Publications
84 found
Show per page
Tang, Z., Yang, J., Su, B., Xu, X., Luo, X., Wang, H., Zhang, K., Huan, T., Sinues, P., Fang, M., & Li, X. (2025). Metabolite Fusion between Breath and Blood Enables More In-Depth Understanding of the Endogenous Metabolome [Journal-article]. Analytical Chemistry. https://doi.org/10.1021/acs.analchem.5c00543
Tang, Z., Yang, J., Su, B., Xu, X., Luo, X., Wang, H., Zhang, K., Huan, T., Sinues, P., Fang, M., & Li, X. (2025). Metabolite Fusion between Breath and Blood Enables More In-Depth Understanding of the Endogenous Metabolome [Journal-article]. Analytical Chemistry. https://doi.org/10.1021/acs.analchem.5c00543
Zeng, J., Stankovic, N., Singh, K. D., Steiner, R., Frey, U., Erb, T., & Sinues, P. (2025). Breath Analysis of Propofol and Associated Metabolic Signatures: A Pilot Study Using Secondary Electrospray Ionization-High-resolution Mass Spectrometry [Journal-article]. Anesthesiology, 143(2), 345–356. https://doi.org/10.1097/aln.0000000000005531
Zeng, J., Stankovic, N., Singh, K. D., Steiner, R., Frey, U., Erb, T., & Sinues, P. (2025). Breath Analysis of Propofol and Associated Metabolic Signatures: A Pilot Study Using Secondary Electrospray Ionization-High-resolution Mass Spectrometry [Journal-article]. Anesthesiology, 143(2), 345–356. https://doi.org/10.1097/aln.0000000000005531
, Richard, Mélina, Singh, Kapil, Sezer, Dilan, Buergler, Sarah, Palermo, Luana, Schulz, Yannick, Tang, Zhifeng, Luo, Xin, Frey, Urs, Cattin, Philippe, Li, Xue, & Gaab, Jens. (2025). Pain induces a rapid characteristic metabolic signature detectable in breath. Research Square. https://doi.org/10.21203/rs.3.rs-6048423/v1
, Richard, Mélina, Singh, Kapil, Sezer, Dilan, Buergler, Sarah, Palermo, Luana, Schulz, Yannick, Tang, Zhifeng, Luo, Xin, Frey, Urs, Cattin, Philippe, Li, Xue, & Gaab, Jens. (2025). Pain induces a rapid characteristic metabolic signature detectable in breath. Research Square. https://doi.org/10.21203/rs.3.rs-6048423/v1
Basler, S., Sievi, N. A., Schmidt, F., Fricke, K., Arvaji, A., Herth, J., Baur, D., Sinues, P., Ulrich, S., & Kohler, M. (2025). Molecular breath profile of acute COPD exacerbations [Journal-article]. Journal of Breath Research, 19(1). https://doi.org/10.1088/1752-7163/ad9ac4
Basler, S., Sievi, N. A., Schmidt, F., Fricke, K., Arvaji, A., Herth, J., Baur, D., Sinues, P., Ulrich, S., & Kohler, M. (2025). Molecular breath profile of acute COPD exacerbations [Journal-article]. Journal of Breath Research, 19(1). https://doi.org/10.1088/1752-7163/ad9ac4
Luo, X., Wang, H., Hu, X., Gligorovski, S., Li, X., & Sinues, P. (2025). Practical Applications of Secondary/Extractive Electrospray Ionization (SESI): A Versatile Tool for Real-Time Chemical Analysis [Journal-article]. Mass Spectrometry Reviews. https://doi.org/10.1002/mas.21938
Luo, X., Wang, H., Hu, X., Gligorovski, S., Li, X., & Sinues, P. (2025). Practical Applications of Secondary/Extractive Electrospray Ionization (SESI): A Versatile Tool for Real-Time Chemical Analysis [Journal-article]. Mass Spectrometry Reviews. https://doi.org/10.1002/mas.21938
Zeng, Jiafa, Usemann, Jakob, Singh, Kapil Dev, Jochmann, Anja, Trachsel, Daniel, Frey, Urs, & . (2024). Pharmacometabolomics via real-time breath analysis captures metabotypes of asthmatic children associated with salbutamol responsiveness. iScience, 27(12). https://doi.org/10.1016/j.isci.2024.111446
Zeng, Jiafa, Usemann, Jakob, Singh, Kapil Dev, Jochmann, Anja, Trachsel, Daniel, Frey, Urs, & . (2024). Pharmacometabolomics via real-time breath analysis captures metabotypes of asthmatic children associated with salbutamol responsiveness. iScience, 27(12). https://doi.org/10.1016/j.isci.2024.111446
Künstle, Noëmi, Gorlanova, Olga, Marten, Andrea, Müller, Loretta, Sharma, Pawan, Röösli, Martin, , Schär, Primo, Schürmann, David, Rüttimann, Céline, Da Silva Sena, Carla Rebeca, Nahum, Uri, Usemann, Jakob, Steinberg, Ruth, Yammine, Sophie, Schulzke, Sven, Latzin, Philipp, Frey, Urs, Wyler, Florian, et al. (2024). Differences in autophagy marker levels at birth in preterm vs. term infants [Journal-article]. Pediatric Research, 96(5), 1299–1305. https://doi.org/10.1038/s41390-024-03273-6
Künstle, Noëmi, Gorlanova, Olga, Marten, Andrea, Müller, Loretta, Sharma, Pawan, Röösli, Martin, , Schär, Primo, Schürmann, David, Rüttimann, Céline, Da Silva Sena, Carla Rebeca, Nahum, Uri, Usemann, Jakob, Steinberg, Ruth, Yammine, Sophie, Schulzke, Sven, Latzin, Philipp, Frey, Urs, Wyler, Florian, et al. (2024). Differences in autophagy marker levels at birth in preterm vs. term infants [Journal-article]. Pediatric Research, 96(5), 1299–1305. https://doi.org/10.1038/s41390-024-03273-6
Awchi, Mo, Singh, Kapil Dev, Brenner, Sara Bachmann, Burckhardt, Marie-Anne, Hess, Melanie, Zeng, Jiafa, Datta, Alexandre N., Frey, Urs, Zumsteg, Urs, Szinnai, Gabor, & . (2024). Metabolic trajectories of diabetic ketoacidosis onset described by breath analysis. Frontiers in Endocrinology, 15. https://doi.org/10.3389/fendo.2024.1360989
Awchi, Mo, Singh, Kapil Dev, Brenner, Sara Bachmann, Burckhardt, Marie-Anne, Hess, Melanie, Zeng, Jiafa, Datta, Alexandre N., Frey, Urs, Zumsteg, Urs, Szinnai, Gabor, & . (2024). Metabolic trajectories of diabetic ketoacidosis onset described by breath analysis. Frontiers in Endocrinology, 15. https://doi.org/10.3389/fendo.2024.1360989
Sola-Martínez, R. A., Zeng, J., Awchi, M., Gisler, A., Arnold, K., Singh, K. D., Frey, U., Díaz, M. C., de Diego Puente, T., & Sinues, P. (2024). Preservation of exhaled breath samples for analysis by off-line SESI-HRMS: proof-of-concept study [Journal-article]. Journal of Breath Research, 18(1). https://doi.org/10.1088/1752-7163/ad10e1
Sola-Martínez, R. A., Zeng, J., Awchi, M., Gisler, A., Arnold, K., Singh, K. D., Frey, U., Díaz, M. C., de Diego Puente, T., & Sinues, P. (2024). Preservation of exhaled breath samples for analysis by off-line SESI-HRMS: proof-of-concept study [Journal-article]. Journal of Breath Research, 18(1). https://doi.org/10.1088/1752-7163/ad10e1
Awchi, M., Singh, K. D., Dill, P. E., Frey, U., Datta, A. N., & Sinues, P. (2023). Prediction of systemic free and total valproic acid by off-line analysis of exhaled breath in epileptic children and adolescents. Journal of Breath Research, 17(4). https://doi.org/10.1088/1752-7163/acf782
Awchi, M., Singh, K. D., Dill, P. E., Frey, U., Datta, A. N., & Sinues, P. (2023). Prediction of systemic free and total valproic acid by off-line analysis of exhaled breath in epileptic children and adolescents. Journal of Breath Research, 17(4). https://doi.org/10.1088/1752-7163/acf782
Arnold, Kim, Dehio, Philippe, Lötscher, Jonas, Singh, Kapil Dev, García-Gómez, Diego, Hess, Christoph, , & Balmer, Maria L. (2023). Real-Time Volatile Metabolomics Analysis of Dendritic Cells. Analytical Chemistry, 95(25), 9415–9421. https://doi.org/10.1021/acs.analchem.3c00516
Arnold, Kim, Dehio, Philippe, Lötscher, Jonas, Singh, Kapil Dev, García-Gómez, Diego, Hess, Christoph, , & Balmer, Maria L. (2023). Real-Time Volatile Metabolomics Analysis of Dendritic Cells. Analytical Chemistry, 95(25), 9415–9421. https://doi.org/10.1021/acs.analchem.3c00516
Awchi M, , Datta AN, García-Gómez D, & Singh KD. (2023). UHPLC-MS/MS-Based Identity Confirmation of Amino Acids Involved in Response to and Side Effects from Antiseizure Medications. Journal of Proteome Research, 22(3), 990–995. https://doi.org/10.1021/acs.jproteome.2c00835
Awchi M, , Datta AN, García-Gómez D, & Singh KD. (2023). UHPLC-MS/MS-Based Identity Confirmation of Amino Acids Involved in Response to and Side Effects from Antiseizure Medications. Journal of Proteome Research, 22(3), 990–995. https://doi.org/10.1021/acs.jproteome.2c00835
Gisler, Amanda, Singh, Kapil Dev, Zeng, Jiafa, Osswald, Martin, Awchi, Mo, Decrue, Fabienne, Schmidt, Felix, Sievi, Noriane A., Chen, Xing, Usemann, Jakob, Frey, Urs, Kohler, Malcolm, Li, Xue, & . (2022). An interoperability framework for multicentric breath metabolomic studies. iScience, 25(12). https://doi.org/10.1016/j.isci.2022.105557
Gisler, Amanda, Singh, Kapil Dev, Zeng, Jiafa, Osswald, Martin, Awchi, Mo, Decrue, Fabienne, Schmidt, Felix, Sievi, Noriane A., Chen, Xing, Usemann, Jakob, Frey, Urs, Kohler, Malcolm, Li, Xue, & . (2022). An interoperability framework for multicentric breath metabolomic studies. iScience, 25(12). https://doi.org/10.1016/j.isci.2022.105557
Gomez-Mejia A., Arnold K., Bar J., Singh K.D., Scheier T.C., Brugger S.D., Zinkernagel A.S., & . (2022). Rapid detection of Staphylococcus aureus and Streptococcus pneumoniae by real-time analysis of volatile metabolites. iScience, 25(10). https://doi.org/10.1016/j.isci.2022.105080
Gomez-Mejia A., Arnold K., Bar J., Singh K.D., Scheier T.C., Brugger S.D., Zinkernagel A.S., & . (2022). Rapid detection of Staphylococcus aureus and Streptococcus pneumoniae by real-time analysis of volatile metabolites. iScience, 25(10). https://doi.org/10.1016/j.isci.2022.105080
Arnold K., Chen X., Zhang H., Singh K.D., Yin Z., Yao Y., Luan T., , & Li X. (2022). In vivo detection of metabolic 2H-incorporation upon ingestion of 2H2O. Journal of Bio-X Research, 5(2), 81–89. https://doi.org/10.1097/jbr.0000000000000121
Arnold K., Chen X., Zhang H., Singh K.D., Yin Z., Yao Y., Luan T., , & Li X. (2022). In vivo detection of metabolic 2H-incorporation upon ingestion of 2H2O. Journal of Bio-X Research, 5(2), 81–89. https://doi.org/10.1097/jbr.0000000000000121
Zeng, Jiafa, Christen, Alexandra, Singh, Kapil Dev, Frey, Urs, & . (2022). Comparison of Plasma Ionization- and Secondary Electrospray IonizationHigh-resolution Mass Spectrometry for Real-time Breath Analysis. Chimia, 76(1-2), 127–132. https://doi.org/10.2533/chimia.2022.127
Zeng, Jiafa, Christen, Alexandra, Singh, Kapil Dev, Frey, Urs, & . (2022). Comparison of Plasma Ionization- and Secondary Electrospray IonizationHigh-resolution Mass Spectrometry for Real-time Breath Analysis. Chimia, 76(1-2), 127–132. https://doi.org/10.2533/chimia.2022.127
Decrue, F., Gorlanova, O., Salem, Y., Vienneau, D., de Hoogh, K., Gisler, A., Usemann, J., Korten, I., Nahum, U., , Schulzke, S., Fuchs, O., Latzin, P., Röösli, M., Frey, U., & Bild Study Group,. (2022). Increased impact of air pollution on lung function in preterm versus term infants: the BILD study. American Journal of Respiratory and Critical Care Medicine, 205(1), 99–107. https://doi.org/10.1164/rccm.202102-0272oc
Decrue, F., Gorlanova, O., Salem, Y., Vienneau, D., de Hoogh, K., Gisler, A., Usemann, J., Korten, I., Nahum, U., , Schulzke, S., Fuchs, O., Latzin, P., Röösli, M., Frey, U., & Bild Study Group,. (2022). Increased impact of air pollution on lung function in preterm versus term infants: the BILD study. American Journal of Respiratory and Critical Care Medicine, 205(1), 99–107. https://doi.org/10.1164/rccm.202102-0272oc
Gorlanova, O., Oller, H., Marten, A., Müller, L., Laine-Carmelli, J., Decrue, F., Salem, Y., Vienneau, D., de Hoogh, K., Gisler, A., Usemann, J., Korten, I., Yammine, S., Nahum, U., Künstle, N., , Schulzke, S., Latzin, P., Fuchs, O., et al. (2022). Ambient prenatal air pollution exposure is associated with low cord blood IL-17a in infants. Pediatric Allergy and Immunology, 34, e13902. https://doi.org/10.1111/pai.13902
Gorlanova, O., Oller, H., Marten, A., Müller, L., Laine-Carmelli, J., Decrue, F., Salem, Y., Vienneau, D., de Hoogh, K., Gisler, A., Usemann, J., Korten, I., Yammine, S., Nahum, U., Künstle, N., , Schulzke, S., Latzin, P., Fuchs, O., et al. (2022). Ambient prenatal air pollution exposure is associated with low cord blood IL-17a in infants. Pediatric Allergy and Immunology, 34, e13902. https://doi.org/10.1111/pai.13902
Schmidt, F., Baumgartner, P., Basler, S., Huang, A., Curioni-Fontecedro, A., Opitz, I, Schneiter, D., Franzen, D., Gao, B., , & Kohler, M. (2022). Lung cancer diagnostics with real-time breath analysis: an innovative case-control study (LUCAbreath). Oncology Research and Treatment, 45, 270.
Schmidt, F., Baumgartner, P., Basler, S., Huang, A., Curioni-Fontecedro, A., Opitz, I, Schneiter, D., Franzen, D., Gao, B., , & Kohler, M. (2022). Lung cancer diagnostics with real-time breath analysis: an innovative case-control study (LUCAbreath). Oncology Research and Treatment, 45, 270.
Osswald M, Kohlbrenner D, Nowak N, Spörri J, , Nieman D, Sievi NA, Scherr J, & Kohler M. (2021). Real-time monitoring of metabolism during exercise by exhaled breath. Metabolites, 11(12). https://doi.org/10.3390/metabo11120856
Osswald M, Kohlbrenner D, Nowak N, Spörri J, , Nieman D, Sievi NA, Scherr J, & Kohler M. (2021). Real-time monitoring of metabolism during exercise by exhaled breath. Metabolites, 11(12). https://doi.org/10.3390/metabo11120856
Singh KD, Osswald M, Ziesenitz VC, Awchi M, Usemann J, Imbach LL, Kohler M, García-Gómez D, van den Anker J, Frey U, Datta AN, & . (2021). Personalised therapeutic management of epileptic patients guided by pathway-driven breath metabolomics. Communications Medicine, 1(1), 21. https://doi.org/10.1038/s43856-021-00021-3
Singh KD, Osswald M, Ziesenitz VC, Awchi M, Usemann J, Imbach LL, Kohler M, García-Gómez D, van den Anker J, Frey U, Datta AN, & . (2021). Personalised therapeutic management of epileptic patients guided by pathway-driven breath metabolomics. Communications Medicine, 1(1), 21. https://doi.org/10.1038/s43856-021-00021-3
Decrue, Fabienne, Singh, Kapil Dev, Gisler, Amanda, Awchi, Mo, Zeng, Jiafa, Usemann, Jakob, Frey, Urs, & . (2021). Combination of Exhaled Breath Analysis with Parallel Lung Function and FeNO Measurements in Infants. Analytical Chemistry, 93(47), 15579–15583. https://doi.org/10.1021/acs.analchem.1c02036
Decrue, Fabienne, Singh, Kapil Dev, Gisler, Amanda, Awchi, Mo, Zeng, Jiafa, Usemann, Jakob, Frey, Urs, & . (2021). Combination of Exhaled Breath Analysis with Parallel Lung Function and FeNO Measurements in Infants. Analytical Chemistry, 93(47), 15579–15583. https://doi.org/10.1021/acs.analchem.1c02036
Nowak N, Gaisl T, Miladinovic D, Marcinkevics R, Osswald M, Bauer S, Buhmann J, Zenobi R, , Brown SA, & Kohler M. (2021). Rapid and reversible control of human metabolism by individual sleep states. Cell Reports, 37(4), 109903. https://doi.org/10.1016/j.celrep.2021.109903
Nowak N, Gaisl T, Miladinovic D, Marcinkevics R, Osswald M, Bauer S, Buhmann J, Zenobi R, , Brown SA, & Kohler M. (2021). Rapid and reversible control of human metabolism by individual sleep states. Cell Reports, 37(4), 109903. https://doi.org/10.1016/j.celrep.2021.109903
López-Lorente CI, Awchi M, , & García-Gómez D. (2021). Real-time pharmacokinetics via online analysis of exhaled breath. Journal of Pharmaceutical and Biomedical Analysis, 205, 114311. https://doi.org/10.1016/j.jpba.2021.114311
López-Lorente CI, Awchi M, , & García-Gómez D. (2021). Real-time pharmacokinetics via online analysis of exhaled breath. Journal of Pharmaceutical and Biomedical Analysis, 205, 114311. https://doi.org/10.1016/j.jpba.2021.114311
Liu C, Zeng J, , Fang M, Zhou Z, & Li X. (2021). Quantification of volatile organic compounds by secondary electrospray ionization-high resolution mass spectrometry. Analytica Chimica Acta, 1180, 338876. https://doi.org/10.1016/j.aca.2021.338876
Liu C, Zeng J, , Fang M, Zhou Z, & Li X. (2021). Quantification of volatile organic compounds by secondary electrospray ionization-high resolution mass spectrometry. Analytica Chimica Acta, 1180, 338876. https://doi.org/10.1016/j.aca.2021.338876
Decrue, F., Gorlanova, O., Salem, Y., Vienneau, D., De Hoogh, K., Gisler, A., Usemann, J., Korten, I., Nahum, U., Sinues, P., Schulzke, S., Fuchs, O., Latzin, P., Röösli, M., & Frey, U. (2021, September 5). Increased impact of air pollution on lung function in preterm vs. term infants: the BILD study [Proceedings-article]. https://doi.org/10.1183/13993003.congress-2021.oa2958
Decrue, F., Gorlanova, O., Salem, Y., Vienneau, D., De Hoogh, K., Gisler, A., Usemann, J., Korten, I., Nahum, U., Sinues, P., Schulzke, S., Fuchs, O., Latzin, P., Röösli, M., & Frey, U. (2021, September 5). Increased impact of air pollution on lung function in preterm vs. term infants: the BILD study [Proceedings-article]. https://doi.org/10.1183/13993003.congress-2021.oa2958
Osswald, M., Kohlbrenner, D., Nowak, N., Sievi, Noriane a., Mandler, D., Zenobi, R., Sinues, P., Spörri, J., Scherr, J., & Kohler, M. (2021, September 5). Exercise metabolism: the key to performance [Proceedings-article]. https://doi.org/10.1183/13993003.congress-2021.pa3226
Osswald, M., Kohlbrenner, D., Nowak, N., Sievi, Noriane a., Mandler, D., Zenobi, R., Sinues, P., Spörri, J., Scherr, J., & Kohler, M. (2021, September 5). Exercise metabolism: the key to performance [Proceedings-article]. https://doi.org/10.1183/13993003.congress-2021.pa3226
Nowak N, Engler A, Thiel S, Stöberl AS, , Zenobi R, & Kohler M. (2021). Validation of breath biomarkers for obstructive sleep apnea. Sleep Medicine, 85, 75–86. https://doi.org/10.1016/j.sleep.2021.06.040
Nowak N, Engler A, Thiel S, Stöberl AS, , Zenobi R, & Kohler M. (2021). Validation of breath biomarkers for obstructive sleep apnea. Sleep Medicine, 85, 75–86. https://doi.org/10.1016/j.sleep.2021.06.040
Yin Z , Huang W , Singh KD , Chen Z , Chen X , Zhou Z , Yang Z , , & Li X . (2021). In vivomonitoring of volatile metabolic trajectories enables rapid diagnosis of influenza A infection. Chemical Communications, 57(39), 4791–4794. https://doi.org/10.1039/d1cc01061a
Yin Z , Huang W , Singh KD , Chen Z , Chen X , Zhou Z , Yang Z , , & Li X . (2021). In vivomonitoring of volatile metabolic trajectories enables rapid diagnosis of influenza A infection. Chemical Communications, 57(39), 4791–4794. https://doi.org/10.1039/d1cc01061a
Chen X, Zhang K, Yin Z, Fang M, Pu W, Liu Z, Li L, , Dallmann R, Zhou Z, & Li X. (2021). Online Real-Time Monitoring of Exhaled Breath Particles Reveals Unnoticed Transport of Nonvolatile Drugs from Blood to Breath. Analytical Chemistry, 93(12), 5005–5008. https://doi.org/10.1021/acs.analchem.1c00509
Chen X, Zhang K, Yin Z, Fang M, Pu W, Liu Z, Li L, , Dallmann R, Zhou Z, & Li X. (2021). Online Real-Time Monitoring of Exhaled Breath Particles Reveals Unnoticed Transport of Nonvolatile Drugs from Blood to Breath. Analytical Chemistry, 93(12), 5005–5008. https://doi.org/10.1021/acs.analchem.1c00509
Brown SA, & . (2021). Circadian Metabolomics from Breath. Methods in Molecular Biology, 2130, 149–156. https://doi.org/10.1007/978-1-0716-0381-9_11
Brown SA, & . (2021). Circadian Metabolomics from Breath. Methods in Molecular Biology, 2130, 149–156. https://doi.org/10.1007/978-1-0716-0381-9_11
Lan J, Gisler A, Bruderer T, , & Zenobi R. (2021). Monitoring peppermint washout in the breath metabolome by secondary electrospray ionization-high resolution mass spectrometry. Journal of Breath Research, 15(2). https://doi.org/10.1088/1752-7163/ab9f8a
Lan J, Gisler A, Bruderer T, , & Zenobi R. (2021). Monitoring peppermint washout in the breath metabolome by secondary electrospray ionization-high resolution mass spectrometry. Journal of Breath Research, 15(2). https://doi.org/10.1088/1752-7163/ab9f8a
Wilkinson M., White I., Hamshere K., Holz O., Schuchardt S., Bellagambi F.G., Lomonaco T., Biagini D., Di F.F., Fowler S.J., Beauchamp J.D., Cristescu S.M., Focant J.-F., Franchina F.A., Grassin-Delyle S., Hadjithekli A., Henderson B., , Langejurgen J., et al. (2021). The peppermint breath test: A benchmarking protocol for breath sampling and analysis using GC-MS. Journal of Breath Research, 15(2). https://doi.org/10.1088/1752-7163/abd28c
Wilkinson M., White I., Hamshere K., Holz O., Schuchardt S., Bellagambi F.G., Lomonaco T., Biagini D., Di F.F., Fowler S.J., Beauchamp J.D., Cristescu S.M., Focant J.-F., Franchina F.A., Grassin-Delyle S., Hadjithekli A., Henderson B., , Langejurgen J., et al. (2021). The peppermint breath test: A benchmarking protocol for breath sampling and analysis using GC-MS. Journal of Breath Research, 15(2). https://doi.org/10.1088/1752-7163/abd28c
Henderson B, Ruszkiewicz DM, Wilkinson M, Beauchamp JD, Cristescu SM, Fowler SJ, Salman D, Francesco FD, Koppen G, Langejürgen J, Holz O, Hadjithekli A, Moreno S, Pedrotti M, , Slingers G, Wilde M, Lomonaco T, Zanella D, et al. (2020). A benchmarking protocol for breath analysis: The peppermint experiment. Journal of Breath Research, 14(4), 46008. https://doi.org/10.1088/1752-7163/aba130
Henderson B, Ruszkiewicz DM, Wilkinson M, Beauchamp JD, Cristescu SM, Fowler SJ, Salman D, Francesco FD, Koppen G, Langejürgen J, Holz O, Hadjithekli A, Moreno S, Pedrotti M, , Slingers G, Wilde M, Lomonaco T, Zanella D, et al. (2020). A benchmarking protocol for breath analysis: The peppermint experiment. Journal of Breath Research, 14(4), 46008. https://doi.org/10.1088/1752-7163/aba130
Gisler, Amanda, Lan, Jiayi, Singh, Kapil Dev, Usemann, Jakob, Frey, Urs, Zenobi, Renato, & . (2020). Real-time breath analysis of exhaled compounds upon peppermint oil ingestion by secondary electrospray ionization-high resolution mass spectrometry: technical aspects. Journal of Breath Research, 14(4). https://doi.org/10.1088/1752-7163/ab9f8b
Gisler, Amanda, Lan, Jiayi, Singh, Kapil Dev, Usemann, Jakob, Frey, Urs, Zenobi, Renato, & . (2020). Real-time breath analysis of exhaled compounds upon peppermint oil ingestion by secondary electrospray ionization-high resolution mass spectrometry: technical aspects. Journal of Breath Research, 14(4). https://doi.org/10.1088/1752-7163/ab9f8b
Gaugg, Martin Thomas, Engler, Anna, Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, Eiffert, Lara, Bruderer, Tobias, Zenobi, Renato, , & Kohler, Malcolm. (2019). Molecular breath analysis supports altered amino acid metabolism in idiopathic pulmonary fibrosis. Respirology (Carlton, Vic.), 24(5), 437–444. https://doi.org/10.1111/resp.13465
Gaugg, Martin Thomas, Engler, Anna, Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, Eiffert, Lara, Bruderer, Tobias, Zenobi, Renato, , & Kohler, Malcolm. (2019). Molecular breath analysis supports altered amino acid metabolism in idiopathic pulmonary fibrosis. Respirology (Carlton, Vic.), 24(5), 437–444. https://doi.org/10.1111/resp.13465
Gaugg, Martin Thomas, Nussbaumer-Ochsner, Yvonne, Bregy, Lukas, Engler, Anna, Stebler, Nina, Gaisl, Thomas, Bruderer, Tobias, Nowak, Nora, , Zenobi, Renato, & Kohler, Malcolm. (2019). Real-Time Breath Analysis Reveals Specific Metabolic Signatures of COPD Exacerbations. Chest, 156(2), 269–276. https://doi.org/10.1016/j.chest.2018.12.023
Gaugg, Martin Thomas, Nussbaumer-Ochsner, Yvonne, Bregy, Lukas, Engler, Anna, Stebler, Nina, Gaisl, Thomas, Bruderer, Tobias, Nowak, Nora, , Zenobi, Renato, & Kohler, Malcolm. (2019). Real-Time Breath Analysis Reveals Specific Metabolic Signatures of COPD Exacerbations. Chest, 156(2), 269–276. https://doi.org/10.1016/j.chest.2018.12.023
Singh, Kapil Dev, Tancev, Georgi, Decrue, Fabienne, Usemann, Jakob, Appenzeller, Rhea, Barreiro, Pedro, Jaumà, Gabriel, Macia Santiago, Miriam, Vidal de Miguel, Guillermo, Frey, Urs, & . (2019). Standardization procedures for real-time breath analysis by secondary electrospray ionization high-resolution mass spectrometry. Analytical and Bioanalytical Chemistry, 411(19), 4883–4898. https://doi.org/10.1007/s00216-019-01764-8
Singh, Kapil Dev, Tancev, Georgi, Decrue, Fabienne, Usemann, Jakob, Appenzeller, Rhea, Barreiro, Pedro, Jaumà, Gabriel, Macia Santiago, Miriam, Vidal de Miguel, Guillermo, Frey, Urs, & . (2019). Standardization procedures for real-time breath analysis by secondary electrospray ionization high-resolution mass spectrometry. Analytical and Bioanalytical Chemistry, 411(19), 4883–4898. https://doi.org/10.1007/s00216-019-01764-8
Gaisl, Thomas, Bregy, Lukas, Stebler, Nina, Gaugg, Martin T, Bruderer, Tobias, García-Gómez, Diego, Moeller, Alexander, Singer, Florian, Schwarz, Esther I, Benden, Christian, , Zenobi, Renato, & Kohler, Malcolm. (2018). Real-Time exhaled breath analysis in patients with cystic fibrosis and controls. Journal of Breath Research, 12(3), 36013. https://doi.org/10.1088/1752-7163/aab7fd
Gaisl, Thomas, Bregy, Lukas, Stebler, Nina, Gaugg, Martin T, Bruderer, Tobias, García-Gómez, Diego, Moeller, Alexander, Singer, Florian, Schwarz, Esther I, Benden, Christian, , Zenobi, Renato, & Kohler, Malcolm. (2018). Real-Time exhaled breath analysis in patients with cystic fibrosis and controls. Journal of Breath Research, 12(3), 36013. https://doi.org/10.1088/1752-7163/aab7fd
Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, , García-Gómez, Diego, Suter, Yannick, Gaisl, Thomas, Stebler, Nina, Gaugg, Martin Thomas, Kohler, Malcolm, & Zenobi, Renato. (2018). Real-time mass spectrometric identification of metabolites characteristic of chronic obstructive pulmonary disease in exhaled breath. Clinical Mass Spectrometry, 7, 29–35. https://doi.org/10.1016/j.clinms.2018.02.003
Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, , García-Gómez, Diego, Suter, Yannick, Gaisl, Thomas, Stebler, Nina, Gaugg, Martin Thomas, Kohler, Malcolm, & Zenobi, Renato. (2018). Real-time mass spectrometric identification of metabolites characteristic of chronic obstructive pulmonary disease in exhaled breath. Clinical Mass Spectrometry, 7, 29–35. https://doi.org/10.1016/j.clinms.2018.02.003
Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, , García-Gómez, Diego, Suter, Yannick, Gaisl, Thomas, Stebler, Nina, Thomas Gaugg, Martin, Kohler, Malcolm, & Zenobi, Renato. (2018). Real-time mass spectrometric identification of metabolites characteristic of chronic obstructive pulmonary disease in exhaled breath. Clinical Mass Spectrometry, 7, 29–35. https://doi.org/10.1016/j.clinms.2018.02.003
Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, , García-Gómez, Diego, Suter, Yannick, Gaisl, Thomas, Stebler, Nina, Thomas Gaugg, Martin, Kohler, Malcolm, & Zenobi, Renato. (2018). Real-time mass spectrometric identification of metabolites characteristic of chronic obstructive pulmonary disease in exhaled breath. Clinical Mass Spectrometry, 7, 29–35. https://doi.org/10.1016/j.clinms.2018.02.003
Singh, Kapil Dev, Del Miguel, Guillermo Vidal, Gaugg, Martin Thomas, Ibañez, Alfredo J., Zenobi, Renato, Kohler, Malcolm, Frey, Urs, & (2018). Translating secondary electrospray ionization-high-resolution mass spectrometry to the clinical environment. Journal of Breath Research, 12(2), 27113. https://doi.org/10.1088/1752-7163/aa9ee3
Singh, Kapil Dev, Del Miguel, Guillermo Vidal, Gaugg, Martin Thomas, Ibañez, Alfredo J., Zenobi, Renato, Kohler, Malcolm, Frey, Urs, & (2018). Translating secondary electrospray ionization-high-resolution mass spectrometry to the clinical environment. Journal of Breath Research, 12(2), 27113. https://doi.org/10.1088/1752-7163/aa9ee3
Tejero Rioseras, Alberto, Singh, Kapil Dev, Nowak, Nora, Gaugg, Martin T., Bruderer, Tobias, Zenobi, Renato, & (2018). Real-Time Monitoring of Tricarboxylic Acid Metabolites in Exhaled Breath. Analytical Chemistry, 90(11), 6453–6460. https://doi.org/10.1021/acs.analchem.7b04600
Tejero Rioseras, Alberto, Singh, Kapil Dev, Nowak, Nora, Gaugg, Martin T., Bruderer, Tobias, Zenobi, Renato, & (2018). Real-Time Monitoring of Tricarboxylic Acid Metabolites in Exhaled Breath. Analytical Chemistry, 90(11), 6453–6460. https://doi.org/10.1021/acs.analchem.7b04600
Farrell, Ross R., Fahrentrapp, Johannes, Garcia-Gomez, Diego, , & Zenobi, Renato. (2017). Rapid fingerprinting of grape volatile composition using secondary electrospray ionization orbitrap mass spectrometry: A preliminary study of grape ripening. Food Control, 81, 107–112. https://doi.org/10.1016/j.foodcont.2017.04.041
Farrell, Ross R., Fahrentrapp, Johannes, Garcia-Gomez, Diego, , & Zenobi, Renato. (2017). Rapid fingerprinting of grape volatile composition using secondary electrospray ionization orbitrap mass spectrometry: A preliminary study of grape ripening. Food Control, 81, 107–112. https://doi.org/10.1016/j.foodcont.2017.04.041
Gaugg, Martin Thomas, Bruderer, Tobias, Nowak, Nora, Eiffert, Lara, , Kohler, Malcolm, & Zenobi, Renato. (2017). Mass-Spectrometric Detection of Omega-Oxidation Products of Aliphatic Fatty Acids in Exhaled Breath. Analytical Chemistry, 89(19), 10329–10334. https://doi.org/10.1021/acs.analchem.7b02092
Gaugg, Martin Thomas, Bruderer, Tobias, Nowak, Nora, Eiffert, Lara, , Kohler, Malcolm, & Zenobi, Renato. (2017). Mass-Spectrometric Detection of Omega-Oxidation Products of Aliphatic Fatty Acids in Exhaled Breath. Analytical Chemistry, 89(19), 10329–10334. https://doi.org/10.1021/acs.analchem.7b02092
Tejero Rioseras, Alberto, Thomas Gaugg, Martin, & . (2017). Secondary electrospray ionization proceeds: Via gas-phase chemical ionization. Analytical Methods, 9(34), 5052–5057. https://doi.org/10.1039/c7ay01121k
Tejero Rioseras, Alberto, Thomas Gaugg, Martin, & . (2017). Secondary electrospray ionization proceeds: Via gas-phase chemical ionization. Analytical Methods, 9(34), 5052–5057. https://doi.org/10.1039/c7ay01121k
Gaugg, Martin T, Engler, Anna, Nussbaumer-Ochsner, Yvonne, Bregy, Lukas, Stöberl, Anna S, Gaisl, Thomas, Bruderer, Tobias, Zenobi, Renato, Kohler, Malcolm, & . (2017). Metabolic effects of inhaled salbutamol determined by exhaled breath analysis. Journal of Breath Research, 11(4), 46004. https://doi.org/10.1088/1752-7163/aa7caa
Gaugg, Martin T, Engler, Anna, Nussbaumer-Ochsner, Yvonne, Bregy, Lukas, Stöberl, Anna S, Gaisl, Thomas, Bruderer, Tobias, Zenobi, Renato, Kohler, Malcolm, & . (2017). Metabolic effects of inhaled salbutamol determined by exhaled breath analysis. Journal of Breath Research, 11(4), 46004. https://doi.org/10.1088/1752-7163/aa7caa
Gaisl, T., Bregy, L., Stebler, N., Gaugg, M., Bruderer, T., García-Gómez, D., Möller, A., Singer, F., Schwarz, E., Benden, C., , Zenobi, R., & Kohler, M. (2017). P205 Real-time exhaled breath analysis identifies altered metabolic signature in cystic fibrosis [Journal-article]. Chest, 151(5), A104. https://doi.org/10.1016/j.chest.2017.04.110
Gaisl, T., Bregy, L., Stebler, N., Gaugg, M., Bruderer, T., García-Gómez, D., Möller, A., Singer, F., Schwarz, E., Benden, C., , Zenobi, R., & Kohler, M. (2017). P205 Real-time exhaled breath analysis identifies altered metabolic signature in cystic fibrosis [Journal-article]. Chest, 151(5), A104. https://doi.org/10.1016/j.chest.2017.04.110
Gaugg, M.T., Nussbaumer-Ochsner, Y., Bregy, L., Engler, A., Stebler, N., Bruderer, T., , Zenobi, R., & Kohler, M. (2017). 110 On-line breath analysis with secondary electrospray ionization discriminates between COPD patients with and without frequent exacerbations [Journal-article]. Chest, 151(5), A5. https://doi.org/10.1016/j.chest.2017.04.006
Gaugg, M.T., Nussbaumer-Ochsner, Y., Bregy, L., Engler, A., Stebler, N., Bruderer, T., , Zenobi, R., & Kohler, M. (2017). 110 On-line breath analysis with secondary electrospray ionization discriminates between COPD patients with and without frequent exacerbations [Journal-article]. Chest, 151(5), A5. https://doi.org/10.1016/j.chest.2017.04.006
Nussbaumer-Ochsner, Y., Gaugg, M.T., Bregy, L., Engler, A., Anna Sophie, S., Gaisl, T., , Kohler, M., & Zenobi, R. (2017). P149 Targeted on-line breath analysis discriminates COPD patients vs. healthy controls and subjects suffering from asthma [Journal-article]. Chest, 151(5), A46–A47. https://doi.org/10.1016/j.chest.2017.04.050
Nussbaumer-Ochsner, Y., Gaugg, M.T., Bregy, L., Engler, A., Anna Sophie, S., Gaisl, T., , Kohler, M., & Zenobi, R. (2017). P149 Targeted on-line breath analysis discriminates COPD patients vs. healthy controls and subjects suffering from asthma [Journal-article]. Chest, 151(5), A46–A47. https://doi.org/10.1016/j.chest.2017.04.050
, Nussbaumer-Ochsner, Y., Gaugg, M. T., Bregy, L., Engler, A., Zenobi, R., & Kohler, M. (2017). 119 Exhaled breath analysis by real-time mass spectrometry in patients with pulmonary fibrosis [Journal-article]. Chest, 151(5), A16. https://doi.org/10.1016/j.chest.2017.04.017
, Nussbaumer-Ochsner, Y., Gaugg, M. T., Bregy, L., Engler, A., Zenobi, R., & Kohler, M. (2017). 119 Exhaled breath analysis by real-time mass spectrometry in patients with pulmonary fibrosis [Journal-article]. Chest, 151(5), A16. https://doi.org/10.1016/j.chest.2017.04.017
, Kohler M, Brown SA, Zenobi R, & Dallmann R. (2017). Gauging circadian variation in ketamine metabolism by real-time breath analysis. Chemical Communications, 53(14), 2264–2267. https://doi.org/10.1039/c6cc09061c
, Kohler M, Brown SA, Zenobi R, & Dallmann R. (2017). Gauging circadian variation in ketamine metabolism by real-time breath analysis. Chemical Communications, 53(14), 2264–2267. https://doi.org/10.1039/c6cc09061c
Tejero Rioseras, Alberto, Garcia Gomez, Diego, Ebert, Birgitta E., Blank, Lars M., Ibáñez, Alfredo J., & (2017). Comprehensive Real-Time Analysis of the Yeast Volatilome. Scientific Reports, 7(1), 14236. https://doi.org/10.1038/s41598-017-14554-y
Tejero Rioseras, Alberto, Garcia Gomez, Diego, Ebert, Birgitta E., Blank, Lars M., Ibáñez, Alfredo J., & (2017). Comprehensive Real-Time Analysis of the Yeast Volatilome. Scientific Reports, 7(1), 14236. https://doi.org/10.1038/s41598-017-14554-y
Barrios-Collado C., Garcia-Gomez D., Zenobi R., Vidal-De-Miguel G., Ibanez A.J., & (2016). Real time read-out of plant metabolism. Chimia, 70(9), 660. https://doi.org/10.2533/chimia.2016.660
Barrios-Collado C., Garcia-Gomez D., Zenobi R., Vidal-De-Miguel G., Ibanez A.J., & (2016). Real time read-out of plant metabolism. Chimia, 70(9), 660. https://doi.org/10.2533/chimia.2016.660
Gaisl, T., García-Gómez, D., Bregy, L., Cremonesi, A., Martinez-Lozano Sinues, P., Kohler, M., & Zenobi, R. (2016, September 1). Real-time determination of slightly volatile amino acids in the exhalome by secondary electrospray ionization. A proof-of-principle study [Proceedings-article]. https://doi.org/10.1183/13993003.congress-2016.pa3551
Gaisl, T., García-Gómez, D., Bregy, L., Cremonesi, A., Martinez-Lozano Sinues, P., Kohler, M., & Zenobi, R. (2016, September 1). Real-time determination of slightly volatile amino acids in the exhalome by secondary electrospray ionization. A proof-of-principle study [Proceedings-article]. https://doi.org/10.1183/13993003.congress-2016.pa3551
Barrios-Collado, César, García-Gómez, Diego, Zenobi, Renato, Vidal-de-Miguel, Guillermo, Ibáñez, Alfredo J, & . (2016). Capturing in Vivo Plant Metabolism by Real-Time Analysis of Low to High Molecular Weight Volatiles. Analytical Chemistry, 88(4), 2406–2412. https://doi.org/10.1021/acs.analchem.5b04452
Barrios-Collado, César, García-Gómez, Diego, Zenobi, Renato, Vidal-de-Miguel, Guillermo, Ibáñez, Alfredo J, & . (2016). Capturing in Vivo Plant Metabolism by Real-Time Analysis of Low to High Molecular Weight Volatiles. Analytical Chemistry, 88(4), 2406–2412. https://doi.org/10.1021/acs.analchem.5b04452
Barrios-Collado C., Vidal-De-Miguel G., & (2016). Numerical modeling and experimental validation of a universal secondary electrospray ionization source for mass spectrometric gas analysis in real-time. Sensors and Actuators, B: Chemical, 223, 217–225. https://doi.org/10.1016/j.snb.2015.09.073
Barrios-Collado C., Vidal-De-Miguel G., & (2016). Numerical modeling and experimental validation of a universal secondary electrospray ionization source for mass spectrometric gas analysis in real-time. Sensors and Actuators, B: Chemical, 223, 217–225. https://doi.org/10.1016/j.snb.2015.09.073
Schwarz, Esther I, , Bregy, Lukas, Gaisl, Thomas, Garcia Gomez, Diego, Gaugg, Martin T, Suter, Yannick, Stebler, Nina, Nussbaumer-Ochsner, Yvonne, Bloch, Konrad E, Stradling, John R, Zenobi, Renato, & Kohler, Malcolm. (2016). Effects of CPAP therapy withdrawal on exhaled breath pattern in obstructive sleep apnoea. Thorax, 71(2), 110–117. https://doi.org/10.1136/thoraxjnl-2015-207597
Schwarz, Esther I, , Bregy, Lukas, Gaisl, Thomas, Garcia Gomez, Diego, Gaugg, Martin T, Suter, Yannick, Stebler, Nina, Nussbaumer-Ochsner, Yvonne, Bloch, Konrad E, Stradling, John R, Zenobi, Renato, & Kohler, Malcolm. (2016). Effects of CPAP therapy withdrawal on exhaled breath pattern in obstructive sleep apnoea. Thorax, 71(2), 110–117. https://doi.org/10.1136/thoraxjnl-2015-207597
García-Gómez, Diego, Gaisl, Thomas, Bregy, Lukas, , Kohler, Malcolm, & Zenobi, Renato. (2016). Secondary electrospray ionization coupled to high-resolution mass spectrometry reveals tryptophan pathway metabolites in exhaled human breath. Chemical Communications, 52(55), 8526–8528. https://doi.org/10.1039/c6cc03070j
García-Gómez, Diego, Gaisl, Thomas, Bregy, Lukas, , Kohler, Malcolm, & Zenobi, Renato. (2016). Secondary electrospray ionization coupled to high-resolution mass spectrometry reveals tryptophan pathway metabolites in exhaled human breath. Chemical Communications, 52(55), 8526–8528. https://doi.org/10.1039/c6cc03070j
García-Gómez, Diego, Gaisl, Thomas, Bregy, Lukas, Cremonesi, Alessio, , Kohler, Malcolm, & Zenobi, Renato. (2016). Real-Time Quantification of Amino Acids in the Exhalome by Secondary Electrospray Ionization-Mass Spectrometry: A Proof-of-Principle Study. Clinical Chemistry, 62(9), 7–1230. https://doi.org/10.1373/clinchem.2016.256909
García-Gómez, Diego, Gaisl, Thomas, Bregy, Lukas, Cremonesi, Alessio, , Kohler, Malcolm, & Zenobi, Renato. (2016). Real-Time Quantification of Amino Acids in the Exhalome by Secondary Electrospray Ionization-Mass Spectrometry: A Proof-of-Principle Study. Clinical Chemistry, 62(9), 7–1230. https://doi.org/10.1373/clinchem.2016.256909
Trecate, Giovanna, , & Orlandi, Rosaria. (2016). Noninvasive strategies for breast cancer early detection. Future Oncology (London, England), 12(11), 411–1395. https://doi.org/10.2217/fon-2015-0071
Trecate, Giovanna, , & Orlandi, Rosaria. (2016). Noninvasive strategies for breast cancer early detection. Future Oncology (London, England), 12(11), 411–1395. https://doi.org/10.2217/fon-2015-0071
Bregy, Lukas, Müggler, Annick R, , García-Gómez, Diego, Suter, Yannick, Belibasakis, Georgios N, Kohler, Malcolm, Schmidlin, Patrick R, & Zenobi, Renato. (2015). Differentiation of oral bacteria in in vitro cultures and human saliva by secondary electrospray ionization - Mass spectrometry. Scientific Reports, 5, 15163. https://doi.org/10.1038/srep15163
Bregy, Lukas, Müggler, Annick R, , García-Gómez, Diego, Suter, Yannick, Belibasakis, Georgios N, Kohler, Malcolm, Schmidlin, Patrick R, & Zenobi, Renato. (2015). Differentiation of oral bacteria in in vitro cultures and human saliva by secondary electrospray ionization - Mass spectrometry. Scientific Reports, 5, 15163. https://doi.org/10.1038/srep15163
, Landoni, Elena, Miceli, Rosalba, Dibari, Vincenza F, Dugo, Matteo, Agresti, Roberto, Tagliabue, Elda, Cristoni, Simone, & Orlandi, Rosaria. (2015). Secondary electrospray ionization-mass spectrometry and a novel statistical bioinformatic approach identifies a cancer-related profile in exhaled breath of breast cancer patients: A pilot study. Journal of Breath Research, 9(3), 31001. https://doi.org/10.1088/1752-7155/9/3/031001
, Landoni, Elena, Miceli, Rosalba, Dibari, Vincenza F, Dugo, Matteo, Agresti, Roberto, Tagliabue, Elda, Cristoni, Simone, & Orlandi, Rosaria. (2015). Secondary electrospray ionization-mass spectrometry and a novel statistical bioinformatic approach identifies a cancer-related profile in exhaled breath of breast cancer patients: A pilot study. Journal of Breath Research, 9(3), 31001. https://doi.org/10.1088/1752-7155/9/3/031001
Schwarz, E. I., Martinez-Lozano Sinues, P., Bregy, L., Garcia Gomez, D., Gaisl, T., Gaugg, M., Nussbaumer-Ochsner, Y., Strebler, N., Bloch, K. E., Stradling, J. R., Zenobi, R., & Kohler, M. (2015, September 1). The effect of CPAP withdrawal on exhaled breath in OSA – A randomised controlled trial [Proceedings-article]. https://doi.org/10.1183/13993003.congress-2015.oa1749
Schwarz, E. I., Martinez-Lozano Sinues, P., Bregy, L., Garcia Gomez, D., Gaisl, T., Gaugg, M., Nussbaumer-Ochsner, Y., Strebler, N., Bloch, K. E., Stradling, J. R., Zenobi, R., & Kohler, M. (2015, September 1). The effect of CPAP withdrawal on exhaled breath in OSA – A randomised controlled trial [Proceedings-article]. https://doi.org/10.1183/13993003.congress-2015.oa1749
Li, Xue, , Dallmann, Robert, Bregy, Lukas, Hollmén, Maija, Proulx, Steven, Brown, Steven A, Detmar, Michael, Kohler, Malcolm, & Zenobi, Renato. (2015). Drug Pharmacokinetics Determined by Real-Time Analysis of Mouse Breath. Angewandte Chemie - International Edition, 54(27), 7815–7818. https://doi.org/10.1002/anie.201503312
Li, Xue, , Dallmann, Robert, Bregy, Lukas, Hollmén, Maija, Proulx, Steven, Brown, Steven A, Detmar, Michael, Kohler, Malcolm, & Zenobi, Renato. (2015). Drug Pharmacokinetics Determined by Real-Time Analysis of Mouse Breath. Angewandte Chemie - International Edition, 54(27), 7815–7818. https://doi.org/10.1002/anie.201503312
García-Gómez, Diego, , Barrios-Collado, César, Vidal-de-Miguel, Guillermo, Gaugg, Martin, & Zenobi, Renato. (2015). Identification of 2-alkenals, 4-hydroxy-2-alkenals, and 4-hydroxy-2,6-alkadienals in exhaled breath condensate by UHPLC-HRMS and in breath by real-time HRMS. Analytical Chemistry, 87(5), 3087–3093. https://doi.org/10.1021/ac504796p
García-Gómez, Diego, , Barrios-Collado, César, Vidal-de-Miguel, Guillermo, Gaugg, Martin, & Zenobi, Renato. (2015). Identification of 2-alkenals, 4-hydroxy-2-alkenals, and 4-hydroxy-2,6-alkadienals in exhaled breath condensate by UHPLC-HRMS and in breath by real-time HRMS. Analytical Chemistry, 87(5), 3087–3093. https://doi.org/10.1021/ac504796p
, & De La Mora, J. F. (2015, January 1). Method to analyze and classify persons and organisms based on odor patterns from released vapors.
, & De La Mora, J. F. (2015, January 1). Method to analyze and classify persons and organisms based on odor patterns from released vapors.
, Tarokh, Leila, Li, Xue, Kohler, Malcolm, Brown, Steven A, Zenobi, Renato, & Dallmann, Robert. (2014). Circadian variation of the human metabolome captured by real-time breath analysis. PLoS ONE, 9(12), e114422. https://doi.org/10.1371/journal.pone.0114422
, Tarokh, Leila, Li, Xue, Kohler, Malcolm, Brown, Steven A, Zenobi, Renato, & Dallmann, Robert. (2014). Circadian variation of the human metabolome captured by real-time breath analysis. PLoS ONE, 9(12), e114422. https://doi.org/10.1371/journal.pone.0114422
Frankevich V.E., Barylyuk K.V., , & Zenobi R. (2014). Ion mobility spectrometry coupled to laser-induced fluorescence for probing the electronic structure and conformation of gas-phase ions. Journal of Analytical Chemistry, 69(13), 1215–1219. https://doi.org/10.1134/S106193481413005X
Frankevich V.E., Barylyuk K.V., , & Zenobi R. (2014). Ion mobility spectrometry coupled to laser-induced fluorescence for probing the electronic structure and conformation of gas-phase ions. Journal of Analytical Chemistry, 69(13), 1215–1219. https://doi.org/10.1134/S106193481413005X
Dumlao M., , Nudnova M., & Zenobi R. (2014). Real-time detection of chemical warfare agent simulants in forensic samples using active capillary plasma ionization with benchtop and field-deployable mass spectrometers. Analytical Methods, 6(11), 3604–3609. https://doi.org/10.1039/c4ay00303a
Dumlao M., , Nudnova M., & Zenobi R. (2014). Real-time detection of chemical warfare agent simulants in forensic samples using active capillary plasma ionization with benchtop and field-deployable mass spectrometers. Analytical Methods, 6(11), 3604–3609. https://doi.org/10.1039/c4ay00303a
Ballabio, Claudia, Cristoni, Simone, Puccio, Giovanni, Kohler, Malcolm, Sala, Maria Roberta, Brambilla, Paolo, & . (2014). Rapid identification of bacteria in blood cultures by mass-spectrometric analysis of volatiles. Journal of Clinical Pathology, 67(8), 743–746. https://doi.org/10.1136/jclinpath-2014-202301
Ballabio, Claudia, Cristoni, Simone, Puccio, Giovanni, Kohler, Malcolm, Sala, Maria Roberta, Brambilla, Paolo, & . (2014). Rapid identification of bacteria in blood cultures by mass-spectrometric analysis of volatiles. Journal of Clinical Pathology, 67(8), 743–746. https://doi.org/10.1136/jclinpath-2014-202301
Barylyuk, Konstantin, Frankevich, Vladimir, Ibáñez, Alfredo J., , & Zenobi, Renato. (2014). Mass spectrometry research at the Laboratory for Organic Chemistry, ETH Zurich. Chimia, 68(3), 23–119. https://doi.org/10.2533/chimia.2014.119
Barylyuk, Konstantin, Frankevich, Vladimir, Ibáñez, Alfredo J., , & Zenobi, Renato. (2014). Mass spectrometry research at the Laboratory for Organic Chemistry, ETH Zurich. Chimia, 68(3), 23–119. https://doi.org/10.2533/chimia.2014.119
Bregy, Lukas, , Nudnova, Maryia M., & Zenobi, Renato. (2014). Real-time breath analysis with active capillary plasma ionization-ambient mass spectrometry. Journal of Breath Research, 8(2), 27102. https://doi.org/10.1088/1752-7155/8/2/027102
Bregy, Lukas, , Nudnova, Maryia M., & Zenobi, Renato. (2014). Real-time breath analysis with active capillary plasma ionization-ambient mass spectrometry. Journal of Breath Research, 8(2), 27102. https://doi.org/10.1088/1752-7155/8/2/027102
He, Jingjing, , Hollmén, Maija, Li, Xue, Detmar, Michael, & Zenobi, Renato. (2014). Fingerprinting breast cancer vs. normal mammary cells by mass spectrometric analysis of volatiles. Scientific Reports, 4, 5196. https://doi.org/10.1038/srep05196
He, Jingjing, , Hollmén, Maija, Li, Xue, Detmar, Michael, & Zenobi, Renato. (2014). Fingerprinting breast cancer vs. normal mammary cells by mass spectrometric analysis of volatiles. Scientific Reports, 4, 5196. https://doi.org/10.1038/srep05196
, Meier, Lukas, Berchtold, Christian, Ivanov, Mark, Sievi, Noriane, Camen, Giovanni, Kohler, Malcolm, & Zenobi, Renato. (2014). Breath analysis in real time by mass spectrometry in chronic obstructive pulmonary disease. Respiration, 87(4), 301–310. https://doi.org/10.1159/000357785
, Meier, Lukas, Berchtold, Christian, Ivanov, Mark, Sievi, Noriane, Camen, Giovanni, Kohler, Malcolm, & Zenobi, Renato. (2014). Breath analysis in real time by mass spectrometry in chronic obstructive pulmonary disease. Respiration, 87(4), 301–310. https://doi.org/10.1159/000357785
, Kohler M., & Zenobi R. (2013). Human Breath Analysis May Support the Existence of Individual Metabolic Phenotypes. PLoS ONE, 8(4). https://doi.org/10.1371/journal.pone.0059909
, Kohler M., & Zenobi R. (2013). Human Breath Analysis May Support the Existence of Individual Metabolic Phenotypes. PLoS ONE, 8(4). https://doi.org/10.1371/journal.pone.0059909
Frankevich V., , Barylyuk K., & Zenobi R. (2013). Ion mobility spectrometry coupled to laser-induced fluorescence. Analytical Chemistry, 85(1), 39–43. https://doi.org/10.1021/ac303137e
Frankevich V., , Barylyuk K., & Zenobi R. (2013). Ion mobility spectrometry coupled to laser-induced fluorescence. Analytical Chemistry, 85(1), 39–43. https://doi.org/10.1021/ac303137e
, Criado, Ernesto, Vidal, Guillermo, Cristoni, Simone, Franzoso, Francesco, Piatti, Mara, & Brambilla, Paolo. (2013). Differential mobility analysis-mass spectrometry coupled to XCMS algorithm as a novel analytical platform for metabolic profiling. Metabolomics, 9(SUPPL.1), 30–43. https://doi.org/10.1007/s11306-011-0319-y
, Criado, Ernesto, Vidal, Guillermo, Cristoni, Simone, Franzoso, Francesco, Piatti, Mara, & Brambilla, Paolo. (2013). Differential mobility analysis-mass spectrometry coupled to XCMS algorithm as a novel analytical platform for metabolic profiling. Metabolomics, 9(SUPPL.1), 30–43. https://doi.org/10.1007/s11306-011-0319-y
, Kohler, Malcolm, & Zenobi, Renato. (2013). Monitoring diurnal changes in exhaled human breath. Analytical Chemistry, 85(1), 73–369. https://doi.org/10.1021/ac3029097
, Kohler, Malcolm, & Zenobi, Renato. (2013). Monitoring diurnal changes in exhaled human breath. Analytical Chemistry, 85(1), 73–369. https://doi.org/10.1021/ac3029097
, Zenobi R., & Kohler M. (2013). Analysis of the exhalome: A diagnostic tool of the future. Chest, 144(3), 746–749. https://doi.org/10.1378/chest.13-1106
, Zenobi R., & Kohler M. (2013). Analysis of the exhalome: A diagnostic tool of the future. Chest, 144(3), 746–749. https://doi.org/10.1378/chest.13-1106
, Criado E., & Vidal G. (2012). Mechanistic study on the ionization of trace gases by an electrospray plume. International Journal of Mass Spectrometry, 313, 21–29. https://doi.org/10.1016/j.ijms.2011.12.010
, Criado E., & Vidal G. (2012). Mechanistic study on the ionization of trace gases by an electrospray plume. International Journal of Mass Spectrometry, 313, 21–29. https://doi.org/10.1016/j.ijms.2011.12.010
, Alonso-Salces, Rosa M., Zingaro, Lorenzo, Finiguerra, Alessandro, Holland, Margaret V., Guillou, Claude, & Cristoni, Simone. (2012). Mass spectrometry fingerprinting coupled to National Institute of Standards and Technology Mass Spectral search algorithm for pattern recognition. Analytica Chimica Acta, 755, 28–36. https://doi.org/10.1016/j.aca.2012.10.018
, Alonso-Salces, Rosa M., Zingaro, Lorenzo, Finiguerra, Alessandro, Holland, Margaret V., Guillou, Claude, & Cristoni, Simone. (2012). Mass spectrometry fingerprinting coupled to National Institute of Standards and Technology Mass Spectral search algorithm for pattern recognition. Analytica Chimica Acta, 755, 28–36. https://doi.org/10.1016/j.aca.2012.10.018
Cristoni S., Molin L., Lai A., Bernardi L.R., Pucciarelli S., Agostini M., Bedin C., Nitti D., Seraglia R., Repetto O., Dibari V.F., Orlandi R., , & Traldi P. (2009). Letter to the editor. Rapid Communications in Mass Spectrometry, 23(17), 2839–2845. https://doi.org/10.1002/rcm.4180
Cristoni S., Molin L., Lai A., Bernardi L.R., Pucciarelli S., Agostini M., Bedin C., Nitti D., Seraglia R., Repetto O., Dibari V.F., Orlandi R., , & Traldi P. (2009). Letter to the editor. Rapid Communications in Mass Spectrometry, 23(17), 2839–2845. https://doi.org/10.1002/rcm.4180
Cristoni, Simone, Molin, Laura, Lai, Antonella, Bernardi, Luigi Rossi, Pucciarelli, Salvatore, Agostini, Marco, Bedin, Chiara, Nitti, Donato, Seraglia, Roberta, Repetto, Ombretta, Dibari, Vincenza Flora, Orlandi, Rosaria, , & Traldi, Pietro. (2009). MALDI-MS-NIST library approach for colorectal cancer diagnosis. Rapid Communications in Mass Spectrometry, 23(17), 45–2839. https://doi.org/10.1002/rcm.4180
Cristoni, Simone, Molin, Laura, Lai, Antonella, Bernardi, Luigi Rossi, Pucciarelli, Salvatore, Agostini, Marco, Bedin, Chiara, Nitti, Donato, Seraglia, Roberta, Repetto, Ombretta, Dibari, Vincenza Flora, Orlandi, Rosaria, , & Traldi, Pietro. (2009). MALDI-MS-NIST library approach for colorectal cancer diagnosis. Rapid Communications in Mass Spectrometry, 23(17), 45–2839. https://doi.org/10.1002/rcm.4180