun;Yu, Yun-Jung;Kim, Byong-Ki;Bai, Dong-Hoon
    • Journal of Microbiology and Biotechnology
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    • 제11권3호
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    • pp.508-514
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    • 2001
  • A stuructural gene (ycl) encoding novel yeast cell wall hydrolase, YCL, was cloned from alkalophilic Bacillus alcalophilus subsp. YB380 by PCR, and transformed into E. coli JM83. Based on the N-terminal and internal amino acid sequences of the enzyme, primers were designed for PCr. The positive clone that harbors 1.8 kb of the yeast cell wall hydrolase gene was selected by the colony hybridization method with a PCR fragment as a probe. According to the computer analysis, this gene contained a 400-base-paired N-terminal domain of the enzyme. Based on nucletide homology of the cloned gene, a 850 bp fragment was amplified and the C-terminal domain of the enzyme was sequenced. With a combination of the two sequences, a full nucleotide sequence for YCL was obtained. This gene, ycl, consisted of 1,297 nucleotides with 27 nucleotides with 27 amino acids of signal sequence, 83 redundant amino acids of prosequence, and 265 amino acids of the mature protein. This gene was then cloned into the pJH27 shuttle vector and transformed into the Bacillus subtilis DB104 to express the enzyme. It was confirmed that the expressed cell wall hydrolase that was produced by Bacillus subtilis DB104 was the same as that of the donor strain, by Western blot using polyclonal antibody (IgY) prepared from White Leghorn hen. Purified yeast cell wall hydrolase and expressed recombinant protein showed a single band at the same position in the Western blot analysis.

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해양미생물 Streptomyces sp. M3로부터 alginate lyase의 클로닝 및 발현 (Cloning and Expression of Alginate Lyase from a Marine Bacterium, Streptomyces sp. M3)

  • 김희숙
    • 생명과학회지
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    • 제19권11호
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    • pp.1522-1528
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    • 2009
  • 알긴산을 분해하기 위하여 갈조류로부터 분해활성이 있는 해양미생물을 분리하였다. 분리된 균주의 16S ribosomal DNA를 분석한 결과 이전에 보고했던 ALG-5 균주와 비슷한 Streptomyces sp.에 속하는 것으로 나타났다. 상동성이 있는 염기서열로 고안한 특이적인 primer로 PCR을 행함로서 Streptomyces sp. M3의 새로운 alginate lyase 유전자를 클로닝하였다. M3 alginate lyase의 예상 아미노산 서열에는 N-terminal 영역에 YXRSELREM 서열과 C-terimnal 영역에 YFKAGXYXQ 서열이 보존되어 있었다. M3 alginate lyase 단백질의 homology model은 Corynebacterium sp. ALY-1으로부터 얻은 단백질인 alyPG와 같이 $\beta$-jelly roll fold를 main domain으로 가지고 있음이 나타났다. M3 alginate lyase 유전자를 가지는 재조합 E. coli의 세포균질액은 polymannuronate block보다는 polyguluronate block에 대하여 높은 분해력을 가지고 있었다. 아미노산 서열 다중정열 및 homology modeling으로부터 얻은 결과는 M3 alginate lyase가 Family PL-7으로 분류될 수 있음을 말해 준다.

ErmSF에서 두 도메인 사이에 존재하는 잘 보존된 237번 아르지닌 잔기의 위치 지정 치환 변이의 효소 활성 검색을 통한 역할 규명 (Mutational Analysis Elucidates the Role of Conserved 237 Arginine in 23S rRNA Methylation, Which is in the Concave Cleft Region of ErmSF)

  • 진형종
    • 미생물학회지
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    • 제49권2호
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    • pp.105-111
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    • 2013
  • Erm 단백질은 23S rRNA의 특정 아데닌 잔기 $N_6$ 위치에 methylation을 일으켜 임상적으로 중요하게 사용되는 macrolide-lincosamide-streptogramin B계 항생제에 내성을 유발시킨다. 최근 ErmC'에서 N-말단 catalytic domain과 C-말단 substrate binding domain를 연결하는 오목한 홈 형성부위에 존재하는 잘 보존된 아미노산 잔기가 기질과 상호작용하는 것으로 제안되었다. 우리는 ErmSF에서 두 domain의 연결 부위의 오목한 홈에 위치하여 기질과의 상호작용이 예상되며 또한 Erm 단백질들 사이에서 매우 높게 보존되어있는 237번 아르지닌 잔기를 치환하여 그 기능을 in vivo, in vitro상에서 검색하여 분석하였다. R237A 변이 단백질을 발현하는 세균은 야생형 단백질을 발현하는 세균과 비교하여 in vivo 상에서는 차이를 나타내지 않았으나 순수분리 한 후 in vitro에서의 효소 활성은 야생형에 비하여 51%만을 나타내어 그 잔기가 기질 부착 기능을 수행하고 있다고 제안할 수 있었다.

In Vitro N-Glycan Mannosyl-Phosphorylation of a Therapeutic Enzyme by Using Recombinant Mnn14 Produced from Pichia pastoris

  • Kang, Ji-Yeon;Choi, Hong-Yeol;Kim, Dong-Il;Kwon, Ohsuk;Oh, Doo-Byoung
    • Journal of Microbiology and Biotechnology
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    • 제31권1호
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    • pp.163-170
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    • 2021
  • Enzyme replacement therapy for lysosomal storage diseases usually requires recombinant enzymes containing mannose-6-phosphate (M6P) glycans for cellular uptake and lysosomal targeting. For the first time, a strategy is established here for the in vitro mannosyl-phosphorylation of high-mannose type N-glycans that utilizes a recombinant Mnn14 protein derived from Saccharomyces cerevisiae. Among a series of N-terminal- or C-terminal-deleted recombinant Mnn14 proteins expressed in Pichia pastoris, rMnn1477-935 with deletion of N-terminal 76 amino acids spanning the transmembrane domain (46 amino acids) and part of the stem region (30 amino acids), showed the highest level of mannosyl-phosphorylation activity. The optimum reaction conditions for rMnn1477-935 were determined through enzyme assays with a high-mannose type N-glycan (Man8GlcNAc2) as a substrate. In addition, rMnn1477-935 was shown to mannosyl-phosphorylate high-mannose type N-glycans (Man7-9GlcNAc2) on recombinant human lysosomal alpha-glucosidase (rhGAA) with remarkably high efficiency. Moreover, the majority of the resulting mannosyl-phosphorylated glycans were bis-form which can be converted to bis-phosphorylated M6P glycans having a superior lysosomal targeting capability. An in vitro N-glycan mannosyl-phosphorylation reaction using rMnn1477-935 will provide a flexible and straightforward method to increase the M6P glycan content for the generation of "Biobetter" therapeutic enzymes.

Screening of Domain-specific Target Proteins of Polo-like Kinase 1: Construction and Application of Centrosome/Kinetochore-specific Targeting Peptide

  • Ji, Jae-Hoon;Jang, Young-Joo
    • BMB Reports
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    • 제39권6호
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    • pp.709-716
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    • 2006
  • Mammalian polo-like kinase 1 (Plk1) acts at various stages in early and late mitosis. Plk1 localizes at the centrosome and maintains this position through mitosis. Thereafter Plk1 moves to the kinetochore and midbody region, important sites during chromosome separation and cytokinesis. The catalytic domain of Plk1 is in the N-terminus region, whereas the non-catalytic region in the C-terminus of Plk1 has a conserved motif, named the Polobox. This motif is critical for Plk localization. EGFP proteins fused with the N-terminus and C-terminus of Plk1 localize in the nucleus and centrosomes, respectively. The core sequences of the polo-box (50 amino acids) also localize in Plk1 target organelles. To screen for domain-specific target proteins of Plk1, we constructed an N-terminal domain and a tandem repeat polo-box motif, and used them as templates in a yeast two-hybrid screen. The HeLa cell cDNA library indicated several proteins including the centrosome/kinetochore components or regulators, to be characterized as positive clones. Through in vitro protein binding analyses, we confirmed an interaction between these proteins and Plk1. The data reported from this study indicate that the N- and C- termini of Plk1 may function through recruitment and/or activation of domain-specific target proteins in dividing cells. Additionally, tandem repeats of the conserved core motif of the polo-box are sufficient for targeting and may be useful as a centrosome/kinetochore-specific targeting peptide.