RATIONALE:Food fraud, particularly meat adulteration, poses risks to consumer trust, public health, and regulatory compliance. Existing detection methods are often slow and require complex preparation. There is a need for rapid, reliable, and accessible analytical approaches to verify meat authenticity in both laboratory and field settings. METHODS:Atmospheric Solid Analysis Probe Mass Spectrometry (ASAP-MS) was used for direct analysis of meat samples with minimal preparation. Spectral data from seven meat species were processed using chemometric modelling to build a classification system. The model was validated using laboratory-prepared mixed meat samples and subsequently applied to commercial processed products and ready meals. RESULTS:The developed model successfully differentiated seven meat species and detected adulteration at levels as low as 5% in mixed samples. Analysis time was under 5 min per sample. When applied to commercial products, the method achieved 100% agreement with declared labelling, demonstrating high accuracy and robustness across different sample types. CONCLUSIONS:This study demonstrates that ASAP-MS combined with chemometric modelling provides a fast, accurate and minimally invasive approach for meat speciation. Its speed and potential portability make it well suited for real-time, field-based testing, offering a valuable tool to enhance food authenticity monitoring and consumer protection.
An SI traceable primary calibrator was used for the development of a reference measurement procedure for α-synuclein. A targeted proteomics workflow allowed for the SI traceable quantification of α-synuclein in cerebrospinal fluid.
AbstractObjectivesα-synuclein aggregation is an indicator of neurodegenerative diseases such as Parkinson’s disease (PD) and recent advances have suggested that this protein could serve as a potential biomarker. It has been indicated that soluble and oligomeric α-synuclein in biological fluids could have diagnostic applications for PD. Clinical laboratories currently rely on antibody-based assays to detect α-synuclein. These assays have limited specificity, low sensitivity and poor inter-lab reproducibility, which prevents the validation of α-synuclein as a biomarkers. This study aims to fill the unmet need for the standardisation of clinical measurements for α-synuclein.MethodsWe report the first candidate reference method for α-synuclein, using an SI traceable primary calibrator for α-synuclein and isotope dilution mass spectrometry. The primary calibrator was traceably quantified utilising a combination of amino acid analysis and nuclear magnetic resonance. A targeted sample clean-up procedure involving a non-denaturing Lys-C digestion and solid-phase extraction allowed for the sensitive detection of multiple proteotypic α-synuclein peptides in cerebrospinal fluid (CSF) samples.ResultsThe candidate reference method procedure showed linearity across three orders of magnitude, covering the physiological levels of α-synuclein in CSF (LOQ = 0.1 ng/g). The method was used to quantify a cohort of CSF samples and the measurements were correlated with immunoassay-based quantifications.ConclusionsThe SI traceable quantification of α-synuclein in complex biological matrices means that the role of this protein can be further elucidated in synucleinopathies. This candidate reference method would lead to the harmonisation of α-synuclein measurements, which may allow for development of high throughput clinical tests.
The utilization of ambient ionization (AI) techniques for mass spectrometry (MS) has significantly grown due to their ability to facilitate rapid and direct sample analysis with minimal sample preparation. This study investigates the performance of various AI techniques, including atmospheric solids analysis probe (ASAP), thermal desorption corona discharge (TDCD), direct analysis in real time (DART), and paper spray coupled to a Waters QDa mass spectrometer. The focus is on evaluating the linearity, repeatability, and limit of detection (LOD) of these techniques across a range of analytes, including amino acids, drugs, and explosives. The results show that each AI technique exhibits distinct advantages and limitations. ASAP and DART cover high concentration ranges, which may make them suitable for semiquantitative analysis. TDCD demonstrates exceptional linearity and repeatability for most analytes, while paper spray offers surprising LODs despite its complex setup (between 80 and 400 pg for most analytes). The comparison with electrospray ionization (ESI) as a standard method shows that ambient ionization techniques can achieve competitive LODs for various compounds such as PETN (80 pg ESI vs 100 pg ASAP), TNT (9 pg ESI vs 4 pg ASAP), and RDX (4 pg ESI vs 10 pg ASAP). This study underscores the importance of selecting the appropriate ambient ionization technique based on the specific analytical requirements. This comprehensive evaluation contributes valuable insights into the selection and optimization of AI techniques for diverse analytical applications.
The ability to determine the purity (% controlled compound) of drug-of-abuse samples is necessary for public health and law enforcement. Here, we describe the assessment of atmospheric solids analysis probe (ASAP) for the rapid determination of drug purity for a set of formulated pharmaceuticals, chosen due to their availability, uncontrolled status and consistency. Paracetamol and loratadine were used as models of high and low purity compounds being ~90% and ~10% active ingredient, respectively. Individual tablets were ground up and diluted in an internal standard solution. The resulting samples were analysed by ASAP coupled to a Waters QDa mass spectrometer followed by confirmatory testing by liquid chromatography-tandem mass spectrometry (LC-MS/MS). The inclusion of a non-matched internal standard (quinine) improved linearity and repeatability of drug analysis by ASAP-MS. Levels of drug purity using formulated pharmaceutical tablets were found to be highly comparable with results produced by the 'gold standard' LC-MS/MS technique. Rapid determination of drug purity is therefore possible with ASAP-MS for highly concentrated samples with minimal sample preparation. It may be possible to use this deployable system to determine drug purity outside of a laboratory setting.
Five different classes of explosives were analysed by ambient ionisation mass spectrometry testing selectivity, sensitivity, and repeatability. We compare the effectiveness of two techniques (ASAP and SESI) for the trace detection of five explosives representative of the most common classes of high explosive: HMTD, RDX, PETN, Tetryl and TNT. Experiments also compared the effectiveness of sample loading via a glass fibre swab or glass rod. All analyses were carried out with a Waters Acquity QDa mass spectrometer, a small format mass spectrometer which can be operated in a transportable mode (using ambient air and a small diaphragm pump). Both ambient ionisation techniques, ASAP and SESI, successfully detected the five different explosives which could make them suitable for a screening method. By directly comparing a calibration range of 0.8 e10 ng on both swabs and rods for each explosive, it appears that SESI produces less variability per repeat, particularly at the higher end of the range when compared to ASAP which typically has a lower limit of detection and better linearity. (c) 2021 Published by Elsevier B.V.
Neurofilament‐light chain (NF‐L) is a known early marker for neurodegeneration. This marker which is essential for the axonal structure, is quantifiable in biological fluids after neuronal damage but is not specific to a given pathology. Currently, the methods for detecting/quantifying this biomarker are mainly based on immunoassays. While the performance of immunoassay‐based assays is good in term of sensitivity and precision, mass spectrometry (MS) approaches are required to achieve standardisation. Those aiding to improved characterisation/quantification of the calibrator and potential for developing a reference measurement procedure traceable to the International System of Units. Furthermore MS has the potential of multiplexing NF‐L with other specific biomarkers for dementia. The characterization and quantification of a number of primary calibrators and their suitability for harmonization of immunoassay based results and development of a reference measurement procedure is here assessed.
The emergence of ambient ionization techniques and their combination with smaller, cheaper mass spectrometers is beginning to make real the possibility of mass spectrometry measurements being made routinely outside of traditional laboratory settings. Here, we describe the development of an atmospheric solids analysis probe (ASAP) source for a commercially available miniaturized, single-quadrupole mass spectrometer and subsequent modification of the instrument to allow it to run as a deployable system; we further go on to describe the application of this instrument to the identification of the contents of drug seizures. For the drug seizure analysis, a small quantity of the material (powder, tablet, resin, etc.) was dissolved in ethanol and shaken to extract the analytes, the resulting solutions were then sampled by dipping a sealed glass capillary into the solution prior to analysis by ASAP-MS. Identification of the contents of the seizures was carried out using a NIST searching approach utilizing a bespoke spectral library containing 46 compounds representative of those most commonly encountered in UK forensic laboratories. In order to increase confidence in identification the library sample and subsequent analyses were carried out using a four-channel acquisition method; each channel in this method used a different cone voltage (15, 30, 50, and 70 V) inducing differing levels of in-source fragmentation in each channel; the match score across each channel was then used for identification. Using this developed method, a set of 50 real-life drug samples was analyzed with each of these being identified correctly using the library searching method.
Rationale As the popularity of ambient ionisation grows, so too does the importance of understanding its capabilities and limitations. The British Mass Spectrometry Society Special Interest Group on Ambient Ionisation has carried out two studies into the use of ambient ionisation, the results of which are presented here. Methods The first study (study 1) examined the detection and quantitation capabilities of ambient ionisation while the second examined repeatability and robustness. For study 1 participants were sent a range of samples including two calibration sample sets and asked to analyse them. For study 2, two samples containing the same eight-component mixture were provided (one in solvent, one in matrix); participants were asked to analyse these samples multiple times, over multiple days to allow assessment of repeatability. Results Study 1 showed that small, polar compounds were well detected by the participants while lower polarity compounds were less well detected. For many samples the introduction method appeared to be a significant factor in the observed spectra. The quantitation study gave good results but revealed significant variability. For study 2 the mean repeatabilities were 65% in solvent and 88% in matrix. The inclusion of an internal standard was shown to greatly improve repeatability. Conclusions Ambient ionisation is capable of ionising a wide range of compounds with good precision and excellent repeatability; however, in order to obtain such data care must be taken with the experimental design. The data can be significantly improved with a well-chosen internal standard.
The need for an analytical procedure for the identification of allergens present at trace levels in foods was highlighted by conflicting results in a case of contamination of the spice cumin. The application of a bottom-up proteomics experiment was investigated to identify marker peptides for potential contaminant nuts which could then be monitored with high specificity and sensitivity by selective reaction monitoring experiments. The method developed allowed for the distinction between two closely related Prunus species, almond and mahaleb, in two different spices, cumin and paprika. The paprika sample was found to be contaminated with almond and the cumin sample, contaminated at a much lower level, was found to be contaminated with mahaleb. The method could be applied to any protein-dense food matrix allergen so long as suitable control and reference samples can be acquired.
Recent developments in the miniaturisation of mass spectrometry have led to a new generation of low-cost instruments which are making MS a more accessible technology in all areas of analytical science. While the utility of these instruments for qualitative analysis has been demonstrated, their usefulness for quantitative analysis - particularly in complex matrices - has not been proven. Here we describe the development of a rapid LC-MS method for the analysis of drugs-of-abuse in oral fluid using the Waters QDa, a small, low-cost, single quadrupole MS. The method involves direct injection of oral fluid samples followed by a five minute chromatographic run with MS detection. In order to improve the specificity of the method the instrument cone voltage was used to generate in-source fragments of the analytes, these were combined with retention time to confirm the presence of each compound. The final method was tested using synthetic saliva spiked with a mix of twelve drugs-of-abuse at 5-250 ng/mL; LODs were <= 5 ng/mL for all analytes studied except THC and MDA which had LODs of 10 and 25 ng/mL respectively. LOQs for the method were at or below the required cut-off limits for the analysis of oral fluid for drug driving with the exception of THC. The accuracy and repeatability of the method were demonstrated using repeat injections of spiked saliva at 10, 25 and 50 ng/mL; in all cases the repeat injections showed excellent repeatability (typically within 5% RSD) and excellent accuracy (bias typically within +/- 10%). (C) 2017 Elsevier B.V. All rights reserved.
For on-line monitoring of chemical reactions (batch or continuous flow), mass spectrometry (MS) can provide data to (1) determine the fate of starting materials and reagents, (2) confirm the presence of the desired product, (3) identify intermediates and impurities, (4) determine steady state conditions and point of completion, and (5) speed up process optimization. Recent developments in small footprint atmospheric pressure ionization portable mass spectrometers further enable this coupling, as the mass spectrometer can be easily positioned with the reaction system to be studied. A major issue for this combination is the transfer of a sample that is representative of the reaction and also compatible with the mass spectrometer. This is particularly challenging as high concentrations of reagents and products can be encountered in organic synthesis. The application of a portable mass spectrometer for on-line characterization of flow chemical synthesis has been evaluated by coupling a Microsaic 4000 MiD to the Future Chemistry Flow Start EVO chemistry system. Specifically, the Hofmann rearrangement has been studied using the on-line mass spectrometry approach. Sample transfer from the flow reactor is achieved using a mass rate attenuator (MRA) and a sampling make-up flow from a high pressure pump. This enables the appropriate sample dilution, transfer, and preparation for electrospray ionization. The capability of this approach to provide process understanding is described using an industrial pharmaceutical process that is currently under development. The effect of a number of key experimental parameters, such as the composition of the sampling make-up flow and the dilution factor on the mass spectrometry data, is also discussed.
In this study we describe the evaluation of a recently developed miniaturized single-quadrupole mass spectrometer to support pharmaceutical process research investigations. Mass spectrometry is becoming an indispensable tool for analytical support of synthetic chemistry; however, current mass spectrometers are too expensive and too large for widespread deployment. In addition, current instruments often have features and capabilities that, while useful for trace component or bioanalysis applications, are beyond the comparatively simple requirements of synthetic chemists, where samples are often abundant and unit mass resolution is generally sufficient. An evaluation of the Microsaic 3500 MiD shows this small and inexpensive mass spectrometer to be well-suited for providing reliable support for certain pharmaceutical process research investigations.
Ion mobility-mass spectrometry (IM-MS) is a useful technique for determining information about analyte ion conformation in addition to mass/charge ratio. The physical principles that govern the mobility of an ion through a gas in the presence of a uniform electric field are well understood, enabling rotationally averaged collision cross sections (Ω) to be directly calculated from measured drift times under well-defined experimental conditions. However, such "first principle" calculations are not straightforward for Traveling Wave (T-Wave) mobility separations due to the range of factors that influence ion motion through the mobility cell. If collision cross section information is required from T-Wave mobility separations, then calibration of the instruments using known standards is essential for each set of experimental conditions. To facilitate such calibration, we have designed and generated an artificial protein based on the QconCAT technology, QCAL-IM, which upon proteolysis can be used as a universal ion mobility calibration standard. This single unique standard enables empirical calculation of peptide ion collision cross sections from the drift time on a T-Wave mobility instrument.
The design and development of a novel extractive electrospray ionisation (EESI) device for on-line reaction monitoring is described. The EESI apparatus uses a secondary, grounded nebuliser to produce an analyte aerosol and a Venturi pump is then used to transfer a sample of the aerosol to an electrospray source where it is ionised. The EESI apparatus was then tested with a variety of small, organic molecules to assess sensitivity, linearity and dynamic range. The performance of the technique will depend on the mass spectrometer used for the experiments; in the configurations used here it has a usable dynamic range of around 3.5 orders of magnitude with a linear range of around 2.5 orders of magnitude and is capable of analysing species present down to low µg/mL with signal-to-noise ratio greater than 2.5. The use of EESI for reaction monitoring was validated using a series of mock reaction mixtures and then used to monitor the base hydrolysis of ethyl salicylate to salicylic acid.
Rapid Communications in Mass SpectrometryVolume 25, Issue 17 p. 2570-2572 Letter to the Editor Extractive atmospheric pressure chemical ionisation Bryan J. McCullough, Corresponding Author Bryan J. McCullough [email protected] LGC, Queens Road, Teddington, TW11 0LY UK B. J. McCullough, LGC, Queens Road, Teddington TW11 0LY, UK. E-mail: [email protected]Search for more papers by this authorChristopher Hopley, Christopher Hopley LGC, Queens Road, Teddington, TW11 0LY UKSearch for more papers by this author Bryan J. McCullough, Corresponding Author Bryan J. McCullough [email protected] LGC, Queens Road, Teddington, TW11 0LY UK B. J. McCullough, LGC, Queens Road, Teddington TW11 0LY, UK. E-mail: [email protected]Search for more papers by this authorChristopher Hopley, Christopher Hopley LGC, Queens Road, Teddington, TW11 0LY UKSearch for more papers by this author First published: 15 August 2011 https://doi.org/10.1002/rcm.5141Citations: 4Read the full textAboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL No abstract is available for this article. REFERENCES 1 Z. Takats, J. M. Wiseman, B. Gologan, R. G. Cooks. Science 2001, 306, 471. 2 R. B. Cody, J. A. Laramee, H. D. Durst. Anal. Chem. 2005, 77, 2297. 3 H. Chen, A. Venter, R. G. Cooks. Chem. Commun. 2006, 2042. 4 B. J. McCullough, T. Bristow, G. O'Connor, C. Hopley. Rapid Commun. Mass Spectrom. 2011, 25, 1445. 5 G. F. Wang, Y. Hsieh, W. A. Korfmacher. Anal. Chem. 2005, 77, 541. 6 S. S. Cai, J. A. Syage. Anal. Chem. 2006, 78, 1191. 7 Z. Takats, K. J. Koch, R. G. Cooks. Anal. Chem. 2001, 73, 4522. 8 J. P. Williams, V. J. Patel, R. Holland, J. H. Scrivens. Rapid Commun. Mass Spectrom. 2006, 20, 1447. Citing Literature Volume25, Issue1715 September 2011Pages 2570-2572 ReferencesRelatedInformation
Gas phase methodologies are increasingly used to study the structure of proteins and peptides. A challenge to the mass spectrometrist is to preserve the structure of the system of interest intact and unaltered from solution into the gas phase. Small peptides are very flexible and can present a number of conformations in solution. In this work we examine Melittin a 26 amino acid peptide that forms the active component of honey bee venom. Melittin is haemolytic and has been shown to form an α-helical tetrameric structure by X-ray crystallography [M. Gribskov et al., The RCSB Protein Data Bank, 1990] and to be helical in high concentrations of methanol. Here we use ion mobility mass spectrometry, molecular dynamics and gas-phase HDX to probe its structure in the gas phase and specifically interrogate whether the helical form can be preserved. All low energy calculated structures possess some helicity. In our experiments we examine the peptide following nano-ESI from solutions with varying methanol content. Ion mobility gives collision cross sections (CCS) that compare well with values found from molecular modelling and from other reported structures, but with inconclusive results regarding the effect of solvent. There is only a slight increase in CCS with charge, showing minimal coloumbically driven unfolding. HDX supports preservation of some helical content into the gas phase and again shows little difference in the exchange rates of species sprayed from different solvents. The [M + 3H]3+ species has two exchanging populations both of which exhibit faster exchange rates than observed for the [M + 2H]2+ species. One interpretation for these results is that the time spent being analysed is sufficient for this peptide to form a helix in the 'ultimate' hydrophobic environment of a vacuum.
Due to the ubiquitous presence of polysaccharide moieties on bacterial surfaces, it is hypothesised that a peptide-saccharide interaction plays a key role during the recognition of invading microorganisms by beta-defensins. We have employed different gas-phase methods to investigate these interactions. This manuscript describes: an MS-based titration assay measuring the gas-phase binding of ten beta-defensin related peptides to a sulfated disaccharide derived from heparin (HDD); ion mobility-mass spectrometry-determined collision cross sections of 3 peptides (both free and binding HDD); and results from molecular modelling with the aim of reconciling some of our experimental observations. We observe a clear qualitative correlation between the antimicrobial activity of several beta-defensins and related peptides and their gas-phase binding to a heparin-derived disaccharide (HDD). Four of the ten peptides show >100 micromolar K(d) values with HDD, and no bacteriocidal activity, illustrating that HDD binding correlates with peptide antimicrobial activity. For five of the remaining six peptides, bacteriocidal activity was re-measured with HDD present. For the peptides containing intramolecular disulfide bonds in two out of five, bacteriocidal activity was reduced approximately 10-fold; for the remaining three peptides, which lack intramolecular disulfide bonds, HDD addition had little effect on bacteriocidal activity. The latter results are suggested to arise from the greater degree of flexibility imparted by the removal of disulfide bonds giving the peptides the ability to envelope HDD and assume a "defensin-like" fold. Thus gas-phase analysis is put forward as a powerful tool for assessing the properties of antimicrobial peptides providing valuable insights in the mechanism of antimicrobial inhibition.
Traditionally, in a quadrupole mass filter, ion isolation is achieved by scanning the rf and DC voltages with a fixed ratio. In this paper, we describe an innovative procedure implemented in a digitally driven linear ion trap termed digital asymmetric waveform isolation (DAWI) in which ion isolation is obtained by manipulation of the duty cycle of the rectangular waveforms. Variation of the waveform duty cycle allows introduction of a precisely defined DC quadrupole component into the main trapping field of the quadrupole ion filter. The DAWI method is completely controlled at software level and does not require any hardware modification.
In recent times there has been an enormous rise in resistance to synthetic antibiotics as well as an increase in the virulence of bacteria, the so-called "superbugs". This problem has catalyzed a search for novel molecules to fight bacteria, which in turn relies on a better understanding of the molecular basis of the immune response. beta-defensins are a class of small, cationic, cysteine-rich antimicrobial peptides expressed by humans and other animals to act against incoming pathogens. As well as their antimicrobial properties, beta-defensins also act as chemokines, recruiting cells to the sites of infection. Here the relationship between the tertiary structures of beta-defensin analogs and their chemotactic activities has been investigated using ion mobility-mass spectrometry (IM-MS) and biochemical assays. A panel of derivatives of the murine beta-defensin Defb14 has been formed and the ability of these peptides to chemoattract the receptor CCR6 has been assessed in vitro. The derivatives can be divided into two groups, those with chemotactic activity equal to that of the unmodified parent peptide, and those whose chemotactic activity has been lost upon modification. Analysis by ion mobility-mass spectrometry reveals the conformational preferences of these peptides upon ionization from different solvents. Under denaturing conditions, the chemotactic peptides adopt more compact conformations in the gas-phase at higher charge states than those which are inactive. While the conditions of these experiments are not akin to the environment around the receptor in vivo, this technique provides an in vacuo method for distinguishing between the different chemotactic activities of beta-defensin derivatives.