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Simultaneous determination of ormethoprim and sulphadimethoxine in plasma and muscle of Atlantic salmon (Salmo salar).

A rapid clean-up and high-performance liquid chromatographic method for the simultaneous determination of ormethoprim and sulphadimethoxine in plasma and muscle of Atlantic salmon (Salmo salar) has been developed. Sample preparation is based on protein precipitation using trichloroacetic acid or methanol for plasma and muscle, respectively. The drugs are separated using a reversed-phase C18 analytical column and phosphate buffer-acetonitrile (80:20, v/v) containing 1-heptanesodiumsulphonate and triethylamine, as mobile phase. Detection was performed at 270 nm. The average recovery of ormethoprim was 97.2% in muscle and 95.7% in plasma, whereas the average recovery of sulphadimethoxine was 86.5% in muscle and 90.2% in plasma. The limit of detection at a signal-to-noise ratio of 3 was 50 ng/g and 30 ng/ml for ormethoprim in muscle and plasma respectively and 30 ng/g and 15 ng/ml in muscle and plasma respectively for sulphadimethoxine.

Animals↗

Simultaneous determination of 12 steroids by isotope dilution liquid chromatography-photospray ionization tandem mass spectrometry.

BACKGROUND: Serum steroid assays play an important role in the clinical evaluation of a number of common endocrine disorders. Among various assays, tandem mass spectrometry (MS/MS) has being increasingly applied in clinical laboratories for its high sensitivity, specificity, and simultaneous multi-analyte quantitation capability. Our first generation isotope dilution steroid profile assay by HPLC-tandem MS/MS with a C-18 column allowed for the measurement of 9 steroids in 18 min employing a sample volume of 760 ul serum. We describe our second generation steroid profile assay which allows for the quantitation of 12 steroids simultaneously employing HPLC-MS/MS and isotope dilution tandem MS in 11 min. This method requires a sample volume of 200 microl. METHODS: An API-5000 triple-quadrupole mass spectrometer (Sciex, Concord, Canada) coupled with the PhotoSpray source and Shimadzu HPLC system (Shimadzu Scientific Instruments, Columbia, MD) was used employing isotope dilution with deuterium labeled internal standard (IS) for each analyte. Two hundred microliters of serum were deproteinized by adding 300 microl of acetonitrile containing internal standards. After centrifugation, 450 microl of supernatant were diluted with 900 microl of water and 1000 microl aliquot were injected onto a C-8 column. After a 3 min wash the valve was activated to initiate the gradient elution program which eluted the steroids. Quantitation by MRM analysis was performed both in positive ion mode for 11 analytes and in negative ion mode for aldosterone. Within-day and between-day precision, reliability and accuracy of this method were assessed by correlation with other MS/MS and immunoassay methods and by recovery study. RESULTS: Within-day CVs were <11.5% for all analytes tested and between-day CVs ranged from 3.5% to 12.2%. The results of the comparison study yield r values ranging between 0.908 and 0.999. Recovery ranged from 90% to 110%. CONCLUSIONS: This method can simultaneously measure 12 steroids in serum within 11 min with minimal sample preparation. It can be routinely employed in a clinical environment and is attractive because of its simplicity in sample processing and high throughput.

Chromatography, High Pressure Liquid↗

Scanning microprobe matrix-assisted laser desorption ionization (SMALDI) mass spectrometry: instrumentation for sub-micrometer resolved LDI and MALDI surface analysis.

A new instrument and method is described for laterally resolved mass spectrometric surface analysis. Fields of application are in both the life sciences and the material sciences. The instrument provides for imaging of the distribution of selected sample components from natural and artificial surfaces. Samples are either analyzed by laser desorption ionization (LDI) time-of-flight mass spectrometry or, after preparation with a suitable matrix, by matrix-assisted laser desorption ionization (MALDI) mass spectrometry. Areas of 100 x 100 microm are scanned with minimal increments of 0.25 microm, and between 10,000 and 160,000 mass spectra are acquired per image within 3 to 50 min (scan rate up to 50 pixels per s). The effective lateral resolution is in the range of 0.6 to 1.5 microm depending on sample properties, preparation methods and laser wavelength. Optical investigation of the same sample area by UV confocal scanning laser microscopy was found to be very attractive in combination with scanning MALDI mass analysis because pixel-identical images can be created with both techniques providing for a strong increase in analytical information. This article describes the method and instrumentation, including first applicational examples in elemental analysis, imaging of pine tree roots, and investigation of MALDI sample morphology in biomolecular analysis.

Algorithms↗

Determination of benzoic and sorbic acids in packaged vegetable products. Comparative evaluation of methods.

Three analytical methods for determining sorbic and benzoic acids in various packaged vegetable products were evaluated, with special attention being paid to green olives. Two of these methods used a simple, isocratic, reversed-phase HPLC technique for separating and detecting the preservatives, but differed in the preparation of the sample (extraction with 60% methanol or steam distillation). The third method was based on separation by steam distillation and determination of the acids in the distillate by spectrophotometry. For the olives, while this method proved to be excellent (total error < 25%) for high concentrations (> 100 ppm), the HPLC methods were more efficient for the whole range of concentrations studied (5-500 ppm). Both HPLC methods had detection limits of approximately 1 ppm for the two preservatives. With other sample matrices (tomatoes, cucumbers, caperberries, silver-skinned onions and hot peppers), the three methods proved to be excellent for high concentrations of preservatives (500 ppm), but at low levels (20 ppm), the spectrophotometric method and the HPLC method with extraction by 60% methanol proved to be unacceptable (total error > 50%) in some cases.

Benzoates↗

Assessment of human exposure to chemical contaminants in foods.

One of the most important factors in assessing risk to human health from potentially harmful chemicals in foods is the availability of good data on the exposure of the public to such substances. The means of acquiring these data generally involves monitoring programmes using appropriate sampling procedures and reliable analytical methods for measuring the compounds of concern in a variety of substrates. Two approaches are generally employed: a biological monitoring programme which measures substances in human fluids and tissues, and a food analysis monitoring programme, preferably a total diet study, wherein food is prepared for consumption prior to analysis. The choice of approach to use and chemicals to monitor depend on the situation within a particular country. The analysis of food has the advantage of short term impact since problems can be identified relatively quickly and control measures established. Biological monitoring on the other hand tends to indicate both accumulated and current exposure from all sources, including air, water and food. In Canada both approaches have been used for a number of years with major surveys of human milk and adipose tissue, and the total diet study, being conducted approximately every five years. Details of these programmes together with some of the pertinent findings are presented.

Animals↗

Food mycotoxins survey and monitoring programs.

Traditionally, mycotoxin problems have come to our attention mainly because of outbreaks of animal diseases and in several instances human diseases and there are then related to a mycotoxin as the causative agent. Undoubtedly this will continue to be a very important means for uncovering mycotoxin problems. However, in recent years, now that practical, sensitive analytical methods have become available, we have been able to seek out mycotoxin contamination, monitor problem foods and survey problem foods for a number of mycotoxins. Examples of effective programs, and effective peanut control program; import, export and manufacturing quality control programs are presented. Points of testing, sampling, sample preparation; types of tests such as screening, multidetection chemical and confirmation tests are discussed.

Food Analysis↗

[Determination of LF-VD refining furnace slag by X ray fluorescence spectrometry].

Eight components, i.e. TFe, CaO, MgO, Al2O3, SiO2, TiO2, MnO and P2O5 in refining furnace slag were determined by X ray fluorescence spectrometer. Because the content of CaO was high, the authors selected 12 national and departmental grade slag standard samples and prepared a series of synthetic standard samples by adding spectrally pure reagents to them. The calibration curve is suitable to the sample analysis of CaO, MgO and SiO2 with widely varying range. Meanwhile, the points on the curve are even. The samples were prepared at high temperature by adding Li2B4O7 as flux. The experiments for the selection of the sample preparation conditions about strip reagents, melting temperature and dulition ratio were carried out. The matrix effects on absorption and enhancement were corrected by means of PH model and theoretical alpha coefficient. Moreover, the precision and accuracy experiments were performed. In comparison with chemical analysis method, the quantitative analytical results for each component are satisfactory. The method has proven rapid, precise and simple.

English Abstract↗

Determination of pyridostigmine bromide and its metabolites in biological samples.

Pyridostigmine bromide (PB) is a quartenary ammonium compound that inhibits the hydrolysis of acetylcholine by competitive reversible binding to acetylcholinesterase. PB is used for the symptomatic treatment of myasthenia gravis and has been applied as a prophylaxis against nerve agents. Many studies on PB have involved the reliance on techniques that extract and quantify PB in biological samples. This article presents an overview of the currently applied methodologies for the determination of PB and its metabolites in various biological samples. Articles published from January 1975 to the July 2005 were taken into consideration for the discussion of the metabolism and analytical method of PB. HPLC and GC methods have been used and discussed in most of the references cited in this review. Other methods such as RIA and CE that have been recently reported are also mentioned in this article. Basic information about the type of sample used for analysis, sample preparation, chromatographic column, mobile phase, detection mode and validation data are summarized in a table.

Animals↗

A new approach to the effective preparation of plasma samples for rapid drug quantitation using on-line solid phase extraction mass spectrometry.

A procedure that permits rapid development of an optimized solid phase extraction (SPE) method for the analysis of drugs in plasma by on-line solid phase extraction-mass spectrometry (SPE-MS) has been developed. This procedure employs the concept of manipulating the pH and the percentage of organic solvent in the chromatographic mobile phase to affect the retention behaviors of both the matrix components and the analytes of interest. This resulted in the effective removal of matrix interferences from biological samples during SPE. During a the method development, only generic HPLC gradient approaches were needed, and multiple samples were pooled so that several SPE methods could be investigated at once. The analysis time per sample was 1.3 minutes. Thus, the time involved in the entire method development (analysis of a set of samples) was less than one hour. With the knowledge of the retention behaviors of the analytes with respect to the pH and the percentage of organic, it was then possible to compose an optimized SPE-MS method. This method consisted of a base/organic and then an acid/organic washing step, followed by a rapid gradient elution step. Due to the rigorous washing procedure, most matrix interferences were removed, and analytes eluted off the SPE sorbent suffered from very little matrix interference. Thus, quantitation of drugs in plasma by a single quadrupole mass spectrometer could be accomplished, something that was not possible when only a generic gradient was used for on-line SPE-MS. In addition, both external and internal calibration curves could be obtained for the concentration range from 5 to 500 ng/mL with correlation coefficients of 0.99 (using 1/x as a weighting factor) and relative standard deviations (RSDs) less than 10%. The results achieved were comparable to those obtained by the use of a triple quadrupole mass spectrometer. Moreover, the robustness of the method was tested by continuously injecting plasma samples. During 136 runs, the absolute peak area variation for these three basic drugs was less than 15% without taking the signal variation from the mass spectrometer into account. Significantly, the on-line developed method can be directly transferred to a 96-well format SPE plate.

Calibration↗

Liquid chromatographic determination of the fungicide iprodione in surface water, using on-line preconcentration.

A new method for on-line sample preparation of surface water extracts for the reversed phase HPLC analysis of the fungicide iprodione at the ppb level is presented. Water samples are extracted with dichloromethane and after concentration and evaporation to dryness, taken up in a mixture of acetonitrile/water. 2-Ml aliquots are injected onto a small precolumn, which is subsequently flushed with 20% acetonitrile in water as a clean-up step. The precolumn is switched on-line with the analytical column, and, using 47.5% acetonitrile in water as the eluent, the concentrated zone of iprodione is desorbed and transported to the analytical column. Detection takes place with UV at 229 nm. The resulting chromatograms are free of interferences. The detection limit of the method in 0.02 ppb. Good reproducibility and linear calibration curves are obtained. The results of the method are in agreement with those of capillary GC analysis with cold-on-column injection. The advantage of the method compared to GC is the lower susceptibility to errors due to the presence of interferences.

Aminoimidazole Carboxamide↗

Oral platelet aggregation inhibitor Ro 48-3657: determination of the active metabolite and its prodrug in plasma and urine by high-performance liquid chromatography using automated column switching.

A sensitive and highly automated high-performance liquid chromatography (HPLC) column-switching method has been developed for the simultaneous determination of the active metabolite III and its prodrug II, both derivatives of the oral platelet inhibitor Ro 48-3657 (I), in plasma and urine of man and dog. Plasma samples were deproteinated with perchloric acid (0.5 M), while urine samples could be processed directly after dilution with phosphate buffer. The prepared samples were injected onto a pre-column of a HPLC column switching system. Polar plasma or urine components were removed by flushing the precolumn with phosphate buffer (0.1 M, pH 3.5). Retained compounds (including II and III) were backflushed onto the analytical column, separated by gradient elution and detected by means of UV detection at 240 nm. The limit of quantification for both compounds was 1 ng/ml (500 microl of plasma) and 25 ng/ml (50 microl of urine) for plasma and urine, respectively. The practicability of the new method was demonstrated by the analysis of about 6000 plasma and 1300 urine samples from various toxicokinetic studies in dogs and phase 1 studies in man.

Animals↗

The application of ion chromatographic method for bioavailability and stability test of iron preparations.

Postabsorptive serum iron level was determined after oral administration of the compounds to human. In serum and whole blood, Fe3+ was measured by ion chromatography (IC) using a pyridine-2,6-dicarboxylic acid (PDCA) as an eluent. The serum sample solutions were pretreated with I N HCI and 50% TCA. The whole blood sample solutions were treated with 3 N HCI for 30 min at 125 degrees C. The limit of detection (LOD) of the IC technique is 0.2 microM for Fe2- and 0.1 microM for Fe3+. The area under concentration (AUC) can be obtained by the above analytical condition. In addition, to compare the stability of Fe2+ to that of Fe3+ in pharmaceutical preparations, accelerated stability test was carried out. After storing the samples under 40 degrees C, 75%RH in light-resistant container for various time intervals, the contents of iron of different valencies were determined separately by the IC technique and the change and/or the interchange of among those iron species in preparations was investigated. Iron raw materials are stable, but Fe2+ in Fe3+ source materials was slightly converted to Fe3+ by oxidation. Fe2+ in Fe3+ source raw materials and Fe3+ in Fe2+ raw materials are determined as impurities. Therefore, IC technique is found to be an appropriate method for comparative evaluation of dissimilar bioavailability of Fe2+ and Fe3+, stability of Fe2+ and Fe3+ raw materials and preparations.

Biological Availability↗

Determination of pyrimidine ribotide and deoxyribotide pools in cultured cells and mouse liver by high-performance liquid chromatography.

High-performance liquid chromatographic (HPLC) assay for determining tissue pools of uridine, deoxyuridine, cytidine, deoxycytidine, and thymidine mono-, di-, and triphospates is presented. The method utilizes anion-exchange and, after conversion of nucleotides to nucleosides by acid phosphatase, reversed-phase chromatography on a preparative column with UV detection at 254 and 280 nm. The yield of this procedure is 80 +/- 2% with a sensitivity limit of 100 pmole nucleotide per sample. A sensitivity of 10 pmole can be achieved for each compound by rechromatographing appropriate nucleoside fractions on analytical columns. The recovery, including this step, is 66 +/- 7%. The assay is reproducible and highly selective, with a lower sensitivity limit of approximately 0.1 muM using 150--250 mg (wet weight) tissue samples. Nucleotide pools have been determined in Balb/c mouse liver and in mouse lymphoma (S-49) cell culture, the latter with and without addition of 5-fluorouracil (5-FUra) to the medium. Data obtained with this assay are similar to those using alternative methodologies. Observed depletion of dTXP pools and expansion of dUMP and dCXP pools after 5-FUra treatment are in agreement with published observations. Pools of dUDP and dUTP were not detectable (less than 10 pmole/10(8) cells) in any tissue sample. These data illustrate the utility of the present method in studying actions of pyrimidine antimetabolites.

Animals↗

Determination of creatinine in human serum by isotope dilution-mass spectrometry. Definitive methods in clinical chemistry, IV.

A method for the determination of creatinine in human serum by isotope dilution-mass spectrometry is described. The analytical procedure comprises the following steps: Addition of [13C,15N2 )creatinine to the serum sample; ion exchange chromatography on the cation exchange resin AG 50W-X2; formation of the trimethylsilyl derivative; gas liquid chromatography-mass spectrometry (GC-MS); selected ion monitoring (SIM) at the m/z-values 329 and 332; calculation of the amount of creatinine in the serum sample from the isotope ratio, as measured by GC-MS. [13C,15N2]Creatinine was prepared by chemical synthesis. The substance is then used as internal standard for the measurement of creatinine in serum samples. The imprecision of the method was in the range from 0.35 to 1.05% (coefficient of variation) as determined by repetitive measurements of creatinine in 13 different control sera on different occasions. The lower limit of detection of the mass spectrometer in the selected ion monitoring mode is about 0.5 ng creatinine with a signal to noise ratio of 3:1 The accuracy of the method is achieved by the use of the isotope dilution principle in combination with GC-MS. In view of the high specificity and exact control of recovery, the procedure for the measurement of creatinine in human serum, as described here, may be considered as a definitive method in clinical chemistry.

Chromatography, High Pressure Liquid↗

Determination of MDMA and its metabolites in blood and urine by gas chromatography-mass spectrometry and analysis of enantiomers by capillary electrophoresis.

A gas chromatography-mass spectrometry (GC-MS) method was used for the simultaneous quantitation of 3,4-methylenedioxymethamphetamine (MDMA) and the 3,4-methylenedioxyamphetamine (MDA), 4-hydroxy-3-methoxymethamphetamine (HMMA), and 4-hydroxy-3-methoxyamphetamine (HMA) metabolites in plasma and urine samples after the administration of 100 mg MDMA to healthy volunteers. Samples were hydrolyzed prior to a solid-phase extraction with Bond Elut Certify columns. Analytes were eluted with ethyl acetate (2% ammonium hydroxide) and analyzed as their trifluoroacyl derivatives. Linear calibration curves were obtained at plasma and urine concentration ranges of 25-400 ng/mL and 250-2000 ng/mL for MDMA and HMMA, and of 2.5-40 ng/mL and 100-1000 ng/mL for MDA and HMA. Following the same urine preparation procedure but without the derivatization step, a capillary electrophoresis (CE) method for enantiomerical resolution of compounds was developed using (2-hydroxy)propyl-beta-cyclodextrin at two different concentrations (10 and 50mM in 50mM H3PO4, pH 2.5) as chiral selector. Calibration curves for the CE method were prepared with the corresponding racemic mixture and were linear between 125 and 2000 ng/mL, 50 and 1000 ng/mL, and 125 and 1500 ng/mL for each enantiomer of MDMA, MDA, and HMMA, respectively. Stereoselective disposition of MDMA and MDA was confirmed. HMMA disposition seems to be in apparent contradiction with MDMA findings as the enantiomer ratio is close to 1 and constant over the time.

3,4-Methylenedioxyamphetamine↗

A rapid isocratic high-performance liquid chromatography method for determination of cholesterol and 1,2-dioleoyl-sn-glycero-3-phosphocholine in liposome-based drug formulations.

A high-performance liquid chromatography (HPLC) method for the determination of cholesterol and 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC) in liposome-based drug formulations has been developed. Liposome formulations of anticancer agents (viz., paclitaxel, docetaxel, 7-ethyl-10-hydroxycamptothecin (SN38), doxorubicin, mitoxantrone and an antisense oligodeoxyribonucleotide, etc.) were prepared. These formulations contain DOPC, cholesterol and other lipids, such as tetramyristoyl cardiolipin or 1,3-bis(1,2-bis-tetradecyloxy-propyl-3-dimethylethoxyammonium bromide)propan-2-ol [(R)-PCL-2] in product-specific ratios. A simple HPLC method that uses isocratic elution and UV detection has been developed for simultaneous quantification of cholesterol and DOPC components of the liposome formulations. The chromatographic separation of these components is achieved using a C8 analytical column with 50 mM ammonium phosphate buffer (pH 2.7)-methanol (15:85, v/v) as mobile phase. Both cholesterol and DOPC peaks are well resolved and free of interference from other excipients or degraded impurities in the formulation. The method has been found to be linear (r > 0.999) over a wide concentration range of both analytes. This method offers the advantage of simultaneous quantitation of cholesterol and DOPC in various liposome-based formulations without any preprocessing of the sample, and has quantitation limits of 0.5 and 10 microg/mL for cholesterol and DOPC, respectively.

Cholesterol↗

Separation of proteins with a molecular mass difference of 2 kDa utilizing preparative double-inverted gradient polyacrylamide gel electrophoresis under nonreducing conditions: application to the isolation of 24 kDa human growth hormone.

A method for separating proteins with a molecular mass difference of 2 kDa using SDS-PAGE under nonreducing conditions is presented. A sample mixture containing several human growth hormone (hGH) isoforms was initially separated on a weak anion-exchange column. Fractions rich in 24 kDa hGH as determined by analytical SDS-PAGE were pooled and further separated by cation-exchange chromatography. The fractions pooled from the cation-exchange chromatography contained two hGH isoforms with a 2 kDa molecular mass difference according to SDS-PAGE analysis, 22 and 24 kDa hGH. The 22 and 24 kDa hGH were separated using continuous-elution preparative double-inverted gradient PAGE (PDG-PAGE) under nonreducing conditions. The preparative electrophoresis gel was composed of three stacked tubular polyacrylamide matrices, a 4% stacking gel, a 13-18% linear gradient gel, and a 15-10% linear inverted gradient gel. Fractions containing purified 24 kDa hGH were pooled and Western blot analysis displayed immunoreactivity to antihGH antibodies. PDG-PAGE provides researchers with an electrophoretic technique to preparatively purify proteins under nonreducing conditions with molecular mass differences of 2 kDa.

Chromatography↗

Chromatographic separation of carotenoids.

The carotenoids are extremely reactive and consequently unstable due to their long system of conjugated double bonds. Several precautions, such as protection against light and oxygen, use of low temperature and antioxidants, analysis in the shortest possible time, should be taken during isolation and chromatography. The food samples, preferably fresh, are homogenized and immediately extracted with a suitable organic solvent. Saponification has been employed in order to hydrolyze the carotenoid esters, remove fatty material and destroy chlorophyll. This optional step facilitates subsequent carotenoid separation, identification and quantification. The separation of carotenoids is usually carried out by column chromatography, thin layer chromatography and high performance liquid chromatography, in analytical or preparative scale, on many stationary phases such as silica-gel, alumina, MgO, Ca(OH)2 and reversed-phase material (C18 and C30). The choice of the most suitable chromatographic method depends on the amount of sample, carotenoid composition, resolution, speed and purity required. Examples of carotenoid separation in different stationary phases will be shown and discussed.

Carotenoids↗