• 제목/요약/키워드: Phenylglyoxal

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Inhibition of Purine Nucleoside Phosphorylase (PNP) in Micrococcus luteus by Phenylglyoxal

  • Choi, Hye-Seon
    • Journal of Microbiology
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    • 제34권3호
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    • pp.270-273
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    • 1996
  • Micrococcus luteus purine nucleoside phosphorylase (PNP) has been purified and characterized. The physical and kinetic properties have been described previously. Chemical modification of the enzyme was attempted to gain insight on the active site. The enzyme was inactivated in a time-dependent manner by the arginine- specific modifying reagent phenylglyoxal. There was a linear relationship between the observed rate of inactivation and the phenylglyoxal concentration. At 30 $^{\circ}C$ the bimolecular rate constant for the modification was 0.015 $min^{-1}mM^{-1}$ in 50 mM $NaHCO_3$ buffer, pH 7.5. The plot of logk versus log phenylglyoxal concentration was a strainght line with a slope value of 0.9, indicating that modification of one arginine residue was needed to inactivate the enzyme. Preincubation with saturated solutions of substrates protected the enzyme from inhibition of phenylglyoxal, indicating that reactions with phenylglyoxal were directed at arginyl residues essential for the catalytic functioning of the enzyme.

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Chemical Modification of Brain Glutamate Dehydrogenase Isoproteins with Phenylglyoxal

  • Ahn, Jee-Yin;Cho, Eun-Hee;Lee, Kil-Soo;Choi, Soo-Young;Cho, Sung-Woo
    • BMB Reports
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    • 제32권5호
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    • pp.515-520
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    • 1999
  • Incubation of two types of glutamate dehydrogenase isoproteins from bovine brain with the arginine-specific dicarbonyl reagent phenylglyoxal resulted in a biphasic loss of enzyme activity. Reaction of the glutamate dehydrogenase isoproteins with phenylglyoxal caused a rapid loss of 53~62% of the enzyme activities and modification of two residues of arginine per enzyme subunit. Prolonged incubation of the glutamate dehydrogenase isoproteins with phenylglyoxal resulted in the modification of an additional four residues of arginine per enzyme subunit without further loss of the residual activities. Partial protection against inactivation was provided by the coenzyme NADH or substrate 2-oxoglutarate. The most marked decrease in the rate of inactivation was observed by the combined addition of NADH and 2-oxoglutarate, suggesting that the first two modified arginine residues are in the vicinity of the catalytic site. However, inactivation of the glutamate dehydrogenase isoproteins by phenylglyoxal appears to be partial with approximately 40% activity remained after an extended reaction time with excess reagent, suggesting that the modified arginine residues may not be directly involved in catalysis. The lack of complete protection by substrates also suggest the possibility that the modified arginine residues are not directly involved at the active site, and the partial loss of activity by the modification of arginine residues may be due to a conformational change. There were no significant differences between the two glutamate dehydrogenase isoproteins in sensitivities to inactivation by phenylglyoxal, indicating that the microenvironmental structures of the glutamate dehydrogenase isoproteins are very similar to each other.

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Chemical Modification of Serratia marcescens Catabolic ${\alpha}-Acetolactate$ Synthase

  • Joo, Han-Seung;Kim, Soung-Soo
    • BMB Reports
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    • 제31권2호
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    • pp.139-143
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    • 1998
  • The catabolic ${\alpha}-acetolactate$ synthase purified from Serratia marcescens ATCC 25419 was rapidly inactivated by the tryptophane-specific reagent, N -bromosuccinimide, and the arginine-specific reagent, phenylglyoxal. The enzyme was inactivated slowly by the cysteine-specific reagent N-ethylmaleimide. The second-order rate constants for the inactivation by N-bromosuccinimide, phenylglyoxal. and N -ethylmaleimide were $114,749M^{-1}min^{-1}$, $304.3M^{-1}min^{-1}$, and $5.1M^{-1}min^{-1}$, respectively. The reaction order with respect to N-bromosuccinimide, phenylglyoxal, and N-ethylmaleimide were 1.5,0.71, and 0.86, respectively. The inactivation of the catabolic aacetolactate synthase by these modifying reagents was protected by pyruvate. These results suggest that essential tryptophane, arginine, and cysteine residues are located at or near the active site of the catabolic ${\alpha}-acetolactate$ synthase.

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Chemical Modification of Yeast Farnesyl Protein Transferase Expressed in E. coli

  • Kim, Hyun-Kyung;Yang, Chul-Hak
    • Bulletin of the Korean Chemical Society
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    • 제27권4호
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    • pp.529-534
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    • 2006
  • Chemical modification of the S. cerevisiae farnesyl protein transferase (FPT) with CMC, phenylglyoxal and DEPC resulted in enzyme inactivation, depending upon the reagent concentration. The peptide substrate GST-PEP-I, a GST-fused undecapeptide mimicking the C-terminus of $p21^{Ki-ras}$, protected the enzyme against inactivation by CMC which is specific to either aspartate or glutamate, while the other substrate farnesyl pyrophosphate (FPP) showed protection against phenylglyoxal which is the specific modifier of arginine residues, dependent on the substrate concentrations. Neither of the two substrates protected the enzyme against histidine inactivation by DEPC. It is suggested that there is at least one aspartate or glutamate residue at the peptide substrate binding site, and that at least one arginine residue is located at the binding site of FPP. There also seems to be at least one histidine residue which is critical for enzymic activity and is exposed toward the bulk solution, excluded from the substrate binding sites.

Brain Succinic Semialdehyde Dehydrogenase; Reaction of Arginine Residues Connected with Catalytic Activities

  • Bahn, Jae-Hoon;Lee, Byung-Ryong;Jeon, Seong-Gyu;Jang, Joong-Sik;Kim, Chung-Kwon;Jin, Li-Hua;Park, Jin-Seu;Cho, Yong-Joon;Cho, Sung-Woo;Kwon, Oh-Shin;Choi, Soo-Young
    • BMB Reports
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    • 제33권4호
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    • pp.317-320
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    • 2000
  • The succinic semialdehyde dehydrogenase from bovine brain was inactivated by treatment with phenylglyoxal, a reagent that specifically modifies arginine residues. The inhibition at various phenylglyoxal concentrations shows pseudo-first-order kinetics with an apparent secondorder rate constant of 30 $M^{-1}min^{-1}$ for inactivation. Partial protection against inactivation was provided by the coenzyme $NAD^+$, but not by the substrate succinic semialdehyde. Spectrophotometric studies indicated that complete inactivation of the enzyme resulted from the binding of 2 mol phenylglyoxal per mol of enzyme. These results suggest that essential arginine residues, located at or near the coenzyme-binding site, are connected with the catalytic activity of brain succinic semialdehyde dehydrogenase.

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Effect of Arginine Modification of Cytosolic Component $p47^{phox}$ by Phenylglyoxal on the Activation of Respiratory Burst Oxidase in Human Neutrophils

  • Park, Jeen-Woo
    • BMB Reports
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    • 제29권6호
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    • pp.507-512
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    • 1996
  • The NADPH oxidase of phagocytes catalyzes the reduction of oxygen to $O_{2}^{-}$ at the expense of NADPH The enzyme is dormant in resting neutrophils and hecomes activated on stimulation. During activation. $p47^{phox}$ (phagocyte oxidase factor), a cytosolic oxidase subunit, becomes extensively phosphorylated on a number of serines located between S303-S379. Although the biochemical role of phosphorylation is speculative, it has been suggested that phosphorylation could neutralize the strongly cationic C-terminal which may result in the change of conformation of $p47^{phox}$ and subsequent translocation of this protein and other cytosolic components to the membrane. In order to mimic the effect of phosphorylation in terms of neutralizing the positive charges, recombinant $p47^{phox}$ was treated with phenylglyoxal, which removes positive charges of arginine residues. Modification of recombinant $p47^{phox}$ resulted in the activation of oxidase in a cell-free translocation system as well as a conformational change in recombinant $p47^{phox}$ which may be responsible for the activation of the enzyme.

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Chemical Modification Studies of Yeast Farnesyl Protein Transferase

  • Sohn, Seung-Wan;Jun, Gyo;Yang, Chul-Hak
    • BMB Reports
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    • 제30권4호
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    • pp.280-284
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    • 1997
  • Phenylglyoxal diethyl pyrocarbonate (DEPC), and 1-cyclohexyl-3-[2-morpholinoethyl]-carbodiimide metho-p-toluenesulfonate (CMC) are modifying reagents specific for arginine, histidine, and aspartate or glutamate, respectively. They were found to inactivate S. cerevisiae farnesyl protein transferase (FPTase). The peptide substrate protected the enzyme against inactivation by CMC and the other substrate farnesyl pyrophosphate showed protection against inactivation by phenylglyoxal. while neither of the two substrates protected the enzyme against DEPC inactivation. These results suggest the presence of aspartate/glutamate, arginine and histidine residues at the active site of this enzyme.

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페닐글리옥살에 의한 구아닌의 화학적 변형 (Chemical Modification of Guanine with Phenylglyoxyal)

  • 박인원;장성근;이강렬
    • 대한화학회지
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    • 제16권5호
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    • pp.298-303
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    • 1972
  • 페닐글리옥산과 구아닌 사이의 부가생성물을 얻었다. 그 구조는 글리옥살-구아닌 부가생성물과 유사하다. 페닐글리옥살의 알데히드기는 구아닌의 1-N의 위치에, 케토기는 구아닌의 $N^2$위치에 부가된다. 부가생성물의 구조는 질량분광법, 핵자기 공명분광법 및 과요오드산염 산화법에 의하여 결정하였다. 부가생성물을 과요오드산염으로 산화하여 $N^2$-벤조일-구아닌을 얻었다. 이 결과에 근거하여 구조식 I과 같이 구조를 밝혔다. 부가생성물은 알카리용액에서 안정하다. pH 12, $60^{\circ}C$에서 2시간을 가열하여도 페닐글리옥살과 구아닌으로 해리되지 않는다. 부가생성물은 산성 에탄올에 녹지만 중성 또는 알카리성 물에는 녹지 않는다. 이 물질은 구아닌의 $A_{280}/A_{260}$의 값에 비하여 낮은 값을 가진다.

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아라비돕시스 탈리아나 Acetolactate Synthase의 화학적 변형과 되먹임 방해 (Chemical Modification and Feedback Inhibition of Arabidopsis thaliana Acetolactate Synthase)

  • 홍성택;최명언;신정휴;고은희
    • Applied Biological Chemistry
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    • 제40권4호
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    • pp.277-282
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    • 1997
  • 아라비돕시스 탈리아나의 아세토락테이트 합성 효소 (ALS)를 그 유전자를 포함하고 있는 대장균 MF 2000/pTATX로부터 부분 정제하였다. 부분 정제된 이 효소를 가지고 여러 가지 변형 화학물질들 즉, 요오드아세트산, 요오드아세타마이드, N-에틸말레이미드 (NEM), 5,5'-디티오비스(2-니트로벤조산) (DTNB), 파라염화수은벤조산 (PCMB), 그리고 페닐글리옥살 등에 대한 민감성을 조사하였다. PCMB가 가장 민감하게 저해를 했으며, DTNB와 NEM이 그 뒤를 따랐다. 이 효소의 기질인 피루브산이 요오드아세트산에 의한 활성 저해를 보호하지 못하였으므로 기질의 결합에 시스테인의 관련이 없는 것 같이 보인다. 한편, 기질이 페닐글리옥살에 의한 효소의 활성 저해를 부분적으로 보호하는 것으로 보아 기질이 아르기닌기와 상호 작용함을 암시하고 있다. 부분 정제된 효소는 발린과 이소루신에 민감하게 방해를 받았으나 루신은 그렇지 않았다. 그러나, PCMB로 변형시킨 효소는 되먹임 방해를 더 강하게 받았다. 그 외 ALS에 대한 새로운 제초제 후보인 피리미디설퍼 벤조산 유도체의 저해 효과를 검토하였다.

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Pleurotus ostreatus에서 분리된 Glyoxalase I의 특성 (Purification and Characterization of Glyoxalase I from Pleurotus ostreatus)

  • 김성태;양갑석;석영재;허원기;강사욱
    • 미생물학회지
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    • 제32권4호
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    • pp.315-321
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    • 1994
  • Pleurotus ostreatus로부터 glyoxalase I(S-lactoyl-glutathione methylglyoxal lyase, EC 4.4.1.5)이 S-hexylglutathione affinity chromatography, Sephadex G-150 gel permeation chromatography, DEA-sepharose A-50 CL-6B ion exchange chromatography를 통해 순수 분리되었다. 이 결과, 전체 활성도의 21.7% fmf 수확하였으며, 분리 배수는 2,294 배 이었다. Gel filtration chromatography로 측정한 효소의 분자량은 34 kDa이며, SDS-PAGE 결과 본 효소는 분자량 17 kDa인 동일한 소단위체 두 개로 구성된 이합체라고 생각된다. Methylglyoxal과 phenylglyoxal에 대한 $K_m$ 값은 각각 0.39 mM 과 0.22 mM 이며 L-xylosone과 hydroxypyruvaldehyde에 대해서도 강한 친화력을 보여주었고, pH 6.5~7.5, $35~45^{\circ}C$에서 활성도가 가장 높았다. 이 효소의 반응 과정을 핵자기공 명분광법으로 분석한 결과, 분자내의 양성자 전달과정이 뚜렷이 관찰되었다.

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