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Biomedical subjects

A Makower

Publications and source records attributed to A Makower.

17 recordsLinked to original sources

Bioelectrochemical analysis of neuropathy target esterase activity in blood.

Bioelectrochemical analysis of neuropathy target esterase (NTE) and its inhibitors is based on the combination of the NTE-catalyzed hydrolysis of phenyl valerate and phenol detection by a tyrosinase carbon-paste electrode. The use of the tyrosinase electrode improves 10-fold the sensitivity of NTE detection in comparison with a spectrophotometric method. The tyrosinase electrode was found to be suitable for measurements in whole human blood where spectrophotometric detection is considerably restricted. The specificity of NTE in blood for mipafox and di-2-propyl phosphorofluoridate was close to that for neuronal NTE. The NTE-like activity in blood was determined to be 0.19 +/- 0.02 nmol/min/mg of protein.

Animals↗

A new approach for determination of neuropathy target esterase activity.

Neuropathy target esterase (NTE) was shown to be an excellent biochemical marker for screening of organophosphates (OPs) with respect to their ability to result in organophosphate induced delayed neurotoxicity (OPIDN). This paper describes a new biosensor approach to the analysis of NTE and its inhibitors. The method is based on the combination of NTE enzymatic hydrolysis of phenyl valerate (PV) with phenol detection by the Clark-type oxygen electrode modified by immobilized tyrosinase. The validity of this biosensor method is confirmed by the facts that the calibration curves for NTE obtained by colorimetric and flow-through electrochemical methods were nearly identical and the titration of NTE by test inhibitor mipafox was shown to yield the same pI50 values. The developed electrochemical methods can be considered as a promising approach both for serial express NTE analysis and for kinetic characteristics of NTE.

Animals↗

Automated amplified flow immunoassay for cocaine.

An amplified flow immunoassay (AFIA) was developed for cocaine, which combines a noncompetitive immunoenzymometric assay (IEMA) with an on-line detection of the enzyme label alkaline phosphatase (ALP) by a substrate-recycling biosensor. In the IEMA, the analyte cocaine first binds to a labeled polyclonal anti-cocaine antibody. Then, the excess labeled antibody is separated on an affinity column that contains a perfusion chromatography carrier modified by immobilized cocaine. The unbound complexes of the analyte cocaine with the ALP-labeled antibody are detected postcolumn. The detector senses phenol produced by ALP from phenyl phosphate. As detector, an amperometric substrate-recycling biosensor was used, which consists of a Clark-type oxygen electrode covered by tyrosinase and pyrroloquinoline quinone-dependent glucose dehydrogenase. The lower limit of detection is 380 pM (38 fmol) for cocaine. The sampling rate is 26/h. Cocaine could be detected from "real samples" with an imprecision of +/- 10% (n = 3) and with a recovery of 49 +/- 3% for various concentrations. AFIA is generally important as a new approach for the fast detection of picomolar concentrations of haptens.

Alkaline Phosphatase↗

Purification and characterization of the constitutive form of laccase from the basidiomycete Coriolus hirsutus and effect of inducers on laccase synthesis.

An isolate of Coriolus hirsutus constitutively expresses substantial amounts of extracellular laccase on a defined growth medium. The most efficient inducer of extracellular laccase synthesis was syringaldazine, which increased the enzyme yield by 1000% at a concentration of 0.11 microM. The constitutive form of the enzyme was purified 312-fold. Laccase from C. hirsutus, with an estimated molecular mass of 55 kDa and pI of 4.0, is a monomeric glycoprotein containing 12% carbohydrate consisting of mannose and N-acetylglucosamine. The laccase was found to contain 3.9-4.1 copper atoms per molecule. The absorption spectrum shows a maximum at 610 nm and a shoulder at 330 nm, which is typical of laccase possessing type 1 and type 3 copper atoms. The parameters of the first type of copper were determined by EPR as g perpendicular=2.046 and g parallel=2.200, A parallel=8.103 x 10(-3) cm-1. Laccase was found to be a pH-stable and thermostable enzyme. With organic substrates it exhibits a pH optimum of 4.5, but with the inorganic substrate K4[Fe(CN)6] this decreased to 3.5. The highest efficiency of catalysis was observed with sinapinic acid as the substrate. The kinetic constants kcat and Km of this reaction were 578 s-1 and 24 microM respectively. It was established that the kinetics of the assayed reaction shows a Ping Pong mechanism.

Amino Acids↗

Catecholamine detection using enzymatic amplification.

Different amplification sensors based on the substrate recycling principle were investigated with respect to their applicability to catecholamine detection. In the bioelectrocatalytic approach, glassy carbon electrodes were modified by laccase or a PQQ-dependent glucose dehydrogenase. Substrate recycling occurs and the detection limit is in the lower nanomolar concentration range (e.g. 10 nM dopamine and 1 nM noradrenaline for the laccase- and glucose dehydrogenase-modified electrodes, respectively). Combinations of glucose dehydrogenase with laccase or tyrosinase were investigated as bienzymatic probes. Among the systems we studied, the laccase/glucose dehydrogenase sensor is the most sensitive (detection limit: 0.5 nM adrenaline). The selectivities of the different sensor systems are discussed. Application of the laccase/glucose dehydrogenase electrode in different media (i.e. brain homogenate, heart effluate) was successfully shown. For samples with high concentrations of interfering substances (uric and ascorbic acid), the interferences can be effectively removed using enzymatic methods.

Biosensing Techniques↗

Ultrasensitive bienzyme sensor for adrenaline.

A biosensor consisting of an analyte-recycling two-enzyme system using laccase (Coriolus hirsutus) and PQQ-dependent glucose dehydrogenase in combination with the electrochemical detection of oxygen depletion at a platinum electrode was used for adrenaline determination in the nano- and subnanomolar concentration range. Measurements were performed in a flow cell providing excellent baseline stability and fast recovery of the sensor. Improved design of the polymer matrix resulted in a lower detection limit of 200 pmol/l for adrenaline. The sensor has successfully been applied to the analysis of adrenaline in effluate of isolated rabbit hearts.

Animals↗

Zeptomole-detecting biosensor for alkaline phosphatase in an electrochemical immunoassay for 2,4-dichlorophenoxyacetic acid.

A bienzyme substrate-recycling biosensor in a flow injection analysis system is described for the sensitive measurement of alkaline phosphatase (ALP) and applied to the fast readout of a competitive immunoassay for the widely used pesticide 2,4-dichlorophenoxyacetic acid (2,4-D). The phenol-indicating biosensor consists of a Clark-type electrode covered by a membrane with coentrapped tyrosinase and quinoprotein glucose dehydrogenase. ALP dephosphorylates phenyl phosphate to phenol (K(m) = 36 microM) outside the flow system. Phenol is oxidized in the sensor membrane by the oxygen-consuming tyrosinase via catechol to o-quinone. The quinone is reconverted to catechol by glucose dehydrogenase. This substrate cycling results in a 350-fold amplified sensor response to phenol. The oxygen consumption of the enzyme couple in the presence of phenol is monitored as a decrease in current. A total of 3.2 fM ALP (320 zmol/ 100 microL) has been detected after a 57.5 min incubation with phenyl phosphate. All involved reagents are stable over the time of measurement. The sensor does not produce any measurable blank signals. The immunoassay detects 0.1 microgram/L 2,4-D, the maximum concentration for pesticides allowed in drinking water by European Community regulations. The applicability of this biosensor for fast immunoassay readout is demonstrated by a 2 min incubation. By comparison, a standard photometric method (p-nitrophenyl phosphate) requires overnight incubation.

2,4-Dichlorophenoxyacetic Acid↗

Biosensor based on an enzyme modified electrode for highly-sensitive measurement of polyphenols.

The use of glucose dehydrogenase from Acinetobacter calcoaceticus for highly sensitive measurement of polyphenols, based on bioelectrocatalytic analyte recycling, has been demonstrated. A polyphenol (analyte) is oxidized on the surface of a glassy carbon electrode at an anodic potential and is regenerated by immobilized glucose dehydrogenase (GDH) in the presence of glucose, resulting in an amplified response. The dynamic properties of the enzyme-modified glassy carbon electrode allow the convenient monitoring of subnanomolar analyte concentration. The detection limits for p-aminophenol and norepinephrine are 0.2 nM and 0.5 nM, respectively.

Acinetobacter↗

A new sensitive and simple method for detection of catecholamines from adrenal chromaffin cells.

A biosensor was used for the analysis of catecholamines in media and lysates of cultured bovine adrenal chromaffin cells. The sensor is composed of coimmobilised laccase and glucose dehydrogenase coupled with an oxygen electrode, using the catalytic effect of cate cholamines for glucose oxidation in this system. The analysis time is almost 5 min. The correlation between the biosensor and HPLC determination is 0.99.

Adrenal Medulla↗

Amperometric bi-enzyme based biosensor for the detection of lactose--characterization and application.

Based on the glucose oxidase-beta-galactosidase sequence an enzyme probe for the specific determination of lactose has been developed. beta-Galactosidases from different sources have been compared, the sensor containing beta-galactosidase from Curvularia inaequalis has been characterized in respect of optimal pH, enzyme loading, apparent activity and functional stability. The response of the bi-enzyme probe depends linearly on lactose concentration between 0.02 and 3.00 mmol dm-3. The application to different milk and foodstuff samples resulted in good correlations toward enzymatic photometric (y = (0.956x-1.67) mmol dm-3) and infrared detection (y = (1.0772x-0.3909)%). Using a measuring frequency of 100 h-1 the serial imprecision is about 2% for diluted milk, urine, or foodstuff samples.

Animals↗

Comparative studies on the accessibility and functional importance of tyrosine residues in cytochrome P-450 isozymes.

Cytochromes P-450 LM2 and P-450 LM4 from rabbit liver microsomes were chemically modified with tetranitromethane. Nitration of two tyrosine residues of both isozymes inhibits the benzphetamine N-demethylase activity of P-450 LM2 as well as the p-nitrophenetole O-deethylase activity of P-450 LM4 by about 80%. For identification of the modified tyrosine residues the inactivated enzymes were digested with trypsin, and the labeled peptides were separated by HPLC. Sequencing of the 3-nitrotyrosine-containing peptides from cytochrome P-450 LM2 showed that the tyrosine residues at positions 235 and 380 were nearly fully nitrated, while Tyr-348, Tyr-484 and Tyr-111 were only partially labeled (about 40-50%). In the presence of the heme-binding inhibitor metyrapone, Tyr-380 is partially protected against modification, and the extent of inactivation is diminished as well. These results suggest that Tyr-380 of cytochrome P-450 LM2 presents a catalytically essential amino acid residue at its active center. Sequence analyses of the 3-nitrotyrosine-containing peptides from cytochrome P-450 LM4 revealed that mainly Tyr-243 and Tyr-271 were labeled, whereas Tyr-71, Tyr-188 and Tyr-365 are modified to a lower extent (about 30-45%). Tyr-243 and Tyr-271 of cytochrome P-450 LM4 are suggested to be functionally involved in the interaction with NADPH-cytochrome P-450-reductase.

Amino Acid Sequence↗

Chemical modification of cytochrome P-450 LM2. Characterization of tyrosine as axial heme iron ligand trans to thiolate.

Phenobarbital-inducible isozyme cytochrome P-450 LM2 (RH, reduced-flavoprotein:oxygen oxidoreductase (RH-hydroxylating), EC 1.14.14.1) from rabbit liver microsomes has been modified with N-acetylimidazole and tetranitromethane. Up to four tyrosine residues of cytochrome P-450 LM2 are accessible to O-acetylation and to nitration. N-Demethylase activity, spectral dissociation constants and substrate binding kinetics of differently acetylated enzyme indicate the existence of two groups of accessible tyrosines also differing in their reactivity towards N-acetylimidazole. The fast-reacting tyrosine residue representing the first group is involved in the binding of the type II substrate aniline and appears to be located near the heme as shown by the protecting effect of the inhibitor metyrapone against modification, but obviously is not necessary for N-demethylation. Acetylation of one further tyrosine residue, however, caused an almost complete inhibition of the enzyme, indicating its involvement in the catalytic mechanism at the active center. Nitration of two tyrosine residues inactivates to about 20%. Obviously the third and fourth tyrosine residue are without functional importance. The experiments evidencing two functionally linked tyrosines are in line with HPLC analyses of tryptic peptides of cytochrome P-450 LM2 nitrated in the presence of metyrapone which gave evidence for the location of two distinct tyrosine residues in the active center. Nitration of tyrosine residues results in the partial formation of a hyperporphyrin spectrum of cytochrome P-450 LM2. Its appearance is prevented in the presence of metyrapone and can be reversed by reduction of the nitrotyrosinate .

Acetylation↗

Selective chemical modification of a functionally linked lysine in cytochrome P-450 LM2.

Fluorescein isothiocyanate (FITC) has been selectively bound to the epsilon-amino group of lysine-382 in cytochrome P-450 LM2 (RH, reduced-flavoprotein: oxygen oxidoreductase (RH-hydroxylating), EC 1.14.14.1) at pH 8.15. Benzphetamine N-demethylase activity of the reconstituted FITC-modified cytochrome P-450 LM2 was inhibited by 25%. This inhibition has been shown to be due to an impaired electron transfer from the NADPH-cytochrome P-450 reductase (NADPH: ferricytochrome oxidoreductase, EC 1.6.2.4) to the haemoprotein. The data indicate that cytochrome P-450 interacts with the flavoprotein via electrostatic interactions.

Animals↗

Identification of lysine (384) in cytochrome P-450 LM2 as functionally linked residue.

Fluorescein isothiocyanate was selectively bound to the epsilon-amino group of a lysine residue of cytochrome P-450 LM2 at rho H 8.15. The decrease in the N-demethylase activity after modification evidences the functional importance of the modified group. After tryptic digestion the FITC-labeled peptide was isolated by means of HPLC and its amino acid composition determined. It was shown that the FITC-peptide can be attributed to the sequence Gly (379)- Arg (400) and that the label is selectively bound to Lys (384).

Amino Acid Sequence↗

Chemical modification of tyrosine residues at the active centre of cytochrome P-450 CAM.

Soluble cytochrome P-450 CAM from Pseudomonas putida (EC 1.14.14.1) was chemically modified with tetranitromethane. At least five out of totally nine tyrosine residues are accessible to nitration as shown by tryptic peptide mapping using HPLC. Modification in the presence of the inhibitor metyrapone and subsequent peptide mapping indicate the location of one tyrosine residue at the active centre of cytochrome P-450 CAM.

Aryl Hydrocarbon Hydroxylases↗

Carp insulin: amino acid sequence, biological activity and structural properties.

The amino acid sequence of insulin of carp (Cyprinus carpio) has been determined and correlated with its biological activity in a fat-cell test and its structural properties as measured by circular dichroism and sedimentation analysis. The amino acid sequence of carp insulin displays some unusual features: the B chain is longer at the N terminus by two residues as compared with mammalian insulins and there are substitutions of the charged residues, found in most insulins at positions B21 and B22, by proline and threonine respectively. On the other hand, all amino acid residues essential for biological activity and for the association of insulin monomers are the same in carp insulin. Accordingly, the half-maximal response in a fat-cell test is reached with carp insulin at concentrations which are only three times higher than with porcine insulin and the maximal response is the same. The circular dichroism spectrum of carp insulin resembles greatly that of bovine insulin indicating that it has a similar spatial structure. Despite amino acid substitutions in the dimer-dimer contact region, carp insulin is able to form hexamers.

Adipose Tissue↗