• 제목/요약/키워드: metalloproteins

검색결과 6건 처리시간 0.021초

Genetic Incorporation of a Phenanthroline-Containing Amino Acid in Escherichia coli

  • Jin, Sunhwa;Lee, Hui-Jung;Lee, Sangyeul;Lee, Hyun Soo
    • Bulletin of the Korean Chemical Society
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    • 제35권4호
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    • pp.1087-1090
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    • 2014
  • A simple and general method that selectively introduces metal binding sites into a protein can greatly increase the ability to design and biosynthesize artificial metalloproteins. Here, we report the incorporation of a phenanthroline-containing amino acid (Phen-Ala) into proteins in Escherichia coli by using the $tRNA{^{Tyr}}_{CUA}$ and tyrosyl aminoacyl-tRNA synthetase pair (BpyRS) from Methanococcus jannaschii, which was originally developed for a bipyridine-containing amino acid (Bpy-Ala). The incorporation efficiency of BpyRS for Phen-Ala was comparable to that for Bpy-Ala. Because of its high metal-binding ability and characteristic spectral properties, Phen-Ala can be a useful alternative to the existing metal-chelating amino acids for the design and synthesis of artificial metalloproteins.

Structural Analyses of Zinc Finger Domains for Specific Interactions with DNA

  • Eom, Ki Seong;Cheong, Jin Sung;Lee, Seung Jae
    • Journal of Microbiology and Biotechnology
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    • 제26권12호
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    • pp.2019-2029
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    • 2016
  • Zinc finger proteins are among the most extensively applied metalloproteins in the field of biotechnology owing to their unique structural and functional aspects as transcriptional and translational regulators. The classical zinc fingers are the largest family of zinc proteins and they provide critical roles in physiological systems from prokaryotes to eukaryotes. Two cysteine and two histidine residues ($Cys_2His_2$) coordinate to the zinc ion for the structural functions to generate a ${\beta}{\beta}{\alpha}$ fold, and this secondary structure supports specific interactions with their binding partners, including DNA, RNA, lipids, proteins, and small molecules. In this account, the structural similarity and differences of well-known $Cys_2His_2$-type zinc fingers such as zinc interaction factor 268 (ZIF268), transcription factor IIIA (TFIIIA), GAGA, and Ros will be explained. These proteins perform their specific roles in species from archaea to eukaryotes and they show significant structural similarity; however, their aligned amino acids present low sequence homology. These zinc finger proteins have different numbers of domains for their structural roles to maintain biological progress through transcriptional regulations from exogenous stresses. The superimposed structures of these finger domains provide interesting details when these fingers are applied to specific gene binding and editing. The structural information in this study will aid in the selection of unique types of zinc finger applications in vivo and in vitro approaches, because biophysical backgrounds including complex structures and binding affinities aid in the protein design area.

The protective effects of trace elements against side effects induced by ionizing radiation

  • Hosseinimehr, Seyed Jalal
    • Radiation Oncology Journal
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    • 제33권2호
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    • pp.66-74
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    • 2015
  • Trace elements play crucial role in the maintenance of genome stability in the cells. Many endogenous defense enzymes are containing trace elements such as superoxide dismutase and metalloproteins. These enzymes are contributing in the detoxification of reactive oxidative species (ROS) induced by ionizing radiation in the cells. Zinc, copper, manganese, and selenium are main trace elements that have protective roles against radiation-induced DNA damages. Trace elements in the free salt forms have protective effect against cell toxicity induced by oxidative stress, metal-complex are more active in the attenuation of ROS particularly through superoxide dismutase mimetic activity. Manganese-complexes in protection of normal cell against radiation without any protective effect on cancer cells are more interesting compounds in this topic. The aim of this paper to review the role of trace elements in protection cells against genotoxicity and side effects induced by ionizing radiation.

챠넬메기의 metallothionein cDNA 유전자의 cloning 및 그 특성에 관한 연구 (Molecular cloning and characterization of metallothionein cDNA gene in channel catfish)

  • 이인정;송영환
    • 한국어병학회지
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    • 제5권2호
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    • pp.143-152
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    • 1992
  • Metallothionein은 세포내의 중금속의 농도을 조절하는 주요한 단백질로서 bacteria에서 척추동물에 이르기까지 모든 생명체에서 나타나는 공통된 단백질이다. 비록 metallothionein의 정확한 기능은 알려져 있지 않으나 독성을 나타내는 중금속에 대하여 세포내 방어기작에 관여할 뿐만 아니라 여러다른 유전자의 총괄적 조절기작 및 matalloprotein의 발현에 관여할 것으로 보고있다. 본 연구에서는 Channel Catfish의 metallothionein cDNA 유전자를 poly(A)를 갖는 mRNA로 부터 Reverse Transcriptase-Polymerase Chain Reaction(RT-PCR)에 의하여 cloning하였다. 증폭된 PCR products는 pBluescript SK+의 EcoRV site 및 pUC19의 Smal site에 dT tailing을 하여 cloning하였으며, PCR products는 multicloning site에 있는 EcoRI 및 HindIII 로 절단하여 확인하거나 신속한 PCR screening에 의하여 확인하였다. 여러 PCR clone 중 하나인 pMT150에 대한 DNA 염기서열을 조사한 결과 다른 어류의 metallothionein cDNA 유전자와 높은 유사성을 보였다.

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Effects of Cadmium and Arsenic on Physiological Responses and Copper and Zinc Homeostasis of Rice

  • Jung, Ha-il;Chae, Mi-Jin;Kim, Sun-Joong;Kong, Myung-Suk;Kang, Seong-Soo;Lee, Deog-Bae;Ju, Ho-Jong;Kim, Yoo-Hak
    • 한국토양비료학회지
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    • 제48권5호
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    • pp.397-403
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    • 2015
  • Heavy metals reduce the photosynthetic efficiency and disrupt metabolic reactions in a concentration-dependent manner. Moreover, by replacing the metal ions in metalloproteins that use essential metal ions, such as Cu, Zn, Mn, and Fe, as co-factors, heavy metals ultimately lead to the formation of reactive oxygen species (ROS). These, in turn, cause destruction of the cell membrane through lipid peroxidation, and eventually cause the plant to necrosis. Given the aforementioned factors, this study was aimed to understand the physiological responses of rice to cadmium (Cd) and arsenic (As) toxicity and the effect of essential metal ions on homeostasis. In order to confirm the level of physiological inhibition caused by heavy metal toxicity, hydroponically grown rice (Oryza sativa L. cv. Dongjin) plants were exposed with $0-50{\mu}M$ cadmium (Cd, $CdCl_2$) and arsenic (As, $NaAsO_2$) at 3-leaf stage, and then investigated malondialdehyde (MDA) contents after 7 days of the treatment. With increasing concentrations of Cd and As, the MDA content in leaf blade and root increased with a consistent trend. At 14 days after treatment with $30{\mu}M$ Cd and As, plant height showed no significant difference between Cd and As, with an identical reduction. However, As caused a greater decline than Cd for shoot fresh weight, dry weight, and water content. The largest amounts of Cd and As were found in the roots and also observed a large amount of transport to the leaf sheath. Interestingly, in terms of Cd transfer to the shoot parts of the plant, it was only transported to upper leaf blades, and we did not detect any Cd in lower leaf blades. However, As was transferred to a greater level in lower leaf blades than in upper leaf blades. In the roots, Cd inhibited Zn absorption, while As inhibited Cu uptake. Furthermore, in the leaf sheath, while Cd and As treatments caused no change in Cu homeostasis, they had an antagonist effect on the absorption of Zn. Finally, in both upper and lower leaf blades, Cd and As toxicity was found to inhibit absorption of both Cu and Zn. Based on these results, it would be considered that heavy metal toxicity causes an increase in lipid peroxidation. This, in turn, leads to damage to the conductive tissue connecting the roots, leaf sheath, and leaf blades, which results in a reduction in water content and causes several physiological alterations. Furthermore, by disrupting homeostasis of the essential metal ions, Cu and Zn, this causes complete heavy metal toxicity.

중추신경계통내 분포하는 Zinc의 조직화학적 동정 (Autometallography for Zinc Detection in the Central Nervous System)

  • 조승묵;;김성준;박승국;강태천;원무호
    • Applied Microscopy
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    • 제30권4호
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    • pp.347-355
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    • 2000
  • Zinc는 인체 내에 철$(Fe^{2+})$다음으로 많은 trace element로서 200여개 효소의 기능에 필수적일 뿐만 아니라 신경계통내에서는 신경조절물질로 작용한다. 뿐만 아니라 허혈, 간질 및 퇴행성 뇌질환의 주요 병리기전에도 관여되어 있다. 그러나 대부분의 Zinc는 단백질에 결합되어 (bound form)신경세포의 세포질 및 핵질내에 존재하고, 10% 이하의 Zinc는 이온상태(free form, $Zn^{2+}$)로 신경종말 (Zinc enriched terminal)에 있는데 , 후자만이 조직화학법으로 가시화된다. 최근까지 새로 개발된 조직화학법으로 Zinc enriched(ZEN)neurons의 분포에 관한 연구가 각광받고 있으나, 국내에서는 이에 대한 연구가 전무한 실정이다. 이에 본 연구자는 고전적인 조직화학법의 기본 원리를 소개하고, 렛드 중추신경계통내 Zinc의 분포를 광학 및 전자현미경으로 관찰하고자 하였다. 본 연구에서 사용된 실험동물은 Wistar 계통의 랫드(10주령)와 BALB/c 마우스이며, 마취제로는 Pentobarbital(50mg/kg)을 이용하였다. 생체 뇌조직내 이온상태의 $Zinc(Zn^{2+})$를 침전시키기 위하여 selenium(10mg/kg, i.p.)을 처리하였고, 1시간 후 3% Glutaraldehyde액으로 관류고정하여 동물을 희생시켰다. 뇌와 척수를 꺼내어 sucrose에 가라앉을때 까지 담가두었다가 Dry Ice를 이용하여 얼리고, Freezing microtome위에서 $30{\mu}m$두께의 절편을 작성하였다. 조직절편내 $Zn^{2+}$을 동정하기 위한 조직화학법으로는 autometallography (AMG) (Danscher, 1985)를 이용하였다. 광학현미경하에서 밝혀진 Zinc의 분포는 해마복합체를 비롯한 종뇌의 여러부위에 고농도로 분포하였고, 척수에는 중간정도, 그리고 소뇌 및 뇌간에는 매우 낮은 농도로 분포하였다. 전자현미경에서 관찰된 AMG염색과립(silver grains)은 신경종말에 있는 연접소포에 국한되었으며, 이러한 ZEN terminals은 주위 여러 신경세포의 돌기(dendrites)및 세포체 (soma)에 특이한 연접을 이루고 있었다. 즉 후각망울을 포함한 종뇌에서는 주로 비대칭연접 (asymmetrical synapses)이 관찰되었던 반면에, 척수에서는 대칭연접(symmetrical synapses)을 이루고 있었다. 이상의 결과를 종합하면, 신경종말내 연접소포에 Zinc를 함유하고 있는 소위 ZEN terminals은 중추신경계통에 광범위하게 분포하고 있으며 또한 신경부위에 따라 다양한 분포와 미세구조의 차이를 보였다. 이러한 사실은 중추신경계통내에서 Zinc가 영위하는 신경생물학적 기능이 신경부위에 따라 다양할 것임을 시사한다.

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