On the importance of accurate quantification of individual volatile metabolites in exhaled breath
暂无分享,去创建一个
[1] P. Paul,et al. Plasma acetate turnover and oxidation. , 1979, The Journal of clinical investigation.
[2] J. Herbig,et al. Real-time metabolic monitoring with proton transfer reaction mass spectrometry , 2013, Journal of breath research.
[3] David Smith,et al. Quantification of hydrogen cyanide and 2-aminoacetophenone in the headspace of Pseudomonas aeruginos , 2012 .
[4] P. Španěl,et al. Selected ion flow tube: a technique for quantitative trace gas analysis of air and breath , 1996, Medical and Biological Engineering and Computing.
[5] W. Miekisch,et al. Drug detection in breath: effects of pulmonary blood flow and cardiac output on propofol exhalation , 2011, Analytical and bioanalytical chemistry.
[6] Patrik Španěl,et al. Quantification of pentane in exhaled breath, a potential biomarker of bowel disease, using selected ion flow tube mass spectrometry. , 2013, Rapid communications in mass spectrometry : RCM.
[7] P. Španěl,et al. Volatile metabolites in the exhaled breath of healthy volunteers: their levels and distributions , 2007, Journal of breath research.
[8] V. Shestivska,et al. Quantitative analysis of volatile metabolites released in vitro by bacteria of the genus Stenotrophomonas for identification of breath biomarkers of respiratory infection in cystic fibrosis. , 2015, Journal of breath research.
[9] David Smith,et al. Hydrogen cyanide as a biomarker for Pseudomonas aeruginosa in the breath of children with cystic fibrosis , 2009, Pediatric pulmonology.
[10] David Smith,et al. Is Hydrogen Cyanide a Marker of Burkholderia cepacia Complex? , 2013, Journal of Clinical Microbiology.
[11] I. Wilson,et al. A workflow for the metabolomic/metabonomic investigation of exhaled breath using thermal desorption GC-MS. , 2012, Bioanalysis.
[12] Y. Duan,et al. Investigation and identification of breath acetone as a potential biomarker for type 2 diabetes diagnosis , 2014 .
[13] David Smith,et al. Breath concentration of acetic acid vapour is elevated in patients with cystic fibrosis , 2016, Journal of breath research.
[14] J. Beauchamp,et al. On the use of Tedlar® bags for breath-gas sampling and analysis , 2008, Journal of breath research.
[15] David Smith,et al. Hydrogen cyanide concentrations in the breath of adult cystic fibrosis patients with and without Pseudomonas aeruginosa infection , 2013, Journal of breath research.
[16] M. Simrén,et al. Use and abuse of hydrogen breath tests , 2006, Gut.
[17] Peter Oertel,et al. Oral or nasal breathing? Real-time effects of switching sampling route onto exhaled VOC concentrations , 2017, Journal of breath research.
[18] David Smith,et al. Mass spectrometry for real-time quantitative breath analysis , 2014, Journal of breath research.
[19] Claude C. Grigsby,et al. Storage stability of exhaled breath on Tenax TA , 2016, Journal of breath research.
[20] K. Geiger,et al. Analysis of volatile disease markers in blood. , 2001, Clinical chemistry.
[21] A. Buettner,et al. Chemical input - Sensory output: Diverse modes of physiology-flavour interaction , 2010 .
[22] P. Španěl,et al. Account: On the Features, Successes and Challenges of Selected Ion Flow Tube Mass Spectrometry , 2013, European journal of mass spectrometry.
[23] David Smith,et al. Progress in SIFT-MS: breath analysis and other applications. , 2011, Mass spectrometry reviews.
[24] L. Halonen,et al. The origin of mouth-exhaled ammonia , 2014, Journal of breath research.
[26] C. Forsblom,et al. Biochemical pathways of breath ammonia (NH3) generation in patients with end-stage renal disease undergoing hemodialysis , 2016, Journal of breath research.
[27] Sanghyo Kim,et al. Recent analytical approaches to detect exhaled breath ammonia with special reference to renal patients , 2016, Analytical and Bioanalytical Chemistry.
[28] P. Španěl,et al. Ambient analysis of trace compounds in gaseous media by SIFT-MS. , 2011, The Analyst.
[29] P. Španěl,et al. Hydrogen cyanide, a volatile biomarker of Pseudomonas aeruginosa infection , 2013, Journal of breath research.
[30] Wolfram Miekisch,et al. Evaluation of needle trap micro-extraction and automatic alveolar sampling for point-of-care breath analysis , 2013, Analytical and Bioanalytical Chemistry.
[31] David Smith,et al. Breath acetone concentration; biological variability and the influence of diet , 2011, Physiological measurement.
[32] Barbara Bojko,et al. SPME--quo vadis? , 2012, Analytica chimica acta.
[33] J A Covington,et al. The application of FAIMS gas analysis in medical diagnostics. , 2015, The Analyst.
[34] C. L. Paul Thomas,et al. How long may a breath sample be stored for at −80 °C? A study of the stability of volatile organic compounds trapped onto a mixed Tenax:Carbograph trap adsorbent bed from exhaled breath , 2016, Journal of breath research.
[35] P. Dřevínek,et al. Do linear logistic model analyses of volatile biomarkers in exhaled breath of cystic fibrosis patients reliably indicate Pseudomonas aeruginosa infection? , 2016, Journal of breath research.
[36] Claire Turner,et al. Techniques and issues in breath and clinical sample headspace analysis for disease diagnosis. , 2016, Bioanalysis.
[37] P. Španěl,et al. Quantitative analysis of ammonia on the breath of patients in end-stage renal failure. , 1997, Kidney international.
[38] Frans J. M. Harren,et al. A compact laser-based spectrometer for detection of C2H2 in exhaled breath and HCN in vitro , 2015 .
[39] Tianshu Wang,et al. Analysis of breath, exhaled via the mouth and nose, and the air in the oral cavity , 2008, Journal of breath research.
[40] W. Miekisch,et al. Multibed needle trap devices for on site sampling and preconcentration of volatile breath biomarkers. , 2009, Analytical chemistry.
[41] V. Shestivska,et al. Exhaled breath concentrations of acetic acid vapour in gastro-esophageal reflux disease , 2014, Journal of breath research.
[42] P. Dřevínek,et al. Acetic acid is elevated in the exhaled breath of cystic fibrosis patients. , 2017, Journal of cystic fibrosis : official journal of the European Cystic Fibrosis Society.
[43] S Moncada,et al. Endogenous nitric oxide is present in the exhaled air of rabbits, guinea pigs and humans. , 1991, Biochemical and biophysical research communications.
[44] A. Ceccarini,et al. Comparison of sampling bags for the analysis of volatile organic compounds in breath , 2015, Journal of breath research.
[45] T. Märk,et al. Proton transfer reaction-mass spectrometry: fundamentals, recent advances and applications , 2013 .
[46] Haluk Kulah,et al. Breath sensors for lung cancer diagnosis. , 2015, Biosensors & bioelectronics.
[47] A. Buettner,et al. Performance assessment of proton-transfer-reaction time-of-flight mass spectrometry (PTR-TOF-MS) for analysis of isobaric compounds in food-flavour applications , 2014 .
[48] Margaret W Leigh,et al. An official ATS clinical practice guideline: interpretation of exhaled nitric oxide levels (FENO) for clinical applications. , 2011, American journal of respiratory and critical care medicine.
[49] V. Shestivska,et al. Variability in the concentrations of volatile metabolites emitted by genotypically different strains of Pseudomonas aeruginosa , 2012, Journal of applied microbiology.
[50] Christine M. Micheel,et al. Evaluation of Biomarkers and Surrogate Endpoints in Chronic Disease , 2010 .
[51] A. Gossum,et al. Breath pentane analysis as an index of lipid peroxidation: a functional test of vitamin E status. , 1987, The American journal of clinical nutrition.
[52] Ruth Wong,et al. Fractional exhaled nitric oxide for the management of asthma in adults: a systematic review , 2016, European Respiratory Journal.
[53] Tianshu Wang,et al. Generation of volatile compounds on mouth exposure to urea and sucrose: implications for exhaled breath analysis , 2006, Physiological measurement.
[54] David Smith,et al. Time variation of ammonia, acetone, isoprene and ethanol in breath: a quantitative SIFT-MS study over 30 days. , 2003, Physiological measurement.
[55] Ralf Zimmermann,et al. Automated needle trap heart-cut GC/MS and needle trap comprehensive two-dimensional GC/TOF-MS for breath gas analysis in the clinical environment. , 2010, Analytical chemistry.
[56] A. Bergmann,et al. Microextraction techniques in breath biomarker analysis. , 2014, Bioanalysis.
[57] K Geiger,et al. Impact of inspired substance concentrations on the results of breath analysis in mechanically ventilated patients , 2005, Biomarkers : biochemical indicators of exposure, response, and susceptibility to chemicals.
[58] Julien Mandon,et al. Real-time monitoring of hydrogen cyanide (HCN) and ammonia (NH3) emitted by Pseudomonas aeruginosa , 2015, Journal of breath research.
[59] R. Yost,et al. Ion Mobility in Clinical Analysis: Current Progress and Future Perspectives. , 2016, Clinical chemistry.
[60] R. Nelson,et al. Determination of inflammatory bowel disease activity by breath pentane analysis , 1993, Diseases of the colon and rectum.
[61] K. Southern,et al. Exhaled breath hydrogen cyanide as a marker of early Pseudomonas aeruginosa infection in children with cystic fibrosis , 2015, ERJ Open Research.
[62] P. Sobotka,et al. Pentane and isoprene in expired air from humans: gas-chromatographic analysis of single breath. , 1994, Clinical chemistry.
[63] Wolfram Miekisch,et al. Assessment of propofol concentrations in human breath and blood by means of HS-SPME-GC-MS. , 2008, Clinica chimica acta; international journal of clinical chemistry.
[64] David K. Meyerholz,et al. Airway acidification initiates host defense abnormalities in cystic fibrosis mice , 2016, Science.
[65] Sabine Kischkel,et al. Needle trap micro-extraction for VOC analysis: effects of packing materials and desorption parameters. , 2012, Journal of chromatography. A.
[66] M. Maniscalco,et al. Exhaled nitric oxide monitoring in COPD using a portable analyzer. , 2008, Pulmonary pharmacology & therapeutics.
[67] Johan Trygg,et al. Chemometrics in metabolomics--a review in human disease diagnosis. , 2010, Analytica chimica acta.
[68] David Smith,et al. Increase of methanol in exhaled breath quantified by SIFT-MS following aspartame ingestion , 2015, Journal of breath research.
[69] David Smith,et al. A longitudinal study of ammonia, acetone and propanol in the exhaled breath of 30 subjects using selected ion flow tube mass spectrometry, SIFT-MS , 2006, Physiological measurement.
[70] P. Španěl,et al. Kinetics of ethanol decay in mouth- and nose-exhaled breath measured on-line by selected ion flow tube mass spectrometry following varying doses of alcohol. , 2010, Rapid communications in mass spectrometry : RCM.
[71] W. Vautz,et al. Ion mobility spectrometry for microbial volatile organic compounds: a new identification tool for human pathogenic bacteria , 2012, Applied Microbiology and Biotechnology.
[72] W. Monte. Methanol: a chemical Trojan horse as the root of the inscrutable U. , 2010, Medical hypotheses.