PubMed Health⌕ Search

Biomedical subjects

G Palleschi

Publications and source records attributed to G Palleschi.

At least 37 records · Page 2Linked to original sources

Construction and analytical characterization of Prussian-Blue-based carbon paste electrodes and their assembly as oxidase enzyme sensors.

This paper reports on the development and characterization of Prussian Blue-modified carbon paste electrodes. New methods of matrix modification with Prussian Blue are reported. Two different carbon pastes have been prepared, using mineral oil or solid paraffin, thus obtaining different types of sensors whose behavior toward the electrochemical reduction of hydrogen peroxide has been fully characterized. Results obtained with Prussian Blue-modified electrodes showed a long operational lifetime, an excellent stability in a wide range of pH (3-9), a high sensitivity, and a fast response time. In addition, the coupling of solid carbon paste modified with Prussian Blue and the enzymes glucose oxidase and choline oxidase led to the assembling of biosensors that showed an optimum working range at alkaline pH.

Journal Article↗

Immunodetection of lactosylated proteins as a useful tool to determine heat treatment in milk samples.

This paper reports the optimisation of a competitive immunoassay (ELISA) to detect lactosylated proteins in milk samples. The assay employs monoclonal antibodies for lactosylated proteins produced in our laboratory and requires no pre-treatment of the samples other than a dilution step. Monoclonal antibodies were fully characterised in terms of selectivity and cross-reactivity with structurally related molecules and used in a competitive assay format with lactosylated standard proteins (lactosylated ovalbumin). The detection limit for lactosylated ovalbumin was 0.015 microgram ml-1 and the working range was from 0.010 to 40 micrograms ml-1. The data obtained indicate that the ELISA developed is applicable to diluted milk samples and is able to distinguish between milk samples that have undergone different heat treatments (UHT and pasteurised milk).

Animals↗

A new electrochemical enzyme-linked immunosorbent assay for the screening of macrolide antibiotic residues in bovine meat.

A new sensitive electrochemical enzyme-linked immunosorbent assay (ELISA) for the detection of two macrolides (erythromycin and tylosin) in bovine muscle was developed, using the mouse monoclonal antibodies anti-erythromycin and anti-tylosin. The competitive indirect assay was performed using an erythromycin (or tylosin)-BSA conjugate as a coating molecule; after competition between free and coated analytes for the antibodies, the activity of the horseradish peroxidase-labelled antiglobulins was measured electrochemically using 3,3',5,5'-tetramethylbenzidine (TMB) as substrate. The detection limit of the assay was 0.4 ng ml(-1) for erythromycin and 4.0 ng ml(-1) for tylosin, while the sensitivity (25% inhibition concentration) was 1.4 ng ml(-1) for erythromycin and 13.0 ng ml(-1) for tylosin. The specificity of the assay was assessed by studying the cross-reactivity of various macrolides other than erythromycin and tylosin. The results indicate that the monoclonal antibodies anti-erythromycin and anti-tylosin can readily distinguish the target compound from other macrolides, with the exception of roxithromycin, a semisynthetic macrolide antibiotic derived from erythromycin. Fortified and real samples were analysed by the developed ELISA method and results confirmed by micro-LC-MS-MS using an atmospheric pressure ionisation (API) source and an ionspray (IS) interface. The latter provides unequivocal identification and quantification of the analytes at the level of interest. The ELISA assay showed precision (RSD) values ranging from 6.3 to 11.4% for erythromycin and from 7.5 to 12.6% for tylosin; the accuracy (relative error, RE) ranged from -16.0 to -9.8% and from -9.5 to 8.0% for erythromycin and tylosin, respectively. All results obtained demonstrate that the electrochemical ELISA is a suitable method for a sensitive, simple, rapid and reliable screening of the two macrolides in animal tissues.

Animals↗

Rapid assay of choline in foods using microwave hydrolysis and a choline biosensor.

A fast procedure for the determination of choline in food was developed by coupling a microwave hydrolysis procedure with an O(2)/choline oxidase-based electrochemical biosensor. Time and temperature were varied to select the best conditions for the microwave hydrolysis. Results have been compared with those found by the traditional method, constituted by hydrolysis at 70 degrees C followed by enzymatic-colorimetric assay. Data obtained by the biosensor method correlated well with the enzymatic-colorimetric assay (R(2) = 0.998). Microwave versus traditional hydrolysis gave a good correlation both with the colorimetric and with biosensor procedures with a relative error below 6%. The method is sensitive and selective enough to be used for a wide variety of food items reducing remarkably the analysis time.

Biosensing Techniques↗

Development of an electrochemical ELISA for the screening of 17 beta-estradiol and application to bovine serum.

A sensitive electrochemical enzyme-linked immunosorbent assay (ELISA) for the detection of 17 beta-estradiol (17 beta-E2) was developed. Optimisation of two ELISA competition assays, using monoclonal or polyclonal antibodies anti-17 beta-estradiol, coupled with the electrochemical detection was firstly performed. The activity of the label enzyme (horseradish peroxidase) was measured electrochemically using 3,3',5,5'-tetramethylbenzidine as substrate. The use of the polyclonal antibody resulted in a more sensitive assay and the detection limit of the assay was estimated to be 20 pg ml-1. The analytical performances of the method were compared to those obtained using a dissociation enhanced lanthanide fluorescence immunoassay (DELFIA). Although sample extraction is not usually required by DELFIA, both extracted and non extracted samples were assayed. The comparison between the two screening techniques revealed similar results for the extracted samples and showed a comparable precision (RSD%), ranging from 6.2 to 13.4 and from 6.7 to 14.3 for DELFIA and ELISA, respectively. The results obtained by these screening assays were confirmed by liquid chromatography atmospheric pressure chemical ionisation tandem mass spectrometry which is currently used to confirm illegal hormone administration for regulatory purposes. The electrochemical enzyme immunoassay appears suitable as a screening tool for routine analysis of bovine serum estradiol and can be extended to other anabolic hormones using appropriate antibodies.

Animals↗

Rapid antibody biosensor assays for environmental analysis.

Traditionally, biosensor development has focused on molecules with a defined metabolic role that can be exploited by enzyme-based systems. Antibodies have the ability to move beyond this range of analytes, and are particularly useful in detecting small, hapten molecules. Electrochemically based biosensor developments have been less fruitful in this regard, as enzyme labelling is required, and such assays require the separation from bound and unbound species. These separations and the removal of background signals result in the increased complexity of the assay format, making it unsuitable for rapid sensor analysis. We have developed an electrochemical sensor based on antibodies that does not require the separation of bound and unbound molecules in a competition immunoassay format. This removes the need for several washing and separation steps as is normally employed in this type of assay. This allows single-step immunoassays to be performed using this system, and also allows for the real-time monitoring of antibody-antigen interactions. We have shown that such assays are possible in both batch and flow-injection formats and we are currently developing an assay for the pesticide atrazine. Tentative results show that analysis with this system is possible in the p.p.m. to p.p.b. range.

Aniline Compounds↗

Flow injection analysis of mercury(II) in pharmaceuticals based on enzyme inhibition and biosensor detection.

An enzymatic amperometric procedure for measurement of mercury(II) in pharmaceuticals, based on the inhibition of invertase and on a glucose electrode was studied. Analytical parameters for measurements in batch and flow injection analysis (FIA) have been optimised. Mercury(II) was detected in the 10-60 ppb range with RSD < or =2%. A sample throughput of 6 h(-1) for batch and 15 h(-1) for FIA was obtained. The total mercury(II) from thimerosal (thiomersal, sodium ethylmercurithiosalicylate) in eye-drop samples was measured with the amperometric procedure after oxidative cleavage treatment. Results for both batch and FIA procedures correlated well with atomic absorbtion spectroscopy (AAS) data.

Biosensing Techniques↗

Rapid determination of lactulose in milk by microdialysis and biosensors.

A simple and rapid flow system for the determination of lactulose in milk samples was developed. It is based on the hydrolysis of lactulose to galactose and fructose by the enzyme beta-galactosidase immobilised in a reactor. The amount of fructose produced was measured with an electrochemical biosensor based on the fructose dehydrogenase enzyme, K3[Fe(CN)6] as mediator and a platinum based electrochemical transducer. Parameters such as the enzyme immobilisation in the reactor and under the electrode surface, the lifetime of the beta-galactosidase reactor and of the dehydrogenase biosensor and the flow parameters were studied and optimised. Fructose was determined in the range 1 x 10(-6)-5 x 10(-3) mol l-1 with an RSD of about 2% and a detection limit of 5 x 10(-7) mol l-1. The use of a microdialysis probe as the sampling system permitted the direct measurement of lactulose in milk samples without pre-treatment in the range 1 x 10(-5)-5 x 10(-3) mol l-1. The sensitivity of the procedure allowed pasteurised, UHT and in-container sterilised milk to be distinguished.

Animals↗

A new interference-free lysine biosensor using a non-conducting polymer film.

An electrochemical biosensor for the determination of lysine to be used for rapid evaluation of food quality has been developed. Platinum electrodes have been coated by electropolymerisation with 1,2-diaminobenzene (1.2-DAB) using cyclic voltammetry. The reduction in the oxidation of interferents compared with the bare platinum electrode was 100% for ascorbic acid, 99% for acetaminophen and 99% for cysteine. The enzyme L-lysine-alpha-oxidase was then immobilised onto the polymer layer by passive adsorption and a calibration curve for lysine constructed. This gave a linear range of 1 x 10(-5) mol/l to 1 x 10(-3) mol/l and a limit of detection of 2 x 10(-7) mol/l.

Biosensing Techniques↗

Development of a biosensor for monitoring of glycerol during alcoholic fermentation.

A biosensor for the measurement of glycerol in FIA was constructed using covalently immobilized glycerokinase and glycerol-3-phosphate oxidase in conjunction with a Pt based hydrogen peroxide probe. Different immobilization strategies have been studied including random and asymmetric immobilization onto a polymeric support and immobilization onto two different membranes. The latter resulted in the best configuration for batch measurement. The most effective configuration for measurement in FIA was the immobilization of glycerokinase in a glass beads reactor coupled with glycerol-3-phosphate oxidase on a preactivated Immobilon AV membrane kept at the electrode surface. Using a 250-microliter injection loop, 3 mmol ATP(Mg+2) in 0.1 M borate buffer pH 8.5 and a flow rate of 0.5 ml/min, a linear response in the 2 x 10(-6)/10(-3) mol/l range and a detection limit of 5 x 10(-7) mol/l were obtained for glycerol. Lifetime of the glycerol-3-phosphate membrane was extended up to 1 month by storage in the working buffer containing 1% DEAE-dextran and 5% lactitol. More than 350 samples can be assayed with this system. The biosensor was used to monitor off-line glycerol production during alcoholic fermentations carried out at different pHs and temperatures.

Biosensing Techniques↗

[Urothelial neoplasia as a late complication of transitional-cell carcinoma of the bladder].

We evaluated the long term incidence of lower urinary tract neoplasms in patients with primary transitional bladder carcinoma. 8 patients had lower urinary tract neoplasm after a median elapse of time of 44 months (range 28 to 70). In 5 patients wa present vesicoureteral reflux. All the patients were undergone trial of BCG after the first recurrence of bladder carcinoma. We suppose that the vesicoureteral reflux may be the possible cause of ureteral neoplasm onset. Because of patients with primary bladder tumors are at the risk for lower urinary tract neoplasm, we suggest the need regular and continuous monitoring in case of frequent recurrence of transitional cell carcinoma of the bladder.

Adult↗

Assembling and evaluation of new dehydrogenase enzyme electrode probes obtained by electropolymerization of aminobenzine isomers and PQQ on gold, platinum and carbon electrodes.

Pt, Au and graphite electrodes have been coated by electropolymerization of 1,2-, 1,3-, 1,4-diaminobenzene (DAB) and 4-aminobiphenyl in the presence of PQQ using cyclic voltammetry. The activity of the modified electrodes for the oxidation of paracetamol, ascorbic and uric acid was reduced by approximately 90% as compared to the bare electrodes. Polymerization in the presence 4,5-dihydro-4,5-dioxo-1H-pyrrolo(2,3-f)quinoline-2,7,9-tricarboxilic+ ++ acid, pyrroloquinolinequinone (PQQ) led, after optimization, to electrodes capable of catalysing the electrooxidation of beta-nicotinamide adenine dinucleotide, reduced form (NADH), in the range 10(-4)-10(-2) mol/l with a detection limit of 5 x 10(-5) mol/l. Amperometric measurements of NADH have been carried out at +0.2 V and the efficiency of different electrodes based on different materials has been studied. By co-entrapment of dehydrogenase highly selective enzymes, electrodes for glucose, L-lactate and L-glutamate were obtained. Dehydrogenase substrates such as glucose, lactate and glutamate were measured in the range 5 x 10(-5)-1 x 10(-2) mol/l, with detection limits of 10(-5) and 5 x 10(-6) mol/l, respectively. Probe stability under non-dynamic conditions was evaluated over 2 months. All the probes showed a decrease of 10% over 1 month and a residual activity of 50% over 2 months.

Aminobiphenyl Compounds↗

Amperometric ammonium ion and urea determination with enzyme-based probes.

Amperometric enzyme probes for ammonium and urea have been assembled and evaluated using immobilized glutamate dehydrogenase and urease enzymes coupled with platinum electrodes. Analytical parameters such as pH, buffer, temperature, probe life-time, enzyme immobilization, cofactor concentration and response time have been optimized. Ammonium was detected in the range 10(-5)-3 x 10(-4) mol l-1. Better reproducibility and stability were achieved using the enzyme GLDH type III and NADH at a concentration of 10(-3) mol l-1. Urea has been determined in the range 10(-5)-3 x 10(-4) mol l(-1) using the enzyme urease first in solution and then immobilized on nylon net. The analysis was based on an amperometric measurement which gives a linear relationship between current and analyte concentration. This considerably improved the sensitivity of the analysis when compared with the potentiometric-based procedures. Moreover, this method does not suffer from the potassium ion interference which affects the potentiometric nonactin-based NH+4 electrodes. Analysis of ammonium and urea were carried out in standard solutions and in saliva samples. Results compared with a spectrophotometric reference procedure correlated well.

Biosensing Techniques↗

Non-invasive biosensors in clinical analysis.

Several amperometric biosensors have been developed and applied for the non invasive determination of metabolites in body fluids. Advantages of saliva or sweat analysis are the ease of sample collection and that samples can be collected more frequently with much less stress on the patient. An alcohol biosensor has been developed with a hydrogen peroxide based electrode utilizing immobilized alcohol oxidase. Immobilization parameters have been optimized to increase the stability of the enzyme. An auter hydrophobic gas membrane was used to improve the selectivity of the probe. A hydrogen peroxide based amperometric biosensor has also been developed that utilized the enzyme glucose oxidase. The biosensor was applied to the determination of sera and saliva glucose content. Two hydrogen peroxide based amperometric biosensors that utilized lactate oxidase were also developed for determination of lactate in saliva and sweat. To discriminate against electroactive substances, the biosensor for assay of lactate in saliva utilized a dual electrode with one side active and one inactive, while the biosensor for assay of sweat lactate content utilized a hydrophobic hydrogen peroxide membrane to improve selectivity. Lactate content of saliva and sweat samples were measured after an intense physical exercise. A new procedure to measure glucose via transbuccal mucosa was developed using a dual glucose probe similar to that used for lactate. Correlation between glucose in blood and in transbuccal mucosa has been evaluated.

Biosensing Techniques↗

Anticholinesterase activity measurement by a choline biosensor: application in water analysis.

A choline amperometric biosensor was assembled and used to measure the anticholinesterase activity due to compounds (which have the property to inhibit cholinesterase enzymes) present in water samples. This parameter can be used as a 'toxicological index', defined as the amount of compound which causes a certain percentage of cholinesterase inhibition equivalent to a known amount of a reference compound causing the same percentage inhibition. The organophosphorus insecticide Paraoxon, which has proved to be a strong inhibitor of cholinesterase enzymes, was chosen as the reference compound. The analysis was carried out by monitoring the decrease of cholinesterase activity in the presence of a pesticide and a substrate specific for the enzyme whose reaction produces choline. The decrease in choline production was measured by the choline sensor and correlated to the concentration of anticholinesterase compound present in the solution. Parameters such as buffer, pH, temperature and incubation time were optimized. The rate constant Ki was calculated experimentally for Paraoxon and used in the anticholinesterase activity measurements at different fixed incubation times. The probe was calibrated with different standard solutions of Paraoxon. The effect of Paraoxon and heavy metals on the choline probe was evaluated. This probe was then used for the determination of anticholinesterase activity of some organophosphorus pesticides, and heavy metals in spiked waters. Samples were also analysed by liquid/liquid extraction and GC determination. Results seem to correlate with acute toxicity expressed as LD50 (oral, rat). Analysis of water samples from different sources in central Italy were analysed for total anticholinesterase activity (TAA) and compared with a reference procedure.

Biosensing Techniques↗

A flow-through system for the determination of salicylate in blood.

A flow-through system for the determination of salicylate in blood is described. It consists of a Clark-type oxygen probe with the enzyme salicylate hydroxylase chemically bound to polymer supports. This probe, when inserted into a flow-through cell in the presence of salicylate, oxygen and NAD(P)H, produced a current signal proportional to the concentration of salicylate. Salicylate was assayed in the range 10 mumol/l up to 200 mumol/l with a detection limit of 3 mumol/l. Salicylate analysis was optimized by selecting the appropriate pH, buffer, temperature, enzyme immobilization and NAD(P)H concentration. The accuracy of this method was evaluated by recovery studies on 15 sera. Analysis of salicylate in serum sample was performed by diluting samples thirty fold with phosphate buffer to fit the calibration graphs. The response time of the probe was 2 min and 6 min was the time to perform a single analysis. Results compared with the TDx procedure correlated well.

Electrochemistry↗

Analysis for transaminases in serum with an amperometric glutamate electrode.

We determined transaminases in human blood serum with an amperometric glutamate biosensor. The probe was a hydrogen peroxide sensor assembled with appropriate selective membranes to enhance the probe specificity and lifetime. Calibration curves of glutamate were linear in the range 1-1000 mumol/L, with a response time of < 1 min. This probe was subsequently applied to the measurement of activities of aspartate and alanine aminotransferases in human sera. Analytical recovery studies demonstrated the suitability of the glutamate sensor by measuring 91-99% of added glutamate, 92-106% of added aspartate aminotransferase, and 101-105% of added alanine aminotransferase. Transaminase activity measured in 80 sera correlated well with results obtained with a spectrophotometric procedure.

Alanine Transaminase↗

Amperometric alcohol electrode with extended linearity and reduced interferences.

Conventional amperometric alcohol electrodes were constructed with oxygen- and hydrogen peroxide-base sensors and a much improved electrode was designed by placing a hydrophobic, gas-permeable membrane over the conventional hydrogen peroxide-based alcohol electrode. The immobilization of alcohol oxidase with glutaraldehyde was also studied and optimized. The upper linear ranges of the conventional and newly designed alcohol electrodes were 0.02 and 0.5% ethanol, respectively. The hydrophobic membrane of the new design eliminated the classical electrochemical interferences of hydrogen peroxide-based electrodes and the typical pH dependence of enzymatic systems.

Alcohol Oxidoreductases↗