• 제목/요약/키워드: structural protein

검색결과 1,060건 처리시간 0.031초

Purification and Spectroscopic Characterization of the Human Protein Tyrosine Kinase-6 SH3 Domain

  • Koo, Bon-Kyung;Kim, Min-Hyung;Lee, Seung-Taek;Lee, Weon-Tae
    • BMB Reports
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    • 제35권3호
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    • pp.343-347
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    • 2002
  • The human protein tyrosine kinase-6 (PTK6) polypeptide that is deduced from the cDNA sequence contains a Src homology (SH) 3 domain, SH2 domain, and catalytic domain of tyrosine kinase. We initiated biochemical and NMR characterization of PTK6 SH3 domain in order to correlate the structural role of the PTK6 using circular dichroism and heteronuclear NMR techniques. The circular dichroism data suggested that the secondary structural elements of the SH3 domain are mainly composed of $\beta$-sheet conformations. It is most stable when the pH is neutral based on the pH titration data. In addition, a number of cross peaks at the low-field area of the proton chemical shift of the NMR spectra indicated that the PTK6 SH3 domain retains a unique and folded conformation at the neutral pH condition. For other pH conditions, the SH3 domain became unstable and aggregated during NMR measurements, indicating that the structural stability is very sensitive to pH environments. Both the NMR and circular dichroism data indicate that the PTK6 SH3 domain experiences a conformational instability, even in an aqueous solution.

Structural and Thermodynamic Characteristics of cHLH Peptide and cHLH/HDM2 Complex

  • Im, Haeri;Cho, Sunhee;Ham, Sihyun
    • EDISON SW 활용 경진대회 논문집
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    • 제5회(2016년)
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    • pp.62-66
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    • 2016
  • Tumor suppressor protein p53 loses its function upon binding with the HDM2 protein, and inhibiting the p53-HDM2 interaction is critical to suppress tumor cell growth. Recently, the cyclized helix-loop-helix peptide (cHLH) mimicking the ${\alpha}-helix$ part of the p53 protein has been designed and found to exhibit high binding affinity with HDM2. Here, we report the structural and thermodynamic characteristics of the bound complex of the cHLH peptide with the HDM2 protein. We performed molecular dynamics simulations to investigate the structural features of the cHLH peptide as well as its complex with the HDM2. The binding free energy calculation based on the integral equation theory was also executed to quantify the binding affinity for the cHLH/HDM2 complex and to understand the factors contributing to the binding affinity. We found a variety of factors for the helix stability of the cHLH peptide as well as in the complexation with the HDM2, which may provide an insight into the development of anti-cancer drug designs.

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Protein Ontology: Semantic Data Integration in Proteomics

  • Sidhu, Amandeep S.;Dillon, Tharam S.;Chang, Elizabeth;Sidhu, Baldev S.
    • 한국생물정보학회:학술대회논문집
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    • 한국생물정보시스템생물학회 2005년도 BIOINFO 2005
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    • pp.388-391
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    • 2005
  • The Protein Structural and Functional Conservation need a common language for data definition. With the help of common language provided by Protein Ontology the high level of sequence and functional conservation can be extended to all organisms with the likelihood that proteins that carry out core biological processes will again be probable orthologues. The structural and functional conservation in these proteins presents both opportunities and challenges. The main opportunity lies in the possibility of automated transfer of protein data annotations from experimentally traceable model organisms to a less traceable organism based on protein sequence similarity. Such information can be used to improve human health or agriculture. The challenge lies in using a common language to transfer protein data annotations among different species of organisms. First step in achieving this huge challenge is producing a structured, precisely defined common vocabulary using Protein Ontology. The Protein Ontology described in this paper covers the sequence, structure and biological roles of Protein Complexes in any organism.

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Molecular analysis of c-terminus structure for elucidating the stabilization effect of site-specific immobilization

  • 백승필;유영재
    • 한국생물공학회:학술대회논문집
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    • 한국생물공학회 2001년도 추계학술발표대회
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    • pp.886-889
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    • 2001
  • C-terminus specific immobilization often results in a increased structural stability resistant to various denaturation factors. In order to elucidate the immobilization effect on the c-terminus in molecular level, we made over 200 protein data set from Protein Data Bank(PDB), analyzed c-terminus structure of each protein, and investigated the structural relationship with the stabilizing factors such as hydrogen bond, ion pairs, cation pi, disulfide bond, solvation free energy, surface area, flexibility and so on.

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Molecular Cloning of an Extremely Thermostable Alanine Racemase from Aquifex pyrophilus and Enzymatic Characterization of the Expressed Protein

  • Kim, Sang-Suk;Yu, Yeon-Gyu
    • BMB Reports
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    • 제33권1호
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    • pp.82-88
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    • 2000
  • A homologous gene to alanine racemase was cloned from a hyperthermophilic bacterium, Aquifex pyrophilus. The cloned gene encodes a protein of 341 amino acids, which has a significant homology to alanine racemase of Bacillus stearothermophilus, Lactobacillus brevis, and E. coli. When the gene was expressed in Escherichia coli, it produced a 40 kDa protein. The purified protein contains one mole pyridoxal 5-phosphate per one mole of protein, which is essential for catalytic activity of alanine racemase. The purified protein catalyzed racemization of L-alanine to D-alanine, or vice versa, indicating that the cloned gene encoded alanine racemase. It also showed significant racemization activity against L-serine and ${\alpha}-aminobutylic$ acid. The A. pyrophilus alanine racemase showed strong thermostability, and it maintained catalytic activity in the presence of organic solvents.

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단백질 3차원 구조의 지역적 유사성을 이용한 Flexible 단백질 구조 정렬에 관한 연구 (A Study of Flexible Protein Structure Alignment Using Three Dimensional Local Similarities)

  • 박찬용;황치정
    • 정보처리학회논문지B
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    • 제16B권5호
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    • pp.359-366
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    • 2009
  • 구조적 생물 정보학 분야는 단백질의 3차원 구조를 대상으로 단백질을 연구하는 분야이며, 본 논문에서는 구조적 생물 정보학 분야의 핵심 연구 주제중의 하나인 Flexible 단백질 구조 정렬에 관한 새로운 알고리즘을 제시한다. Flexible 단백질 구조 정렬을 위하여, 단백질의 3차원 구조의 지역적인 유사성을 이용하여 두 단백질의 유사한 부분 구조를 추출해 내고, 이 추출된 유사 구조간에 연결 가능성을 검색하여 정렬이 가능한 모든 유사 구조를 찾고, 이 유사 구조에 꺽임점을 도입하여 Flexible 단백질 구조 정렬을 수행하였다. 이 과정에서 단백질의 지역적 유사성을 정확히 비교하기 위하여 RDA를 이용한 방법을 제안하였고, Flexible 단백질 구조 정렬시 신뢰성 있는 꺽임점 위치 선정 방법과 그래프를 이용한 최적화 방법을 제안하였다. 성능 평가를 위하여 다양한 방법으로 Flexible 단백질 구조 정렬의 성능 평가를 수행하였고, 기존의 방법인 DALI, CE, FATCAT 보다 성능의 우수함을 나타내었다.

A Role of NMR Spectroscopy in the Post-genomic Era

  • Lee, Weontae
    • 한국생물물리학회:학술대회논문집
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    • 한국생물물리학회 2003년도 정기총회 및 학술발표회
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    • pp.20-20
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    • 2003
  • The success of genome project brought us a vast amount of sequence information about whole genes for some species. In order to get functional understanding of un-annotated genes, a number of frontiers in structural biology proposed a new paradigm for structural research on the basis of given information. Structural biologists believe that the whole characters of the living cells come from the protein functions, which could be regulated by three-dimensional protein structures.

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Molecular Dynamics of the C-Terminal Domain Mouse CDT1 Protein

  • Khayrutdinov, Bulat I.;Bae, Won-Jin;Kim, Jeong-Ju;Hwang, Eun-Ha;Yun, Young-Mi;Ryu, Kyoung-Seok;Cheong, Hae-Kap;Kim, Yu-Gene;Cho, Yun-Je;Jeon, Young-Ho;Cheong, Chae-Joon
    • 한국자기공명학회논문지
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    • 제11권1호
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    • pp.30-41
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    • 2007
  • The backbone molecular dynamics of the C-terminal part of the mouse Cdt1 protein (tCdt1, residues 420-557) was studied by high field NMR spectroscopy. The Secondary structure of this protein was suggested by analyzing of chemical shift of backbone atoms with programs TALOS and PECAN, together with NOE connectivities from 3D $^{15}N-HSQC-NOESY$ data. Measurement of dynamic parameters $T_1,\;T_2$ and NOE and limited proteolysis experiment provided information for domain organization of tCdt1(420-557). Analysis of the experimental data showed that the C-terminal part of the tCdt1 has well folded domain for residues 455-553. The residues 420-453 including ${\alpha}-helix$ (432-441) are flexible and probably belong to other functional domain in intact full length Cdt1 protein.

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Hepatitis C Virus Non-structural Protein NS4B Can Modulate an Unfolded Protein Response

  • Zheng Yi;Gao Bo;Ye Li;Kong Lingbao;Jing Wei;Yang Xiaojun;Wu Zhenghui;Ye Linbai
    • Journal of Microbiology
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    • 제43권6호
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    • pp.529-536
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    • 2005
  • Viral infection causes stress to the endoplasmic reticulum (ER). The response to endoplasmic reticulum stress, known as the unfolded protein response (UPR), is designed to eliminate misfolded proteins and allow the cell to recover. The role of hepatitis C virus (HCV) non-structural protein NS4B, a component of the HCV replicons that induce UPR, is incompletely understood. We demonstrate that HCV NS4B could induce activating transcription factor (ATF6) and inositol-requiring enzyme 1 (IRE1), to favor the HCV subreplicon and HCV viral replication. HCV NS4B activated the IRE1 pathway, as indicated by splicing of X box-binding protein (Xbp-1) mRNA. However, transcriptional activation of the XBP-1 target gene, EDEM (ER degradation-enhancing $\alpha-mannosidase-like$ protein, a protein degradation factor), was inhibited. These results imply that NS4B might induce UPR through ATF6 and IRE1-XBP1 pathways, but might also modify the outcome to benefit HCV or HCV subreplicon replication.