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Flow cytometric analysis of micronuclei in peripheral blood reticulocytes: I. Intra- and interlaboratory comparison with microscopic scoring.

Accumulating evidence suggests that reticulocytes (RETs) in the peripheral blood of rats may represent a suitable cell population for use in the micronucleus assay, despite the ability of the rat spleen to selectively remove micronucleated erythrocytes from the peripheral circulation. To evaluate the analytical performance of a previously described flow cytometric method (Torous et al., 2003, Toxicol. Sci. 74, 309-314) that may allow this assay to be conducted using peripheral blood in lieu of bone marrow sampling, we compared the sensitivity and performance characteristics of the flow cytometric technique with two established microscopy-based scoring methods. Peripheral blood samples from single Sprague-Dawley rats treated for 6 days with either vehicle or cyclophosphamide were prepared in replicate for scoring by the three methods at different laboratories. These blood-based measurements were compared to those derived from bone marrow specimens from the same animals, stained with acridine orange, and scored by microscopy. Through the analysis of replicate specimens, inter- and intralaboratory variability were evaluated for each method. Scoring reproducibility over time was also evaluated. These data support the premise that rat RETs harvested from peripheral blood are a suitable cell population to assess genotoxicant-induced micronucleus formation. The interlaboratory comparison provides evidence of the general robustness of the micronucleus endpoint using different analytical approaches. Furthermore, data presented herein demonstrate a clear advantage of flow cytometry-based scoring over microscopy-significantly lower inter- and intralaboratory variation and higher statistical sensitivity.

Animals↗

Validated HPLC method for determination of chlorzoxazone in human serum and its application in a clinical pharmacokinetic study.

A high performance liquid chromatographic (HPLC) method for the determination of chloroxazone in human serum using phenacetin as internal standard (IS) is described. Protein precipitation is used for preparation of the sample. A mobile phase consisting of acetonitrile and 0.5% acetic acid in water mixture (40:60 v/v) was used at a flow rate of 1 ml/min on a C18 column. The eluate was monitored using an UV/VIS detector set at 287 nm. Ratio of peak area of analyte to IS was used for quantification of serum samples. The absolute recovery was greater than 96% over a concentration range of 1 to 100 micrograms/ml and the limit of quantitation was 0.05 microgram/ml. The intra-day relative standard deviation (RSD) measured at 1, 10, 50, and 100 micrograms/ml ranged from 0.9 to 5.1%. The inter-day RSD ranged from 0.6 to 3.0%. The method is simple, sensitive and has been successfully used in pharmacokinetic study conducted in healthy human volunteers.

Adult↗

Phosphoric acid enhances the performance of Fe(III) affinity chromatography and matrix-assisted laser desorption/ionization tandem mass spectrometry for recovery, detection and sequencing of phosphopeptides.

An integrated analytical strategy for enrichment, detection and sequencing of phosphorylated peptides by matrix-assisted laser desorption/ionization (MALDI) tandem mass spectrometry (MS/MS) is reported. o-Phosphoric acid was found to enhance phosphopeptide ion signals in MALDI-MS when used as the acid dopant in 2,5-dihydroxybenzoic acid (2,5-DHB) matrix. The effect was largest for multiply phosphorylated peptides, which exhibited an up to ten-fold increase in ion intensity as compared with standard sample preparation methods. The enhanced phosphopeptide response was observed during MALDI-MS analysis of several peptide mixtures derived by proteolytic digestion of phosphoproteins. Furthermore, the mixture of 2,5-DHB and o-phosphoric acid was an excellent eluant for immobilized metal affinity chromatography (IMAC). Singly and multiply phosphorylated peptide species were efficiently recovered from Fe(III)-IMAC columns, reducing sample handling for phosphopeptide mapping by MALDI-MS and subsequent phosphopeptide sequencing by MALDI-MS/MS. The enhanced response of phosphopeptide ions in MALDI facilitates MS/MS of large (>3 kDa) multiply phosphorylated peptide species and reduces the amount of analyte needed for complete characterization of phosphoproteins.

Amino Acid Sequence↗

[Refinement of the methods of diffractometric analysis in relation to the preparation surface exposed to X rays].

The aim of the study was to assess the degree of X-ray diffractometric response using preparations having a surface exposed to X-rays other than 2 cm2, which is standard for sample-holders supplied with a goniometer, coupled to a commercially available analytic apparatus. Two samples of commercial talc were examined with dust size below 30 microns (and having different content of "respirable" or "alveolar" dust classes), as regards chlorate, talc and asbestos constituents and quartz. Twelve different experimental conditions of the preparations permitted X-ray exposure of surfaces between 6.25 and 500 mm2. For the low angle positions it was possible to obtain a substantial improvement in the overall diffractometric response by increasing the surface of the preparations; however, in each case, a reduction in the surface produced, in addition to a better definition of the peaks, an increase in the diffracted intensities per unit of surface of the preparation; this is clearly related to the collection spectrum of the radiant energy of the incident beam in space, and leads to the possibility of reducing to an order of magnitude of milligrams the mass of samples that can still be submitted to qualitative and quantitative diffractometric analysis.

Asbestos↗

Stability of sotalol in two liquid formulations at two temperatures.

BACKGROUND: Sotalol is used in certain pediatric patients to treat, suppress, or prevent the recurrence of life-threatening ventricular arrhythmias. However, it is commercially unavailable in a liquid dosage form. The use of an extemporaneously prepared liquid dosage form must be supported by the documentation of the chemical and physical stability of sotalol. OBJECTIVE: To determine the stability of sotalol hydrochloride extemporaneously prepared from tablets in 2 oral suspensions stored at 2 temperatures. METHODS: Five bottles contained Ora Plus:Ora Sweet (1:1) and the other 5 bottles had 1% methylcellulose:simple syrup NF (1:9), with a sotalol concentration of 5 mg/mL. Three samples were collected from each bottle at 0, 7, 14, 28, 42, 56, 70, and 91 days and analyzed by a stability-indicating HPLC analytical method (n = 15). RESULTS: At 4 degrees C, the mean concentration of sotalol was at least 98.9% of the original concentration in Ora Plus:Ora Sweet suspension and 95.5% of the initial concentration in 1% methylcellulose:simple syrup during storage for 3 months. At 25 degrees C, the mean concentration of sotalol was >/=95.5% of the original concentration in Ora Plus:Ora Sweet suspension and 94.4% of the initial concentration in 1% methylcellulose:simple syrup during storage for 3 months. The pH did not change substantially during the study period. Further, no changes in physical appearance were seen during the study. CONCLUSIONS: Sotalol hydrochloride can be prepared in either of 2 liquid dosage forms and stored in plastic bottles for 13 weeks at 4 or 25 degrees C without substantial loss of potency.

Administration, Oral↗

Rapid detection of Salmonella from poultry by real-time polymerase chain reaction with fluorescent hybridization probes.

Detection of Salmonella by bacteriologic methods is known to be time consuming. Therefore, we have developed a real-time probe-specific polymerase chain reaction (PCR) to rapidly detect Salmonella invA gene-based PCR products from chicken feces and carcasses by a fluorescence resonance energy transfer assay. The sensitivity and the specificity of this system were determined as 3 colony-forming units ml(-1) and 100%, respectively. Overnight tetrathionate broth enrichment cultures of chicken feces and carcass samples were used in template preparation for PCR. Also, a standard bacteriology was performed (National Poultry Improvement Plan-U.S. Department of Agriculture, Bacteriological Analytical Manual-Food and Drug Administration Center for Food Safety and Applied Nutrition) for confirmation. Seventy-two cloacal swab, 147 intestine, and 50 carcass (neck) samples were examined. Thirteen (8.8%) and 25 (17%) of the intestinal samples were found to harbor Salmonella by bacteriology and PCR, respectively. Forty-five of 50 (90%) carcass samples were Salmonella positive by both methods. Salmonella was not detected from cloacal swab samples. Results indicate that this assay has the potential for use in routine monitoring and detection of Salmonella in infected flocks and carcasses.

Animals↗

Quantification of cyclophosphamide and its metabolites in urine using liquid chromatography/tandem mass spectrometry.

A reliable and easy to use liquid chromatography/tandem mass spectrometry (LC/MS/MS) method was developed for the simultaneous quantification of urinary concentrations of cyclophosphamide (CP) and its main metabolites excreted in urine, i.e. N-dechloroethylcyclophosphamide (DCL-CP), 4-ketocyclophosphamide (4KetoCP), and carboxyphosphamide (CarboxyCP). Sample preparation consisted of dilution of urine with an aqueous solution of the internal standard D(4)-CP and methanol, and centrifugation. LC/MS/MS detection was performed using a triple-quadrupole mass spectrometer working in selected reaction monitoring mode. All analytes were quantified in a single run within 11.5 min. The limits of detection were 5 ng/mL for CP and 4KetoCP, 1 ng/mL for DCL-CP, and 30 ng/mL for CarboxyCP. Quantification ranges were adjusted to the expected concentrations in 24-h urine collections of patients treated with a polychemotherapy regimen (3-175 microg/mL for CP, 0.5-27 microg/mL for 4KetoCP and 0.17-9 microg/mL for CarboxyCP and DCL-CP, respectively). The method was validated according to international guidelines of the ICH and the FDA.

Calibration↗

Determination of sulfur and selected trace elements in metallothionein-like proteins using capillary electrophoresis hyphenated to inductively coupled plasma mass spectrometry with an octopole reaction cell.

The determination of sulfur in biologically relevant samples such as metalloproteins is described. The analytical methodology used is based on robust on-line coupling between capillary electrophoresis (CE) and octopole reaction cell inductively-coupled plasma mass spectrometry (ORC-ICP-MS). Polyatomic ions that form in the plasma and interfere with the determination of S at mass 32 are minimised by addition of xenon to the collision cell. The method has been applied to the separation and simultaneous element-specific detection of sulfur, cadmium, copper, and zinc in commercially available metallothionein preparations (MT) and metallothionein-like proteins (MLP) extracted from liver samples of bream ( Abramis brama L.) caught in the river Elbe, Germany. Instrumental detection limits have been calculated according to the German standard procedure DIN 32645 for the determination of sulfur and some simultaneously measured trace elements in aqueous solution. For sulfur detection limits down to 1.3 microg L(-1) ((34)S) and 3.2 microg L(-1) ((32)S) were derived. For the other trace elements determined simultaneously detection limits ranging from 300 ng L(-1) ((58)Ni) to 500 ng L(-1) ((66)Zn, (55)Mn) were achieved. For quantification of sulfur and cadmium in a commercially available MT preparation under hyphenated conditions the use of external calibration is suggested. Finally, the need for proper sample-preparation technique will be discussed.

Animals↗

HPLC analysis of ADMA and other methylated L-arginine analogs in biological fluids.

Post-translational methylation of arginine residues in proteins leads to generation of N(G)-monomethylarginine (MMA) and both symmetric and asymmetric dimethylarginine (SDMA and ADMA), that are released into the cytosol upon proteolysis. Both MMA and ADMA are inhibitors of nitric oxide synthase and especially elevated levels of ADMA are associated with endothelial dysfunction and cardiovascular disease. Plasma concentrations of ADMA and SDMA are very low, typically between 0.3 and 0.8 microM, making their quantification by HPLC an analytical challenge. Sample preparation usually involves a cleanup step by solid-phase extraction on cation-exchange columns followed by derivatization of amino acids into fluorescent adducts. Because ADMA and SDMA concentrations in healthy subjects show a very narrow distribution, with a between-subject variability of 13% for ADMA and 19% for SDMA, very low imprecision is an essential assay feature. Procedures for sample cleanup, derivatization, and chromatographic separation of arginine and its methylated analogs are the main topics of this review. In addition, important aspects of method validation, pre-analytical factors, and reference values are discussed.

Animals↗

Liquid-chromatographic method for estimating urinary sugars: applicability to studies of intestinal permeability.

Sugars of exogenous origin excreted in the urine can be rapidly quantified by "high-pressure" liquid chromatography. A simple extraction with an ion-exchange resin is used to prepare the sample for analysis. Aliquots (20 microL) are chromatographed on a cation-exchange column at 85 degrees C, with water as the mobile phase. Sugars are detected with a refractive index detector. Lactulose, rhamnose, and mannitol all give discrete peaks and a linear response up to 5 g/L, with analytical recoveries from urine of 80, 62, and 80%, respectively. Precision is good, the CVs for lactulose, rhamnose, and mannitol being 2.9, 4.0, and 5.6%, respectively. The only endogenous compound consistently present in the chromatograms is urea, which does not interfere. However, glucosuria, if present, could interfere with the lactulose estimation. This method may be a simple, labor-saving means of quantifying urinary sugars in the clinical laboratory.

Carbohydrates↗

Quantification of selected herbicides and chlorinated phenols in urine by using gas chromatography/mass spectrometry/mass spectrometry.

We have developed a method for determining selected chlorinated phenols and phenoxy herbicides in urine. The process of preparing the samples includes acid hydrolysis, extraction with benzene, derivatization with diazoethane, and column chromatography cleanup. We quantify the more volatile compounds by using capillary column gas chromatography/positive chemical ionization/mass spectrometry/mass spectrometry. Less volatile compounds are quantified by using electron capture negative chemical ionization in a single stage mass spectrometry mode. Quality control samples are included in each analytical run, and the results demonstrate that the analytical system is in control. Positive values for the target analytes are determined on the basis of appropriate relative retention time, a signal-to-noise ratio greater than 3:1, and a calculated concentration greater than 1 ppb. We determine the chlorine isotope ratios for each compound to assess the presence or absence of interferences. This analytical method has been applied in a case-control study of 199 individuals to examine exposure to the 12 target analytes.

Child↗

[New advances in liquid chromatography-chemiluminescence detection].

A review on the new development of chemiluminescence (CL) detection for liquid chromatography (LC) is presented. It covers CL detection systems (including luminol, peroxyoxalates, and other chemiluminescence reactions) combined with LC, the design of CL detectors, analytical methods for many kinds of inorganic, organic and biologic samples, applications and the trends of LC-CL in environmental, biomedical, life science and pharmaceutical analysis.

Chromatography, Liquid↗

Use of laminar cup liners for the preparation of fatty samples for pesticide analysis.

Residue analyses have been developed for hundreds of pesticides and their metabolites in foods. Normally, the fat is extracted with a non-polar solvent, followed by a re-extraction of the analytes into a polar solvent, removal of the remaining fat by several clean-up steps and finally determination by gas chromatography (GC). Over the last 3 years, experience has been gained in the use of laminar cup liners for GC injectors. The geometry of the laminar cup liner allows the injection of sample extracts with a residual fat content of tip to 5%. The cup prevents fatty compounds entering the capillary GC column. Using this approach, several residue methods can be simplified without losing precision or recovery. The preparation of the samples, such as cows milk, human milk, avocado and cosmetics can be reduced to one solvent extraction step with petroleum ether and one single cleanup step with an Extrelut column. No further clean up with Florisil or GPC is then necessary. The proposed method using a laminar cup and GC/ECD has been tested for the analysis of organochlorine and organophosphorous pesticides, PCBs, nitro-musk fragrances, together with pyrethroids and pyrethrins in the above matrices. Polycyclic musk substitutes were analysed by GC/MS.

Animals↗

Glass-chip-based sample preparation and on-chip trypic digestion for matrix-assisted laser desorption/ionization mass spectrometric analysis using a sol-gel/2,5-dihydroxybenzoic acid hybrid matrix.

A glass-chip-based sample preparation method for matrix-assisted laser desorption/ionization mass spectrometric (MALDI-MS) analysis of tryptic digests of proteins and intact cells is described. A MALDI matrix, 2,5-dihydroxybenzoic acid (2,5-DHB), was hybridized with sol-gels to generate a sol-gel-derived material. Taking advantage of the characteristics of sol-gels, the sol-gel-derived material readily adhered to the surface of a glass chip through covalent bonding. Only one step of sample preparation, deposition of the sample solution on the glass chip, was required before MALDI-MS analysis. Because 2,5-DHB was homogeneously dispersed on the sol-gel network structure, good spot-to-spot reproducibility was obtained in MALDI analysis using this approach and the analyte signals were uniform throughout the chip. The modified glass chips were robust and effective for at least 1 week. This glass-chip-based matrix preparation method provides a straightforward approach to developing techniques for analyzing the on-chip enzymatic digestion of proteins and intact cells of microorganisms. Cytochrome C and Escherichia coli were used as analytes to demonstrate the feasibility of this approach. The products of the on-chip enzymatic digests were identified through protein database searches.

Amino Acid Sequence↗

A method for the simultaneous determination of creatinine and uric acid in serum by high-performance-liquid-chromatography evaluated versus reference methods.

A high performance liquid chromatography (HPLC) with isocratic ion-pair-reversed-phase separation and simultaneous UV-detection at 232 nm and 292 nm is proposed as a method for the simultaneous determination of uric acid and creatinine in serum. The only sample preparation required is an appropriate dilution with the eluent and membrane filtration on non-adsorbent 0.2 micron membrane-filtration-devices. The inaccuracy of the method has been determined for NIST-SRM-909 (n = 10) and was + 0.5% for creatinine as well as for uric acid. The imprecision in this case was 0.8% for both analytes. The within-run imprecision for creatinine/uric acid was 0.4-0.5%/0.2-0.4% in the case of standards and 0.6-0.8%/0.4-0.7% in the case of serum-pools. The between-run imprecision for creatinine/uric acid obtained from serum pools was 0.8-1.1%/0.7-1.0%. The results for creatinine have been compared to those from an isotope dilution-gas chromatography-mass spectrometry using [13C, 15N2]creatinine as internal standard and selected mass detection at m/e = 329 and m/e = 332. The results for uric acid have been compared to an HPLC-method published previously (Kock R et al. J Clin Chem Clin Biochem 1989; 27:157-62). The method comparisons (n = 55) for the new combined method presented versus the reference method for creatinine and the candidate reference method for uric acid resulted in coefficients of correlation of r = 1.000 for both analytes. The new combined method presented is useful for the analysis of patient samples where the classical photometric procedures do not give reliable results, as often observed in monitoring after transplantation surgery.(ABSTRACT TRUNCATED AT 250 WORDS)

Chromatography, High Pressure Liquid↗

An isotope-dilution gas chromatography-mass spectrometry method for trace analysis of xylene metabolites in tissues.

A gas chromatography-mass spectrometry (GC-MS) method using isotope dilution was developed to measure trace levels of xylene metabolites in brain tissues. The primary metabolites of xylene are dimethylphenol (DMP), methylbenzyl alcohol (MBA), toluic acid (TA), and methylhippuric acid (MHA). The internal standard was a mixture of deuterated DMP-d3, TA-d7, and MHA-d7. DMP-d3 was commercially available and was used as the internal standard for both DMP and MBA. TA-d7 and MHA-d7 were biosynthesized by administering xylene-d10 to rats and collecting their urine. Based on the noise peaks in 10 blank samples, the on-column limits of quantitation (mean +10 SD of noise peaks) were approximately 305, 1220, 545, and 386 pg for DMP, MBA, TA, and MHA, respectively. Analyte detection and recovery tests from brain tissues of control rats were conducted by spiking the tissues with 32 nmol/g of each analyte, together with the deuterated metabolites. The tissues were homogenized, extracted with ethyl acetate, and derivatized by trimethylsilylation. One microliter of the sample was injected into the GC-MS. The recoveries of the analytes were 104 +/- 8%, 80 +/- 9%, 93 +/- 10%, and 92 +/- 11% (mean +/- SD, n = 7) for DMP, MBA, TA, and MHA, respectively. The tissue preparation efficiency, which was indicated by absolute recoveries of internal standards, was approximately 33% for DMP, MBA, and TA and approximately 80% for MHA. No metabolites were detected in untreated control tissues. This simple and sensitive method to simultaneously detect major xylene metabolites in brain tissues could also be used for the analysis of blood and urine samples from workers to monitor p-xylene exposure.

Animals↗

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↗