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J Kulys

Publications and source records attributed to J Kulys.

12 recordsLinked to original sources

A role of proton transfer in peroxidase-catalyzed process elucidated by substrates docking calculations.

BACKGROUND: Previous kinetic investigations of fungal-peroxidase catalyzed oxidation of N-aryl hydroxamic acids (AHAs) and N-aryl-N-hydroxy urethanes (AHUs) revealed that the rate of reaction was independent of the formal redox potential of substrates. Moreover, the oxidation rate was 3-5 orders of magnitude less than for oxidation of physiological phenol substrates, though the redox potential was similar. RESULTS: To explain the unexpectedly low reactivity of AHAs and AHUs we made ab initio calculations of the molecular structure of the substrates following in silico docking in the active center of the enzyme. CONCLUSIONS: AHAs and AHUs were docked at the distal side of heme in the sites formed by hydrophobic amino acid residues that retarded a proton transfer and finally the oxidation rate. The analogous phenol substrates were docked at different sites permitting fast proton transfer in the relay of distal His and water that helped fast substrate oxidation.

Binding Sites↗

Recombinant Microdochium nivale carbohydrate oxidase and its application in an amperometric glucose sensor.

Biosensors containing recombinant carbohydrate oxidase from Microdochium nivale (rMnO) were developed by means of either chemically modified carbon paste or graphite electrode. 1-(N,N-dimethylamine)-4-(4-morpholine)benzene (AMB) and 1,1'-dimethylferrocene (DMFc) have been used as mediators. The biosensors showed a linear calibration graph up to 18 mM of glucose when operated at 0.04-0.36 V versus a saturated calomel electrode. Almost no change was detected in the sensitivity of the biosensors at pH 7.2-8.1. The biosensors responded to other aldoses in the D-configuration, however, maximal sensitivity of the biosensor was towards D-glucose. The biosensor did not response to polyhydroxylic compounds such as D-mannitol, D-sorbitol and inositol. The advantages of the biosensors based on rMnO in comparison to Aspergillus niger glucose oxidase is a wider linear range, low sensitivity to oxygen and (in some cases) broad specificity.

Aspergillus niger↗

Kinetics and thermodynamics of peroxidase- and laccase-catalyzed oxidation of N-substituted phenothiazines and phenoxazines.

Steady-state and single-turnover kinetics for the oxidation of the N-substituted phenothiazines (PTs) and phenoxazines (POs) catalyzed by fungal Coprinus cinereus peroxidase and Polyporus pinsitus laccase were investigated at pH 4-10. In the case of peroxidase, an apparent bimolecular rate constant (expressed as k(cat)/K(m)) varied from 1 x10(7)M(-1)s(-1) to 2.6 x 108 M(-1)s(-1) at pH 7.0. The constants for PO oxidation were higher in comparison to PT. pH dependence revealed two or three ionizable groups with pKa values of 4.9-5.7 and 7.7-9.7 that significantly affected the activity of peroxidase. Single-turnover experiments showed that the limiting step of PT oxidation was reduction of compound II and second-order rate constants were obtained which were consistent with the constants at steady-state conditions. Laccase-catalyzed PT and PO oxidation rates were lower; apparent bimolecular rate constants varied from 1.8x 10(5) M(-1) s(-1) to 2.0 x 10(7) M(-1) s(-1) at pH 5.3. PO constants were higher in comparison to PT, as was the case with peroxidase. The dependence of the apparent bimolecular constants of compound II or copper type 1 reduction, in the case of peroxidase or laccase, respectively, was analyzed in the framework of the Marcus outer-sphere electron-transfer theory. Peroxidase-catalyzed reactions with PT, as well as PO, fitted the same hyperbolic dependence with a maximal oxidation rate of 1.6 x 10(8)M(-1)s(-1) and a reorganization energy of 0.30 eV. The respective parameters for laccase were 5.0 x 10(7) M(-1) s(-1) and 0.29 eV.

Antiprotozoal Agents↗

The carbon paste electrode encrusted with a microreactor as glucose biosensor.

The amperometric biosensors based on carbon paste electrodes (CPEs) encrusted with single microreactor (MR) have been constructed for the determination of glucose. The MRs were prepared from CPC-silica carrier (CPC) and were loaded with glucose oxidase (GO), mediator (M) and acceptor (A). As the mediator cation radical of 5,10-dimethyl-5, 10-dihydrophenazine (DMDHP), N-methylphenazonium methyl sulfate (PMS) and o-benzoquinone (BQ) and as the acceptor Fe[EDTA]- or Fe(CN)6(3-) was used. The biosensors acted at electrode potential 0.15-0.27 V versus Ag-AgCl electrode. The calibration graphs of the biosensors were linear in the range from 1.5 to 50 mM of glucose. The sensitivity of the biosensors did not change at pH 6-8. The dissolved oxygen little (7%) influenced the biosensors response and 1 mM of ascorbic acid produced the response that was of equal value to 0.5 mM of glucose. The biosensors showed high stability; no change of the response of the biosensors prepared by using the novel microreactor was observed at least for 6 months by keeping the loaded CPC at room temperature in silica container. An optimization of the biosensors response against the GO, the mediator and the polymer amount was performed. The digital modeling of the biosensors action is following.

Biosensing Techniques↗

Kinetics of glucose oxidase catalyzed electron transfer mediated by sulfur and selenium compounds.

Unusually high electron transfer rates in Aspergillus niger glucose oxidase catalyzed oxidation of glucose using 5,6:11,12-Bis(dithio)tetracene (TTT), 1,2-dimethyltetraselenafulvalene (DMTSF) and tetrathiafulvalene (TTF) were observed. At pH 7.0 oxidation rate constants (TN/Km) in the range from 1.0.10(7) to 8.7.10(7) M.s-1 were deduced from experimental data. One of the investigated mediators, DMTSF, has been used for electrocatalytical glucose oxidation on graphite at a potential of 0.3 V vs. a standard calomel electrode (SCE). The prepared bioelectrodes have a sensitivity of 1.3 microA/(cm2.mM), a pH optimum at 6.5-7.0, and a linear range which covers the relevant range for monitoring physiological levels of glucose. The bioelectrodes are stable for more than one month.

Aspergillus niger↗

Bienzyme strip-type glucose sensor.

A strip-type glucose biosensor, prepared using screen-printing technology and comprising glucose oxidase (E.C.1.1.3.4.), peroxidase (E.C.1.1.3.13.) and ferrocyanide as mediator incorporated into graphite-hydroxyethyl cellulose matrices is described. The sensor acted at 0.0 V vs Ag/AgCl electrode, and the response time was 50-60 s. The calibration was linear up to 25 mM of glucose. The sensor response was constant in the range of pH 7.0-8.5. At 25 degrees C the biosensor temperature coefficient was 2.7% degrees C(-1). The sensor was insensitive to a physiological level of ascorbic acid (40 microM) and was used for glucose determination in whole blood.

Biosensing Techniques↗

Concerning the toxicity of two compounds used as mediators in biosensor devices: 7,7,8,8-tetracyanoquinodimethane (TCNQ) and tetrathiafulvalene (TTF).

The lethal dose (LD50) and the maximum tolerated dose (MTD) of TCNQ and TTF were determined experimentally by single-dose administration to CBA-line mice. The effect of the compounds on the blood constitution, accumulation, acute and subacute dermal and eye irritation, skin sensitization and delayed type hypersensitivity reaction were also monitored in mice and guinea pigs. The LD50s were found to be 1225 mg kg-1 (6.0 mmol kg-1) for TCNQ and 710 mg kg-1 (3.5 mmol kg-1) for TTF; MTDs were 750 mg kg-1 (3.7 mmol kg-1) and 450 mg kg-1 (2.2 mmol kg-1), respectively. Mice that had received the MTD showed no significant change in their measured blood parameters after five days for TTF; however, for TCNQ a decrease in the absolute leucocyte number and changes in the leucoformula were apparent by the fifth day. Oral administration to mice for 28 days at a concentration of 10% of the LD50 showed a super-accumulation, and the accumulation index was 0.94 and 0.53 for TCNQ and TTF, respectively. Neither compound caused acute or subacute dermal irritation of guinea pigs and there was no acute eye irritation. Skin sensitization in guinea pigs and delayed-type hypersensitivity reaction in mice indicated that TCNQ and TTF used as ethanol solutions were not allergic. This study indicates that TCNQ and TTF may be regarded as low-toxicity compounds.

Acute Disease↗

Glucose biosensor based on carbon black strips.

Amperometric biosensors for the determination of beta-D-glucose have been constructed. They were based on a porous matrix of carbon blacks--'Ketjenblack' (KB) and 'Shawinigan black' (SB) wet-proofed with polytetrafluorethylene. Glucose-sensitive elements were prepared by subsequent adsorptional immobilization of 1,1'-dimethylferrocene (DMFc) and nickel-ocene (Nc) on 'Shawinigan black' or tetracyanoquinodimethane (TCNQ) on 'Ketjenblack' together with Penicillium chrysogenum glucose oxidase. Maximum surface concentrations of DMFc, Nc and TCNQ on carbon black electrodes were 95, 116 and 151 nmol cm-2. The biosensor based on KB and TCNQ (KB-TCNQ biosensor) could be used at a potential of 0.5 V (vs. Ag/AgCl reference electrode) in the concentration range up to 7 mM. This biosensor possessed an approximately ten times higher sensitivity than the ones based on SB and DMFc (SB-DMFc biosensor) and on SB and Nc (SB-Nc biosensor) which acted at 0.3 V and 0.05 V, respectively. The biosensors were suitable for practical use longer than one week.

Biosensing Techniques↗

The mechanism of the quinone reductase reaction of pig heart lipoamide dehydrogenase.

The relationship between the NADH:lipoamide reductase and NADH:quinone reductase reactions of pig heart lipoamide dehydrogenase (EC 1.6.4.3) was investigated. At pH 7.0 the catalytic constant of the quinone reductase reaction (kcat.) is 70 s-1 and the rate constant of the active-centre reduction by NADH (kcat./Km) is 9.2 x 10(5) M-1.s-1. These constants are almost an order lower than those for the lipoamide reductase reaction. The maximal quinone reductase activity is observed at pH 6.0-5.5. The use of [4(S)-2H]NADH as substrate decreases kcat./Km for the lipoamide reductase reaction and both kcat. and kcat./Km for the quinone reductase reaction. The kcat./Km values for quinones in this case are decreased 1.85-3.0-fold. NAD+ is a more effective inhibitor in the quinone reductase reaction than in the lipoamide reductase reaction. The pattern of inhibition reflects the shift of the reaction equilibrium. Various forms of the four-electron-reduced enzyme are believed to reduce quinones. Simple and 'hybrid ping-pong' mechanisms of this reaction are discussed. The logarithms of kcat./Km for quinones are hyperbolically dependent on their single-electron reduction potentials (E1(7]. A three-step mechanism for a mixed one-electron and two-electron reduction of quinones by lipoamide dehydrogenase is proposed.

Animals↗

Nitroreductase reactions of the NADPH: adrenodoxin reductase and the adrenodoxin complex.

NADPH: adrenodoxin reductase (E.C. 1.18.1.2) and its complex with adrenodoxin catalyze the aerobic oxidation of NADPH by a number of substituted 2-nitrofurans, 5-nitroimidazoles and p-derivatives of nitrobenzene. The nitrocompounds are reduced via an initial single-electron transfer. Under anaerobic conditions nitrofurans are reduced to the corresponding amines. The rate constants of adrenodoxin oxidation by nitrocompounds vary from 4 x 10(5) to 3 x 10(2) M-1 s-1. A linear correlation between the rate constant logarithm and the single-electron reduction potential at pH 7.0 (E7(1)) of nitrocompounds was observed. The relation between the reactivity and the polarographic half-wave potential (E7(1/2)) is distorted. The reactivity of adrenodoxin reductase is two orders of magnitude lower than that of adrenodoxin.

Adrenodoxin↗

Chemiluminescence ELISA for the detection of antibodies to bovine leukaemia virus antigens.

A chemiluminescence enzyme-linked immunosorbent assay (ELISA) for the detection of antibodies to bovine leukaemia virus antigens (BLV) has been developed. The possibility of using an enhanced chemiluminescence reaction for the determination of adsorbed immunoperoxidase conjugates was studied in this work. The intensity of chemiluminescence depends on both the concentration of reagents and experimental conditions used. The efficiency of the assay is determined by the formation of an immobilized antigen monolayer. A relationship between the quantity of the protein added and adsorbed has been shown. The optimal time and temperature for the antigen-antibody incubation steps have been estimated for each system (3 h at 37 degrees C was chosen as a standard incubation time). A linear dependence of the chemiluminescence intensity and optical density on the concentration of antibodies to the BLV antigens was observed. The detection limit of antibodies in the chemiluminescence ELISA is 2-3 times lower than that in the spectrophotometric one. The results obtained indicate the possibility of using both methods.

Animals↗

Chemiluminescent immunoassay (CLIA) for the detection of brucellosis and tularaemia antigens.

The detection of brucellosis and tularaemia infection agents is of particular interest for medical practice. The possibility of using enhanced chemiluminescence reactions for the determination of these agents is studied in this work. Light intensity depends on both the conjugate concentration used and the conditions at which the adsorption was performed. Optimal conditions for these test-systems were: approximately 20 micrograms/mL of Ig and 200 micrograms/mL (titre 1:20) of conjugate. As is seen from the chemiluminescent and spectrophotometric results the lowest determined concentrations are 10 and 30 ng/mL (for brucellosis) and 1 and 5 ng/mL (for tularaemia), respectively. Calibration curves in the antigen concentrations ranging from 10 to 2500 ng/mL (for brucellosis) and from 1 to 500 ng/mL (for tularaemia) are observed. Optical density depends linearly on the logarithm of the antigen concentration from 30 to 5000 ng/mL (for brucellosis) and from 5 to 250 ng/mL (for tularaemia). The results obtained permit the conclusion that the chemiluminescence method can be used in enzyme immunoanalysis for brucellosis and tularaemia antigens.

Animals↗