To investigate whether the bioavailability of isoflavones could be an alternative to fermented soy foods, the conjugated forms of soy nutritional supplement (containing 98% acetyl glucoside isoflavones) were consumed by eight human volunteers (three were Asian people and five were British). Their daily urine samples were collected before and after a 5-week consumption of supplementation period. Conjugated isoflavones of genistein, daidzein and glycitein were hydrolyzed by enzyme, extracted with methyl tert-butyl ether and analysed using liquid chromatography coupled with electrospray tandem mass spectrometry. Daidzein, genistein, glycitein, dihydrogenistein, dihydrodaidzein and O-desmethylangolensin were identified and quantified simultaneously with high recoveries. The levels of free isoflavones and total isoflavones were compared, and isoflavone glucuronides were identified much higher than the corresponding sulfates or aglycone isoflavones. This method provided the measurement of isoflavones with high sensitivity and specificity and simplified the sample pre-treatment procedure. The limitation of detections of dihydrodaidzein, 3′-hydroxydaidzein, glycitein, daidzein, genistein, dihydrogenistein and O-desmethylangolensin were 37, 23.5, 12.2, 15.4, 14.8, 2.20 and 0.31pmol, respectively. Only 0.5ml of urine sample was needed.
ABSTRACT Fast-atom bombardment mass spectrometry (FABMS), and collisionally-induced dissociation and mass-analyzed ion kinetic energy spectrum scanning (CID/MIKES) have been used to examine cation effects on a Phaseolus chloroplast complex phosphodiesterase activity. The kinetic parameters of the activity, and the effects of Li+, Na+, K+, Mg2+, Mn2+ and Fe3+ upon them, were determined with 3′,5′-cyclic AMP, -GMP and -CMP, and 2′,3′-cyclic AMP, -GMP and -CMP as substrates. Irrespective of the presence of cations and of the complex nucleotidase, the preferred substrate is a 3′,5′-cyclic nucleotide, not a 2′,3′-cyclic nucleotide. In the presence of the nucleotidase 3′,5′-cyclic AMP and 3′,5′-cyclic GMP are the best substrates, unless Fe3+ ions are present. Mg2+ and Mn2+ stimulate hydrolysis of 3′,5′-cyclic AMP and 3′,5′-cyclic GMP by the complex. However, Fe3+ inhibits these activities but stimulates the hydrolysis of 3′,5′-cyclic CMP. Kinetic data indicate that each of these six substrates is hydrolyzed at a single, common, catalytic site. Differentiation of the phosphodiesterase isomeric mononucleotide products by FABMS CID/MIKES analysis indicates that in the absence of ions and after removal of the nucleotidase, the 3′-ester linkage of the 3′,5′-cyclic substrates was hydrolyzed exclusively. Addition of monovalent and divalent ions results in hydrolysis of both the 5′- and 3′-ester linkages.
Modified nucleosides in the urine have been postulated to be diagnostic indices of disease, particularly of cancer. The urine of a patient with terminal head and neck cancer has been found to contain a modified nucleoside with a protonated molecule of m/z 228. By means of high-performance liquid chromatography/ion trap mass spectrometry (HPLC/ITMS) and capillary liquid chromatography/triple quadruple mass spectrometry (CapLC/TQMS) we have identified the compound as 5'-deoxycytidine. This is the first report of 5'-deoxycytidine in man: in addition to the elucidation of its structure, its possible origins and the potential significance of its occurrence are discussed.
Four barbiturates (barbital, allobarbital, phenobarbital and butalbital) were analysed using high-speed analytical countercurrent chromatography (HSACCC) and high-performance liquid chromatography (HPLC) interfaced with mass spectrometry, using negative mode atmospheric pressure chemical ionisation (APCI). The polar biphasic solvent system of butyronitrile/acetonitrile/water (1:1:1) was used, in the upper-stationary, lower-mobile mode of operation, at a flow rate of 1 mL/min and a rotational speed of 1200 rpm, equating to an applied "g"-field of 177 g. The fractional stationary phase retention (S(F)) was 0.58. Representative mass spectral data are presented from the HPLC and the HSACCC analyses. Structural information was obtained using source-induced fragmentation at increased source block voltages. The effect of increasing g-field on chromatographic resolution is illustrated using the binary base system of butyronitrile/water (1:1), under electrospray ionisation.
Extracts of urinary nucleosides have been sequentially purified and examined by mass spectrometric analysis. Seventeen modified nucleosides have been unequivocally identified and a further five provisionally identified. While several nucleosides were found only in a small number of extracts, the occurrence and levels of others were found to correlate with the tumour type and stage.
Four flavonoids, chrysin, baicalein, baicalein-7-O-glucoside, baicalein-7-O-diglucoside (Oroxylin B) and one unknown flavonoid have been isolated and purified for the first time in the seeds of Oroxylum indicum by high-speed counter-current chromatography with a two-phase solvent system composed of chloroform–methanol–water (8:10:5, v/v). Then, 50 mg baicalein-7-O-glucoside, 10.5 mg baicalein-7-O-diglucoside, 4.5 mg chrysin-7-O-diglucoside, 25 mg baicalein and 45 mg chrysin could be obtained after injecting 20 mg/ml sample extract ten times and their purities were 96, 90, 85, 95 and 98%, respectively. All these constituents were identified by high-performance liquid chromatography–mass spectrometry and nuclear magnetic resonance.
The cyclic nucleotide content of cultured tobacco bright yellow-2 (BY-2) cells was determined, after freeze-killing, perchlorate extraction and sequential chromatography, by radioimmunoassay. The identities of the putative cyclic nucleotides, adenosine 3',5'-cyclic monophosphate (cyclic AMP), guanosine 3',5'-cyclic monophosphate (cyclic GMP) and cytidine 3',5'-cyclic monophosphate (cyclic CMP) were unambiguously confirmed by tandem mass spectrometry. The potential of BY-2 cell cultures as a model system for future investigations of cyclic nucleotide function in higher plants is discussed.
Qualitative and quantitative analyses of urinary nucleosides have diagnostic potential as tumour markers. We have developed separation techniques linked to mass spectrometric detection in order to overcome the problems associated with past identification and quantitation methods. The three methods of analysis utilised were: gas chromatography/mass spectrometry (GC/MS), high-performance liquid chromatography/ion-trap mass spectrometry (HPLC/ITMS) and capillary liquid chromatography/triple quadrupole mass spectrometry (CapLC/TQMS). Here we compare the relative effectiveness of each of the techniques for subsequent application in the systematic study of urinary nucleoside profiles in cancer patients. All three methods proved to be valuable techniques for such urinary nucleoside analyses, and a combination rather than one single choice is concluded as the ideal.
Five polar herbicides were separated and characterised using high-speed analytical countercurrent chromatography (HSACCC) in conjunction with online electrospray mass spectrometry (ESI-MS). The countercurrent chromatography used a standard isocratic biphasic solvent system of hexane/ethyl acetate/methanol/water in reverse phase to effect the separation of these five environmentally important compounds. The chromatograph was coupled to a triple quadrupole mass spectrometer via a standard electrospray liquid chromatography interface that was able to give mass spectra in negative ion mode of each compound. Limits of detection are reported for this series of compounds along with representative negative ion ESI-MS data and calibrations for the separation.
In order to optimise the analysis of urinary nucleosides by high performance liquid chromatography/mass spectrometry (HPLC/MS), the HPLC separation of these compounds was performed at different 'flow rates' and 0.2mL/min was found to give both a better separation and ionisation. The ionisation conditions were optimised to give the best intensity of the molecules quasi-molecular ions. The ion distribution profile and ionisation in both positive and negative mode were examined and the detection of the protonated molecule in positive mode chosen for further analysis. The limits of detection of the method developed are reported and representative LC/MS and LC/MS/MS spectra shown. Typical urinary nucleoside chromatograms are presented.
Combined high-performance liquid chromatography and electrospray mass spectrometry (LC/ES-MS) has been used for direct characterisation of the polar membrane lipids in total lipid extracts from Halobacterium salinarium, a species of halophilic archaebacterium. The principle phospholipids found were the diphytanyl archaeol phosphatidylglycerol and diphytanyl archaeol phosphatidylglycerolphosphate methyl ester. The application of LC/ES-MS revealed the additional presence of diphytanyl archaeol phosphatidylglycerol sulphate The extracts also contained an archaeol glycolipid, initially detected in preliminary offline ES-MS studies, which was further characterised by LC/ES-MS and by product ion tandem mass spectrometry (MS/MS) as a sulphate ester of diglycosyl-2,3-di-O-phytanyl-sn-glycerol. Whilst archaeol phospho- and glycolipids containing a (C(20)-C(20))-isopranyl glycerol ether core predominated, LC/ES-MS of the extracts from Halobacterium salinarium indicated the presence of an analogue containing one double bond in its isoprenyl ether core as a minor component of the phosphatidylglycerolphosphate methyl ester fraction, providing a further example of the previously recognised existence of isoprenologues of diphytanyl archaeols which occur as minor components of archaebacterial membrane lipids. The value of these techniques in compositional analysis of archaebacterial lipid extracts is discussed.
A chromatographic separation of nucleosides from urine has been developed in order to facilitate their mass spectrometric analysis for clinical diagnosis. A number of chromatographic resins were studied in order to develop an effective and efficient purification procedure. The optimized sequential protocol comprises a centrifugation, acidification and neutralization step, followed by application of an affinity chromatographic column and finally further separation on an acidic cation exchange column and a basic anion exchanger. This scheme shows effective clean-up of a standard radiolabelled nucleoside with a recovery of 92.5%, and recovery of nucleosides added to urine samples before extraction showed recoveries of 72-82%.
A novel method of coupled liquid chromatography/atmospheric pressure ionization mass spectrometry (LC/APCI-MS) has been used to analyze archaebacterium phospholipids in Natronobacterium magadii. Four major lipids, C20-C20 and C20-C25 PGP-Me and PG were found to exist in this organism. APCI mass spectra provided ample information for elucidation of the lipid structures. As an example, the positive-ion fragmentation of C20-C20 PGP-Me is discussed. In our study, LC/APCI-MS was shown to be an effective method in both the positive- and negative-ion modes for the direct mass spectrometric analysis of archaebacterium phospholipids.
Two enzymes, cyclic CMP-specific phosphodiesterase and multifunctional phosphodiesterase, are responsible for the hydrolysis of cytidine 3',5'-cyclic monophosphate in living cells. Quantitation of both enzymes has been carried out by positive-ion fast-atom bombardment mass spectrometric analysis of the enzyme incubates after termination of the reaction. The kinetic data obtained are in close agreement with parallel data obtained by the conventional radiometric assay. The extra facility of the mass spectrometry based assay to monitor several incubation components simultaneously has been exploited to study the concurrent hydrolysis of alternate cyclic nucleotide substrates and provides kinetic parameters of significance in interpreting substrate-enzyme interactions. This is extended by the use of collisionally-induced dissociation of the protonated molecules of the liberated products to identify the mononucleotide isomers resulting from the cyclic nucleotide hydrolysis.
While the natural occurrence of adenosine 3′,5′-cyclic monophosphate and guanosine 3′,5′-cyclic monophosphate in higher plants is now well established, the existence in plants of specific nucleotidyl cyclase activities functioning to synthesize these two cyclic nucleotides has been the topic of recent controversy. Here positive-ion fast-atom bombardment mass spectrometry is used to unequivocally identify the products of the putative nucleotidyl cyclase activities in a membrane fraction from isolated spinach chloroplasts, and quantitative mass spectrometry is used in a study of enzymic reaction kinetics to determine the relevant kinetic parameters necessary for the elucidation of the binding interactions between the substrates and the two enzymes. Copyright © 1999 John Wiley & Sons, Ltd.
Capillary electrochromatography/mass spectrometry (CEC/MS) has so far only been performed using electrospray or microspray ionization, CEC has, to date, not been reported coupled online to nanospray ionization, due to practical difficulties in coupling the CEC column to the nanospray emitter. However this combination is ideally suited, as the flow rates for CEC (100nL/min, approximately) are directly compatible with larger orifice (10 mu m) nanospray emitters.A CEC unit has been designed and engineered in-house, to enable the use of short columns and high field strengths, facilitating fast electro-osmotic flow and short retention times. This device was initially coupled via a 50 mu m x 37 cm C-18/SCX column, and then by a C-6/SCX 50 mu m x 45 cm column, to microspray and nanospray interfaces, also designed and built in-house. CEC/microspray-MS and CEC/nanospray-MS were successfully evaluated on an ion-trap mass spectrometer using five corticosteriods with the addition of thiourea as a flow marker. Limits of detection (S/N = 3) were found to be 500 fg (1-2 mol) for CEC/microspray-MS and initial studies using the nanospray interface have predicted detection limits in the region of 50 fg (similar to 100 amol), (C) 1998 John Wiley & Sons, Ltd.
The membrane lipid composition of Natronobacterium magadii, a species of haloalkaliphilic archaebacterium, has been studied by electrospray mass spectrometry (ES-MS), reversed phase high-performance liquid chromatography/electrospray mass spectrometry (LC/ES-MS), and tandem mass spectrometry. The negative-ion and positive-ion electrospray mass spectra and product ion mass spectra of the polar lipids are reported, LC/ES-MS of the total lipid extract in conjunction with product ion mass spectrometry established diphytanyl- and phytanyl, sesterterpanylglycerol-diether analogues of phosphatidylglycerolphosphate methyl ester as the major archaeols, with much lower levels of diphytanyt- and phytanyl, sesterterpanylglycerol-diether analogues of phosphatidylglycerol. In addition to these saturated, isopranyl archaeols, the presence of unsaturated archaeol analogues containing up to three double bonds was detected in Nb. magadii, representing the first description of isoprenyI ether lipids in a haloalkaliphilic archaebacterium. (C) 1998 John Wiley & Sons, Ltd.