• 제목/요약/키워드: thioredoxin reductase

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코리네박테리움 디프테리아 티올 특이성 항산화단백 DirA의 발현 및 특성 (Expression and Characterization of Thiol-Specific Antioxidant Protein, DirA of Corynebacterium diphtheriae)

  • Myung-Jai Choi;Kanghwa Kim;Won-Ki Choi
    • 대한의생명과학회지
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    • 제4권1호
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    • pp.1-9
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    • 1998
  • 효모의 티올특이성 항산화단백과 아미노산 서열상 상동성을 보이는 50종류의 단백은 새로운 항산화 단백군을 형성하며 또한 병원성 미생물에도 널리 분포하고 있으나 이들 단백의 생화학적 및 생리적인 기능은 거의 알려져 있지 않은 실정이다. 본 연구는 병원성 미생물의 티올특이성 항산화단백의 기능에 관한 연구로서 Saccharomyces cerevisiae의 TSA 및 Salmonella typhimurium alkcyl hydroperoxide reductase의 AhpC subunit와 상동성을 나타내는 Corynebacterium diphtheriae의 DirA 유전자를 PCR 방법으로 클로닝하고 대장균에 발현시킨 후 정제하여 항산화 특성을 조사하였다. 정제된 DirA는 티올을 함유하는 금속촉매 산화계인 DTT/Fe$^{3+}$를 선택적으로 억제하였으며 티오레독신 의존성 과산화물 분해활성을 나타내었다. DTT/Fe$^{3+}$ 금속촉매 산화계에 의한 효소의 불활성화를 50% 억제 하는 DirA의 농도는 0.12 mg/ml로 효모 TSA 항산화활성의 약1/4 수준이었으며, 효모의 티 오레 독신계와 반응시켰을때 과산화물 분해활성은 0.02 unit/mg로서 효모 TSA의 티오레독신 의존성 과산화물 분해활성의 1/20수준이었다. 정제된 단백질을 이용하여 항체를 제조하였으며 이항체를 이용하여 Corynebacterium diphtheriae에서 발현됨을 확인하였다. 이러한 결과를 통하여 Corynebacterium diphtheriae의 병원성은 숙주세포의 방어기전인 백혈구에 의하여 생성되는 과산화수소 또는 다른 활성산소종을 제거하는 DirA작용과 연관이 있는 것으로 사료된다.

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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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Activity of Human Dihydrolipoamide Dehydrogenase Is Largely Reduced by Mutation at Isoleucine-51 to Alanine

  • Kim, Hak-Jung
    • BMB Reports
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    • 제39권2호
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    • pp.223-227
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    • 2006
  • Dihydrolipoamide dehydrogenase (E3) belongs to the pyridine nucleotide-disulfide oxidoreductase family including glutathione reductase and thioredoxin reductase. It catalyzes the reoxidation of dihydrolipoyl moiety of the acyltransferase components of three $\alpha$-keto acid dehydrogenase complexes and of the hydrogen-carrier protein of the glycine cleavage system. Isoleucine-51 of human E3, located near the active disulfide center Cys residues, is highly conserved in most E3s from several sources. To examine the importance of this highly conserved Ile-51 in human E3 function, it was substituted with Ala using site-directed mutagenesis. The mutant was expressed in Escherichia coli and highly purified using an affinity column. Its E3 activity was decreased about 100-fold, indicating that the conservation of the Ile-51 residue in human E3 was very important to the efficient catalytic function of the enzyme. Its altered spectroscopic properties implied that conformational changes could occur in the mutant.

기능성 미량원소 Selenium 화합물에 대한 고찰 (Review on the Selenuium, an Essential Trace Mineral)

  • 이춘기;남중현;김재철;구본철;강문석;박광근
    • 한국작물학회지
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    • 제48권
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    • pp.13-23
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    • 2003
  • The trace mineral, selenium (Se), is an essential nutrient of fundamental importance to human health. It is also very toxic and can cause Se poisoning (selenosis) in human and animals when its intake exceeds a suitable amount. Se functions within mammalian systems primarily in the form of solenoprotein. About 35 selenoproteins have been identified, though many have not yet been fully elucidated. Selenoproteins contain Se as selenocyseine (Sec) and perform variety of structural and enzymic roles; the enzymic roles are best-known as the antioxidants for hydrogen peroxides and lipid peroxides, and the catalysts for production of activity thyroid hormone. Glutathione peroxidases ($\textrm{GP}_X$) among the selenoproteins prevent the generation of free radicals and decrease the risk of oxidative damage to tissues, as does thioredoxin reductase (TR). TR also provides reducing power for several biochemical processes. Selenoproteins P and W are involved with oxidant defense in plasma and muscle, respectively, A selenoprotein is also required for sperm motility and may reduce the risk of miscarriage. Some epidemiological studies have revealed an inverse correlation between Se status and cardiovascular disease, and there is considerable evidence 1mm population com-parison data and animal studies that Se is anticarcinogenic. It is also suggested that Se should be needed for the proper functioning of the immune system, and appear to be a key nutrient in counteracting the development of virulence and inhibiting HIV progression to AIDS. As research continues, the role of selenium in the etiology of chronic diseases like appropriate medical nutrition therapy can be delivered and its effectiveness assessed. Se status in individuals is affected by diet and the availability of the Se. The Se content of plants is affected by the content and availability of the element in the soil in which they are grown, and so greatly varies from country to country, while the Se composition of meat reflects the feeding patterns of livestock. This paper provides an overview on Se as an essential trace mineral for human.

Crystal Structure of DsbA from Corynebacterium diphtheriae and Its Functional Implications for CueP in Gram-Positive Bacteria

  • Um, Si-Hyeon;Kim, Jin-Sik;Song, Saemee;Kim, Nam Ah;Jeong, Seong Hoon;Ha, Nam-Chul
    • Molecules and Cells
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    • 제38권8호
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    • pp.715-722
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    • 2015
  • In Gram-negative bacteria in the periplasmic space, the dimeric thioredoxin-fold protein DsbC isomerizes and reduces incorrect disulfide bonds of unfolded proteins, while the monomeric thioredoxin-fold protein DsbA introduces disulfide bonds in folding proteins. In the Gram-negative bacteria Salmonella enterica serovar Typhimurium, the reduced form of CueP scavenges the production of hydroxyl radicals in the copper-mediated Fenton reaction, and DsbC is responsible for keeping CueP in the reduced, active form. Some DsbA proteins fulfill the functions of DsbCs, which are not present in Gram-positive bacteria. In this study, we identified a DsbA homologous protein (CdDsbA) in the Corynebacterium diphtheriae genome and determined its crystal structure in the reduced condition at $1.5{\AA}$ resolution. CdDsbA consists of a monomeric thioredoxin-like fold with an inserted helical domain and unique N-terminal extended region. We confirmed that CdDsbA has disulfide bond somerase/reductase activity, and we present evidence that the N-terminal extended region is not required for this activity and folding of the core DsbA-like domain. Furthermore, we found that CdDsbA could reduce CueP from C. diphtheriae.

구리로 만든 나노입자의 기관지상피세포에 미치는 독성 (Cytotoxicity of Copper Nanoparticles in Cultured Human Bronchial Epithelial Cells (BEAS-2B))

  • 박은정;박광식
    • Toxicological Research
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    • 제21권4호
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    • pp.303-307
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    • 2005
  • Nanomaterials, which ranges in size from 1 to 100 nm, have been used to create uqnique devices at the nanoscale level possessing novel physical and chemical functional properties. However, the toxicities of nanomaterials have not been fully tested and the risk of nanomaterials is emerging issues in these days. In this study, the cytotoxicity of copper nanoparticles was tested in cultured human bronchial epithelial cells. As a results, copper nanoparticles showed cytotoxicity similar with cupric ion and the apoptotic mechanisms of DNA fragmentation and caspase-3 activation were involved. Induction of heme oxygenase-1 and thioredoxin reductase by copper nanoparticles indicated that cytotoxicity of copper nanoparticles is likely to be mediated through oxidative stress.

랫드 심근세포유래 $H_9C_2$ 세포주에서의 망간화합물의 산화적스트레스 유도작용 (Induction of Oxidative Stress by Mananese Chloride in Cultured $H_9C_2$ Cells)

  • 박은정;박광식
    • 약학회지
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    • 제52권3호
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    • pp.212-218
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    • 2008
  • Manganese is a naturally occurring element which is widespread in the environment. Also, manganese is an essential trace element and plays a key role in important biological reactions catalyzed by enzymes. However, exposure to high levels of manganese can cause toxicity in neurone and inhalation system, also damage in various tissues. We investigated the toxicity induced by manganese compound ($MnCl_2$) in cultured rat cardiomyocytes. Treatment of manganese to cultured cardiomyocyte led to cell death, reactive oxygen species (ROS) increase, and cytosolic caspase-3 activation. The ROS increase was related with the decreased level of glutathione. Expressions of ROS related genes such as heme oxygenase-1, thioredoxin reductase, and NADH quinone oxidase were significantly induced in manganese treated cells. These results suggest that manganese induce oxidative stress and apoptosis in cardiomyocytes, and may be the one of risk factors to cause heart dysfunction in vivo.

Heat Shock Causes Oxidative Stress and Induces a Variety of Cell Rescue Proteins in Saccharomyces cerevisiae KNU5377

  • Kim, Il-Sup;Moon, Hye-Youn;Yun, Hae-Sun;Jin, Ing-Nyol
    • Journal of Microbiology
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    • 제44권5호
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    • pp.492-501
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    • 2006
  • In this study, we attempted to characterize the physiological response to oxidative stress by heat shock in Saccharomyces cerevisiae KNU5377 (KNU5377) that ferments at a temperature of $40^{\circ}C$. The KNU5377 strain evidenced a very similar growth rate at $40^{\circ}C$ as was recorded under normal conditions. Unlike the laboratory strains of S. cerevisiae, the cell viability of KNU5377 was affected slightly under 2 hours of heat stress conditions at $43^{\circ}C$. KNU5377 evidenced a time-dependent increase in hydroperoxide levels, carbonyl contents, and malondialdehyde (MDA), which increased in the expression of a variety of cell rescue proteins containing Hsp104p, Ssap, Hsp30p, Sod1p, catalase, glutathione reductase, G6PDH, thioredoxin, thioredoxin peroxidase (Tsa1p), Adhp, Aldp, trehalose and glycogen at high temperature. Pma1/2p, Hsp90p and $H^+$-ATPase expression levels were reduced as the result of exposure to heat shock. With regard to cellular fatty acid composition, levels of unsaturated fatty acids (USFAs) were increased significantly at high temperatures ($43^{\circ}C$), and this was particularly true of oleic acid (C18:1). The results of this study indicated that oxidative stress as the result of heat shock may induce a more profound stimulation of trehalose, antioxidant enzymes, and heat shock proteins, as well as an increase in the USFAs ratios. This might contribute to cellular protective functions for the maintenance of cellular homeostasis, and may also contribute to membrane fluidity.

Peroxiredoxin System of Aspergillus nidulans Resists Inactivation by High Concentration of Hydrogen Peroxide-Mediated Oxidative Stress

  • Xia, Yang;Yu, Haijun;Zhou, Zhemin;Takaya, Naoki;Zhou, Shengmin;Wang, Ping
    • Journal of Microbiology and Biotechnology
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    • 제28권1호
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    • pp.145-156
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    • 2018
  • Most eukaryotic peroxiredoxins (Prxs) are readily inactivated by a high concentration of hydrogen peroxide ($H_2O_2$) during catalysis owing to their "GGLG" and "YF" motifs. However, such oxidative stress sensitive motifs were not found in the previously identified filamentous fungal Prxs. Additionally, the information on filamentous fungal Prxs is limited and fragmentary. Herein, we cloned and gained insight into Aspergillus nidulans Prx (An.PrxA) in the aspects of protein properties, catalysis characteristics, and especially $H_2O_2$ tolerability. Our results indicated that An.PrxA belongs to the newly defined family of typical 2-Cys Prxs with a marked characteristic that the "resolving" cysteine ($C_R$) is invertedly located preceding the "peroxidatic" cysteine ($C_P$) in amino acid sequences. The inverted arrangement of $C_R$ and $C_P$ can only be found among some yeast, bacterial, and filamentous fungal deduced Prxs. The most surprising characteristic of An.PrxA is its extraordinary ability to resist inactivation by extremely high concentrations of $H_2O_2$, even that approaching 600 mM. By screening the $H_2O_2$-inactivation effects on the components of Prx systems, including Trx, Trx reductase (TrxR), and Prx, we ultimately determined that it is the robust filamentous fungal TrxR rather than Trx and Prx that is responsible for the extreme $H_2O_2$ tolerence of the An.PrxA system. This is the first investigation on the effect of the electron donor partner in the $H_2O_2$ tolerability of the Prx system.

Schizosaccharomyces pombe의 유일한 치오레독신 환원효소의 산화적, 일산화질소 및 영양 스트레스에 대한 방어적 역할 (A unique thioredoxin reductase plays defensive roles against oxidative, nitrosative and nutritional stresses in Schizosaccharomyces pombe)

  • 지담정;임창진;김경훈
    • 미생물학회지
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    • 제52권1호
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    • pp.1-9
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    • 2016
  • 치오레독신 환원효소(TrxR)를 encoding하는 Schizosaccharomyces pombe의 유일한 $TrxR^+$ 유전자는 스트레스 반응 전사인자인 Pap1의 매개에 의하여 스트레스 유발 인자들에 의하여 양성적으로 조절됨이 발견되었다. 본 연구에서는, TrxR 과잉 발현 재조합 플라스미드 pHSM10을 사용하여 S. pombe TrxR의 방어적 역할들이 평가되었다. 과산화수소($H_2O_2$)와 superoxide anion을 생성하는 menadione (MD)의 존재 하에서, S. pombe TrxR은 세포성장과 총 글루타치온 (GSH) 수준을 증강시키나, 세포 내 활성산소종(ROS) 수준은 감소시켰다. $H_2O_2$와 MD에 의하여 크게 영향 받지 않는 일산화질소(NO) 수준에는 유의성 없는 효과를 보였다. S. pombe TrxR은 sodium nitroprusside(SNP)에 의하여 생성되는 NO를 소거할 수 있었으나, SNP에 노출된 세포들의 성장, ROS 수준이나 총 글루타치온 수준에는 영향을 보이지 않았다. S. pombe TrxR은 질소 결핍(nitrogen starvation)에 의하여 감소되는 세포 성장 및 총 글루타치온 수준을 증가시키며, 질소 결핍에 의하여 생성되는 ROS와 NO를 소거하였다. 요약하건대, S. pombe TrxR은 산화적, 일산화질소 및 영양 스트레스로부터 효모 세포를 보호하지만, 공통적인 기전에 의하지는 않는다.