• Title/Summary/Keyword: protein structure

검색결과 1,742건 처리시간 0.031초

정렬된 잔기 사이의 최대거리와 유사도 그래프에 기반한 단백질 구조 정렬 (Protein Structure Alignment Based on Maximum of Residue Pair Distance and Similarity Graph)

  • 김우철;박상현;원정임
    • 한국정보과학회논문지:데이타베이스
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    • 제34권5호
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    • pp.396-408
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    • 2007
  • 최근 인간 게놈 프로젝트를 통해서 인간의 DNA가 해석된 이후 유전자가 생성하는 단백질의 기능에 대한 관심이 높아지고 있다. 단백질의 기능은 서열의 유사도보다는 진화과정 상에서 잘 보존되는 구조의 유사도에 더 연관되어 있다. 이를 통해 두 개의 단백질 간에 구조 유사성이 관찰되면 이로부터 이들이 유사한 생물학적 기능을 가질 것을 기대할 수 있다. 따라서 유사한 단백질 구조를 가진 단백질을 찾기 위한 방법으로 단백질 구조 정렬에 대한 많은 연구들이 진행되었다. 하지만 기존의 연구들은 유사도로 주로 RMSD(Root Mean Square Deviation)를 사용했기 때문에 두 단백질의 정렬 결과가 유사한지 흑은 유사하지 않은지를 직관적으로 판단하기 쉽지 않다. 또한 대부분의 기존 연구들은 정렬 결과로 최적의 정렬 결과 하나만을 찾기 때문에 서로 다른 목적을 가지는 사용자들을 만족시키기 어렵다. 따라서 본 논문에서는 새로운 유사도인 MRPD(Maximum of Residue Pair Distance)와 다수의 정렬 결과를 하나의 그래프로 표현하는 SG(Similarity Graph)을 기반으로 여러 가지 정렬 결과를 한 번에 생성하는 단백질 구조 정렬 방식을 제안한다. 단백질 정렬에 MRPB를 유사도로 사용하면 RMSD를 사용하는 경우에 비해서 유사 정도를 직관적으로 이해할 수 있을 뿐 아니라 신속하게 결과를 얻을 수 있다. SG는 사용자가 다양한 후보 정렬 결과들 중에서 자신이 원하는 정렬결과를 신속히 검색할 수 있도록 지원한다. 따라서 본 논문에서 제안한 단백질 구조 정렬 알고리즘은 다양한 길이에 따른 다수의 최적 정렬들을 제시하여 사용자의 만족도를 향상시킬 수 있었으며, 다수의 정렬결과 검색임에도 불구하고 정렬 시간은 기존 방법들과 거의 비슷하다는 장점이 있다.

Generation and characterization of calmodulin-DHFR sandwich fusion protein

  • Han, Chang Hoon
    • 대한수의학회지
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    • 제48권3호
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    • pp.243-250
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    • 2008
  • A calmodulin-dihydrofolate reductase (DHFR) sandwich fusion protein was generated by insertion of calmodulin into the $\beta$-bulge region of DHFR to observe the effects of structurally constraining the calmodulin structure. The calcium binding properties of the sandwich protein were almost identical to calmodulin. Similar to calmodulin ($10.7 {\mu}M$), the sandwich protein bound four equivalents of calcium, with half saturation ($K_{0.5}$) observed at a [$Ca^{2+}$] of $8{\mu}M$. However, nicotinamide adenine dinucleotide (NAD) kinase activation property of the sandwich protein was lower than that of calmodulin. The sandwich protein activated NAD kinase, but to only half of the level obtained with calmodulin. The K 0.5 for both calmodulin and the sandwich protein were approximately the same (1-2 nM). Methylation analyses of the sandwich protein show that insertion of calmodulin into DHFR results in a large decrease in methylation. The $V_{max}$ observed with the sandwich protein (95 nmole/min/ml) was only 22% of the value observed with calmodulin (436 nmol/min/ml) in the presence of calcium. Addition of trimethoprim to the reaction significantly inhibited the observed methylation rate. Overall, the data suggest that the insertion of calmodulin into the DHFR structure has little effect on calcium binding by the individual lobes of calmodulin, but may constrain the lobes in a manner that results in altered interaction with the calmodulin-dependent proteins, and severely perturbed the methyltransferase recognition site.

Validation of protein refolding via 1-dimensional 1H-15N heteronuclear single quantum correlation experiments

  • Kim, Boram;Choi, Joonhyeok;Ryu, Kyoung-Seok
    • 한국자기공명학회논문지
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    • 제23권4호
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    • pp.104-107
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    • 2019
  • Many proteins are expressed as an insoluble form during the production using Escherichia coli (E. coli) system. Although various methods are applied to increase their amounts of soluble expression, refolding is the only feasible way to obtain a target protein in some cases. Moreover, protein NMR experiments require 13C/15N-labeled proteins that can only be obtained from E. coli systems in terms of cost and technical difficulty. The finding of appropriate refolding conditions for a target protein is a time-consuming process. In particular, it is very difficult to determine whether the refolded protein has a native structure, when a target protein has no enzymatic activity and its refolding yield is very low. Here, we showed that 1-dimensional 1H-15N heteronuclear single quantum correlation (1D 1H-15N HSQC) experiment can be efficiently used to screen an optimal condition for the refolding of a target protein by monitoring both the structure and concentration of the refolded protein.

A Conserved Structure and Function of the YidC Homologous Protein Slr1471 from Synechocystis sp. PCC 6803

  • GathmannI, Sven;Rupprecht, Eva;Kahmann, Uwe;Schneider, Dirk
    • Journal of Microbiology and Biotechnology
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    • 제18권6호
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    • pp.1090-1094
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    • 2008
  • In this article, we show that the orf slr1471 from Synechocystis sp. PCC 6803 codes for a functional member of the YidC/Alb3/Oxa1 protein family, and the encoded protein has a transmembrane topology with a common core structure. Using specific antibodies raised against the Synechocystis YidC homologous protein, we further show that the Synechocystis YidC protein appears to be predominantly localized in the cyanobacterial cytoplasmic membrane. The impact of the described findings for synthesis of membrane proteins and for protein sorting within cyanobacterial cells is discussed.

Hsp27 Reduces Phosphorylated Tau and Prevents Cell Death in the Human Neuroblastoma Cell Line SH-SY5Y

  • Ahn, Junseong;Kim, Hyeseon;Park, Jong-Sang
    • Bulletin of the Korean Chemical Society
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    • 제34권5호
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    • pp.1503-1507
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    • 2013
  • The two major symptoms characterizing Alzheimer's disease are the formation of amyloid-${\beta}$ extracellular deposits in the form of senile plaques and intracellular neurofibrillary tangles (NFTs) that consist of pathological hyperphosphorylated tau protein aggregated into insoluble paired helical filaments (PHFs). Neurons of the central nervous system have appreciable amounts of tau protein, a microtubule-associated protein. To maintain an optimal operation of nerves, the microtubules are stabilized, which is necessary to support cell structure and cellular processes. When the modified tau protein becomes dysfunctional, the cells containing misfolded tau cannot maintain cell structure. One of the pathological hallmarks of Alzheimer's disease is hyperphosphorylated tau protein. This paper shows that the small heat shock protein from humans (Hsp27) reduces hyperphosphorylated tau and prevents hyperphosphorylated tau-induced cell death of the human neuroblastoma cell line SH-SY5Y.

The Preliminary Study on the Structure of Cop Protein by CD and NMR

  • Kim, Yun-Kyong;Park, Sang-Ho;Lee, Jee-Hyun;Kwak, Jin-Hwan;Lee, Bong-Jin
    • 한국자기공명학회논문지
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    • 제3권2호
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    • pp.100-108
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    • 1999
  • Cop protein is the transcription repressor protein in rolling circle replication plasmid. With antisense RNA, Cop protein controls the copy number of plasmid. Cop family proteins have been found in various plasmids. Among Cop family proteins, Cop studied in this paper consists of 55 amino acids (Mw. 6,400), and was known to have trimer structure. Since no structural facts are elucidated, we have carried out preliminary experiments aimed at the elucidation of its three dimensional structure. The secondary structure of Cop is studied by CD and NMR. To solve the aggregation of Cop at high concentration, we tested various detergents and salts. The addition of detergents and salts could not solve the aggregation problem. However, we found that concentration is important in solving the aggregation problem. We knew that 0.18mM in 50mM potassium phosphate without any other ingredients is maximum concentration not to aggregate. Wa also investigated the pH dependence of Cop protein, and knew that Cop protein is more stable in acid state. At various temperatures, 15N-1H HSQC spectra were measured in order to find the optimal experimental condition. To enhance the peak resolution, 3D NOESY-HSQC spectrum is acquired. Since there are NOE peaks in the NH-NH region, we knew that Cop protein has $\alpha$-helical content, which was also confirmed by CD.

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Structural Features of β2 Adrenergic Receptor: Crystal Structures and Beyond

  • Bang, Injin;Choi, Hee-Jung
    • Molecules and Cells
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    • 제38권2호
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    • pp.105-111
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    • 2015
  • The beta2-adrenergic receptor (${\beta}2AR$) belongs to the G protein coupled receptor (GPCR) family, which is the largest family of cell surface receptors in humans. Extra attention has been focused on the human GPCRs because they have been studied as important protein targets for pharmaceutical drug development. In fact, approximately 40% of marketed drugs directly work on GPCRs. GPCRs respond to various extracellular stimuli, such as sensory signals, neurotransmitters, chemokines, and hormones, to induce structural changes at the cytoplasmic surface, activating downstream signaling pathways, primarily through interactions with heterotrimeric G proteins or through G-protein independent pathways, such as arrestin. Most GPCRs, except for rhodhopsin, which contains covalently linked 11 cis-retinal, bind to diffusible ligands, having various conformational states between inactive and active structures. The first human GPCR structure was determined using an inverse agonist bound ${\beta}2AR$ in 2007 and since then, more than 20 distinct GPCR structures have been solved. However, most GPCR structures were solved as inactive forms, and an agonist bound fully active structure is still hard to obtain. In a structural point of view, ${\beta}2AR$ is relatively well studied since its fully active structure as a complex with G protein as well as several inactive structures are available. The structural comparison of inactive and active states gives an important clue in understanding the activation mechanism of ${\beta}2AR$. In this review, structural features of inactive and active states of ${\beta}2AR$, the interaction of ${\beta}2AR$ with heterotrimeric G protein, and the comparison with ${\beta}1AR$ will be discussed.

전자현미경을 이용한 단백질 3차원 구조 (Three-dimensional Structure of Protein Using Electron Microscopy)

  • 정강원
    • Applied Microscopy
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    • 제30권3호
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    • pp.241-248
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    • 2000
  • 전자현미경을 이용한 단백질 구조분석은 약 30여년간 발전되어 왔다. Bacteriorhodopsin과 porin 등의 near atomic resolution의 구조분석은 전자현미경의 발전과 진행을 보여주는 하나의 예로 설명될 수 있다. 전자현미경을 이용한 거대분자의 3차원 구조를 규명하기 위해 필요한 기본과정 즉, 시료준비, 자료수집과 자료처리 등에 대하여 토론하였다.

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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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Structural basis of novel TRP14, thioredoxin-related protein that regulates TNE-$\alpha$ signaling pathways

  • Woo, Joo-Rang;Jeong, Woo-Jin;Rhee, Sue-Goo;Ryu, Seong-Eon
    • 한국결정학회:학술대회논문집
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    • 한국결정학회 2003년도 춘계학술연구발표회
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    • pp.18-18
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    • 2003
  • Thioredoxin (Trx) is a small redox protein that is ubiquitously distributed from achaes to human. In diverse organisms, the protein is involved in various physiological roles by acting as electron donor and regulators of transcription and apoptosis as well as antioxidants. Sequences of Trx within various species are 27~69% identical to that of E. coli and all Trx proteins have the same overall fold, which consists of central five β strands surrounded by four α helices. The N-terminal cysteine in WCGPC motif of Trx is redox sensitive and the motif is highly conserved. Compared with general cysteine, the N-terminal cysteine has low pKa value. The result leads to increased reduction activity of protein. Recently, novel thio.edoxin-related protein (TRP14) was found from rat brain. TRP14 acts as disulfide reductase like Trx1, and its redox potential and pKa are similar to those of Trx1. However, TRP14 takes up electrons from cytosolic thioredoxin reductase (TrxR1), not from the mitochondrial thioredoxin reductase (TrxR2). Biological roles of TES14 were reported to be involved in regulating TNF-α induced signaling pathways in different manner with Trx1. In depletion experiments, depletion of TRP14 increased TNF-α induced phosphorylation and degradation of IκBα more than the depletion Trx1 did. It also facilitated activation of JNK and p38 MAP kinase induced by TNF-α. Unlike Trx1, TRP14 shows neither interaction nor interference with ASK1. Here, we determined three-dimensional crystal structure of TRP14 by MAD method at 1.8Å. The structure reveals that the conserved cis-Pro (Pro90) and active site-W-C-X-X-C motif, which may be involved in substrate recognition similar to Trx1 , are located at the beginning position of strand β4 and helix α2, respectively. The TRP14 structure also shows that surface of TRP14 in the vicinity of the active site, which is surrounded by an extended flexible loop and an additional short a helix, is different from that of Trx1. In addition, the structure exhibits that TRP14 interact with a distinct target proteins compared with Trx1 and the binding may depend mainly on hydrophobic and charge interactions. Consequently, the structure supports biological data that the TRP14 is involved in regulating TNF-α induced signaling pathways in different manner with Trx1.

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