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Basler, S., Sievi, N. A., Schmidt, F., Fricke, K., Arvaji, A., Herth, J., Baur, D., Sinues, P., Ulrich, S., & Kohler, M. (2024). Molecular breath profile of acute COPD exacerbations [Journal-article]. Journal of Breath Research. 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. (2024). Molecular breath profile of acute COPD exacerbations [Journal-article]. Journal of Breath Research. https://doi.org/10.1088/1752-7163/ad9ac4
Zeng, J., Usemann, J., Singh, K. D., Jochmann, A., Trachsel, D., Frey, U., & Sinues, P. (2024). Pharmacometabolomics via real-time breath analysis captures metabotypes of asthmatic children associated with salbutamol responsiveness [Journal-article]. iScience, 111446. https://doi.org/10.1016/j.isci.2024.111446
Zeng, J., Usemann, J., Singh, K. D., Jochmann, A., Trachsel, D., Frey, U., & Sinues, P. (2024). Pharmacometabolomics via real-time breath analysis captures metabotypes of asthmatic children associated with salbutamol responsiveness [Journal-article]. iScience, 111446. https://doi.org/10.1016/j.isci.2024.111446
Künstle, Noëmi, Gorlanova, Olga, Marten, Andrea, Müller, Loretta, Sharma, Pawan, Röösli, Martin, Pediatric Research. https://doi.org/10.1038/s41390-024-03273-6
, 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, & , on behalf of the BILD study group. (2024). Differences in autophagy marker levels at birth in preterm vs. term infants [Journal-article].
Künstle, Noëmi, Gorlanova, Olga, Marten, Andrea, Müller, Loretta, Sharma, Pawan, Röösli, Martin, Pediatric Research. https://doi.org/10.1038/s41390-024-03273-6
, 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, & , on behalf of the BILD study group. (2024). Differences in autophagy marker levels at birth in preterm vs. term infants [Journal-article].
Awchi, Mo, Singh, Kapil Dev, Brenner, Sara Bachmann, Burckhardt, Marie-Anne, Hess, Melanie, Zeng, Jiafa, Datta, Alexandre N., Frey, Urs, Zumsteg, Urs, Szinnai, Gabor, & Frontiers in Endocrinology, 15. https://doi.org/10.3389/fendo.2024.1360989
. (2024). Metabolic trajectories of diabetic ketoacidosis onset described by breath analysis.
Awchi, Mo, Singh, Kapil Dev, Brenner, Sara Bachmann, Burckhardt, Marie-Anne, Hess, Melanie, Zeng, Jiafa, Datta, Alexandre N., Frey, Urs, Zumsteg, Urs, Szinnai, Gabor, & Frontiers in Endocrinology, 15. https://doi.org/10.3389/fendo.2024.1360989
. (2024). Metabolic trajectories of diabetic ketoacidosis onset described by breath analysis.
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, Journal of Proteome Research, 22(3), 990–995. https://doi.org/10.1021/acs.jproteome.2c00835
, 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.
Awchi M, Journal of Proteome Research, 22(3), 990–995. https://doi.org/10.1021/acs.jproteome.2c00835
, 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.
Arnold, Kim, Dehio, Philippe, Lötscher, Jonas, Singh, Kapil Dev, García-Gómez, Diego, Hess, Christoph, Analytical Chemistry, 95, 9415–9421. https://doi.org/10.1021/acs.analchem.3c00516
, & Balmer, Maria L. (2023). Real-Time Volatile Metabolomics Analysis of Dendritic Cells.
Arnold, Kim, Dehio, Philippe, Lötscher, Jonas, Singh, Kapil Dev, García-Gómez, Diego, Hess, Christoph, Analytical Chemistry, 95, 9415–9421. https://doi.org/10.1021/acs.analchem.3c00516
, & Balmer, Maria L. (2023). Real-Time Volatile Metabolomics Analysis of Dendritic Cells.
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. 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. https://doi.org/10.1088/1752-7163/acf782
Gisler A., Singh K.D., Zeng J., Osswald M., Awchi M., Decrue F., Schmidt F., Sievi N.A., Chen X., Usemann J., Frey U., Kohler M., Li X., & iScience, 25(12). https://doi.org/10.1016/j.isci.2022.105557
(2022). An interoperability framework for multicentric breath metabolomic studies.
Gisler A., Singh K.D., Zeng J., Osswald M., Awchi M., Decrue F., Schmidt F., Sievi N.A., Chen X., Usemann J., Frey U., Kohler M., Li X., & iScience, 25(12). https://doi.org/10.1016/j.isci.2022.105557
(2022). An interoperability framework for multicentric breath metabolomic studies.
Gomez-Mejia A., Arnold K., Bar J., Singh K.D., Scheier T.C., Brugger S.D., Zinkernagel A.S., & iScience, 25(10). https://doi.org/10.1016/j.isci.2022.105080
. (2022). Rapid detection of Staphylococcus aureus and Streptococcus pneumoniae by real-time analysis of volatile metabolites.
Gomez-Mejia A., Arnold K., Bar J., Singh K.D., Scheier T.C., Brugger S.D., Zinkernagel A.S., & iScience, 25(10). https://doi.org/10.1016/j.isci.2022.105080
. (2022). Rapid detection of Staphylococcus aureus and Streptococcus pneumoniae by real-time analysis of volatile metabolites.
Arnold K., Chen X., Zhang H., Singh K.D., Yin Z., Yao Y., Luan T., Journal of Bio-X Research, 5(2), 81–89. https://doi.org/10.1097/jbr.0000000000000121
, & Li X. (2022). In vivo detection of metabolic 2H-incorporation upon ingestion of 2H2O.
Arnold K., Chen X., Zhang H., Singh K.D., Yin Z., Yao Y., Luan T., Journal of Bio-X Research, 5(2), 81–89. https://doi.org/10.1097/jbr.0000000000000121
, & Li X. (2022). In vivo detection of metabolic 2H-incorporation upon ingestion of 2H2O.
Zeng J., Christen A., Singh K.D., Frey U., & Chimia, 76(1-2), 127–132. https://doi.org/10.2533/chimia.2022.127
(2022). Comparison of Plasma Ionization- and Secondary Electrospray IonizationHigh-resolution Mass Spectrometry for Real-time Breath Analysis.
Zeng J., Christen A., Singh K.D., Frey U., & Chimia, 76(1-2), 127–132. https://doi.org/10.2533/chimia.2022.127
(2022). Comparison of Plasma Ionization- and Secondary Electrospray IonizationHigh-resolution Mass Spectrometry for Real-time Breath Analysis.
Decrue, F., Gorlanova, O., Salem, Y., Vienneau, D., de Hoogh, K., Gisler, A., Usemann, J., Korten, I., Nahum, U., Am J Respir Crit Care Med, 205(1), 99–107. https://doi.org/10.1164/rccm.202102-0272oc
, 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.
Decrue, F., Gorlanova, O., Salem, Y., Vienneau, D., de Hoogh, K., Gisler, A., Usemann, J., Korten, I., Nahum, U., Am J Respir Crit Care Med, 205(1), 99–107. https://doi.org/10.1164/rccm.202102-0272oc
, 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.
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., Pediatric Allergy and Immunology, 34, e13902. https://doi.org/10.1111/pai.13902
, Schulzke, S., Latzin, P., Fuchs, O., et al. (2022). Ambient prenatal air pollution exposure is associated with low cord blood IL-17a in infants.
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., Pediatric Allergy and Immunology, 34, e13902. https://doi.org/10.1111/pai.13902
, Schulzke, S., Latzin, P., Fuchs, O., et al. (2022). Ambient prenatal air pollution exposure is associated with low cord blood IL-17a in infants.
Schmidt, F., Baumgartner, P., Basler, S., Huang, A., Curioni-Fontecedro, A., Opitz, I, Schneiter, D., Franzen, D., Gao, B., Oncology Research and Treatment, 45, 270.
, & Kohler, M. (2022). Lung cancer diagnostics with real-time breath analysis: an innovative case-control study (LUCAbreath).
Schmidt, F., Baumgartner, P., Basler, S., Huang, A., Curioni-Fontecedro, A., Opitz, I, Schneiter, D., Franzen, D., Gao, B., Oncology Research and Treatment, 45, 270.
, & Kohler, M. (2022). Lung cancer diagnostics with real-time breath analysis: an innovative case-control study (LUCAbreath).
Osswald M, Kohlbrenner D, Nowak N, Spörri J, Metabolites, 11(12). https://doi.org/10.3390/metabo11120856
, Nieman D, Sievi NA, Scherr J, & Kohler M. (2021). Real-Time Monitoring of Metabolism during Exercise by Exhaled Breath.
Osswald M, Kohlbrenner D, Nowak N, Spörri J, Metabolites, 11(12). https://doi.org/10.3390/metabo11120856
, Nieman D, Sievi NA, Scherr J, & Kohler M. (2021). Real-Time Monitoring of Metabolism during Exercise by Exhaled Breath.
Decrue F, Singh KD, Gisler A, Awchi M, Zeng J., Usemann J, Frey U., & Analytical Chemistry, 93(47), 15579–15583. https://doi.org/10.1021/acs.analchem.1c02036
. (2021). Combination of Exhaled Breath Analysis with Parallel Lung Function and FeNO Measurements in Infants.
Decrue F, Singh KD, Gisler A, Awchi M, Zeng J., Usemann J, Frey U., & Analytical Chemistry, 93(47), 15579–15583. https://doi.org/10.1021/acs.analchem.1c02036
. (2021). Combination of Exhaled Breath Analysis with Parallel Lung Function and FeNO Measurements in Infants.
Nowak N, Gaisl T, Miladinovic D, Marcinkevics R, Osswald M, Bauer S, Buhmann J, Zenobi R, Cell Reports, 37(4), 109903. https://doi.org/10.1016/j.celrep.2021.109903
, Brown SA, & Kohler M. (2021). Rapid and reversible control of human metabolism by individual sleep states.
Nowak N, Gaisl T, Miladinovic D, Marcinkevics R, Osswald M, Bauer S, Buhmann J, Zenobi R, Cell Reports, 37(4), 109903. https://doi.org/10.1016/j.celrep.2021.109903
, Brown SA, & Kohler M. (2021). Rapid and reversible control of human metabolism by individual sleep states.
López-Lorente CI, Awchi M, Journal of Pharmaceutical and Biomedical Analysis, 205, 114311. https://doi.org/10.1016/j.jpba.2021.114311
, & García-Gómez D. (2021). Real-time pharmacokinetics via online analysis of exhaled breath.
López-Lorente CI, Awchi M, Journal of Pharmaceutical and Biomedical Analysis, 205, 114311. https://doi.org/10.1016/j.jpba.2021.114311
, & García-Gómez D. (2021). Real-time pharmacokinetics via online analysis of exhaled breath.
Liu C, Zeng J, Analytica Chimica Acta, 1180, 338876. https://doi.org/10.1016/j.aca.2021.338876
, Fang M, Zhou Z, & Li X. (2021). Quantification of volatile organic compounds by secondary electrospray ionization-high resolution mass spectrometry.
Liu C, Zeng J, Analytica Chimica Acta, 1180, 338876. https://doi.org/10.1016/j.aca.2021.338876
, Fang M, Zhou Z, & Li X. (2021). Quantification of volatile organic compounds by secondary electrospray ionization-high resolution mass spectrometry.
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, Sleep Medicine, 85, 75–86. https://doi.org/10.1016/j.sleep.2021.06.040
, Zenobi R, & Kohler M. (2021). Validation of breath biomarkers for obstructive sleep apnea.
Nowak N, Engler A, Thiel S, Stöberl AS, Sleep Medicine, 85, 75–86. https://doi.org/10.1016/j.sleep.2021.06.040
, Zenobi R, & Kohler M. (2021). Validation of breath biomarkers for obstructive sleep apnea.
Yin Z , Huang W , Singh KD , Chen Z , Chen X , Zhou Z , Yang Z , Chemical Communications, 57(39), 4791–4794. https://doi.org/10.1039/d1cc01061a
, & Li X . (2021). In vivomonitoring of volatile metabolic trajectories enables rapid diagnosis of influenza A infection.
Yin Z , Huang W , Singh KD , Chen Z , Chen X , Zhou Z , Yang Z , Chemical Communications, 57(39), 4791–4794. https://doi.org/10.1039/d1cc01061a
, & Li X . (2021). In vivomonitoring of volatile metabolic trajectories enables rapid diagnosis of influenza A infection.
Chen X, Zhang K, Yin Z, Fang M, Pu W, Liu Z, Li L, Analytical Chemistry, 93(12), 5005–5008. https://doi.org/10.1021/acs.analchem.1c00509
, 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.
Chen X, Zhang K, Yin Z, Fang M, Pu W, Liu Z, Li L, Analytical Chemistry, 93(12), 5005–5008. https://doi.org/10.1021/acs.analchem.1c00509
, 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.
Brown SA, & Methods in Molecular Biology, 2130, 149–156. https://doi.org/10.1007/978-1-0716-0381-9_11
. (2021). Circadian Metabolomics from Breath.
Brown SA, & Methods in Molecular Biology, 2130, 149–156. https://doi.org/10.1007/978-1-0716-0381-9_11
. (2021). Circadian Metabolomics from Breath.
Lan J, Gisler A, Bruderer T, Journal of Breath Research, 15(2). https://doi.org/10.1088/1752-7163/ab9f8a
, & Zenobi R. (2021). Monitoring peppermint washout in the breath metabolome by secondary electrospray ionization-high resolution mass spectrometry.
Lan J, Gisler A, Bruderer T, Journal of Breath Research, 15(2). https://doi.org/10.1088/1752-7163/ab9f8a
, & Zenobi R. (2021). Monitoring peppermint washout in the breath metabolome by secondary electrospray ionization-high resolution mass spectrometry.
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, & Communications Medicine, 1, 21. https://doi.org/10.1038/s43856-021-00021-3
. (2021). Personalised therapeutic management of epileptic patients guided by pathway-driven breath metabolomics.
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, & Communications Medicine, 1, 21. https://doi.org/10.1038/s43856-021-00021-3
. (2021). Personalised therapeutic management of epileptic patients guided by pathway-driven breath metabolomics.
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., Journal of Breath Research, 15(2). https://doi.org/10.1088/1752-7163/abd28c
, Langejurgen J., et al. (2021). The peppermint breath test: A benchmarking protocol for breath sampling and analysis using GC-MS.
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., Journal of Breath Research, 15(2). https://doi.org/10.1088/1752-7163/abd28c
, Langejurgen J., et al. (2021). The peppermint breath test: A benchmarking protocol for breath sampling and analysis using GC-MS.
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, Journal of Breath Research, 14(4), 46008. https://doi.org/10.1088/1752-7163/aba130
, Slingers G, Wilde M, Lomonaco T, Zanella D, et al. (2020). A benchmarking protocol for breath analysis: The peppermint experiment.
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, Journal of Breath Research, 14(4), 46008. https://doi.org/10.1088/1752-7163/aba130
, Slingers G, Wilde M, Lomonaco T, Zanella D, et al. (2020). A benchmarking protocol for breath analysis: The peppermint experiment.
Gisler, Amanda, Lan, Jiayi, Singh, Kapil Dev, Usemann, Jakob, Frey, Urs, Zenobi, Renato, & Journal of Breath Research, 14(4), 46001. https://doi.org/10.1088/1752-7163/ab9f8b
. (2020). Real-time breath analysis of exhaled compounds upon peppermint oil ingestion by secondary electrospray ionization-high resolution mass spectrometry: technical aspects.
Gisler, Amanda, Lan, Jiayi, Singh, Kapil Dev, Usemann, Jakob, Frey, Urs, Zenobi, Renato, & Journal of Breath Research, 14(4), 46001. https://doi.org/10.1088/1752-7163/ab9f8b
. (2020). Real-time breath analysis of exhaled compounds upon peppermint oil ingestion by secondary electrospray ionization-high resolution mass spectrometry: technical aspects.
Gaugg, Martin Thomas, Engler, Anna, Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, Eiffert, Lara, Bruderer, Tobias, Zenobi, Renato, Respirology (Carlton, Vic.), 24(5), 437–444. https://doi.org/10.1111/resp.13465
, & Kohler, Malcolm. (2019). Molecular breath analysis supports altered amino acid metabolism in idiopathic pulmonary fibrosis.
Gaugg, Martin Thomas, Engler, Anna, Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, Eiffert, Lara, Bruderer, Tobias, Zenobi, Renato, Respirology (Carlton, Vic.), 24(5), 437–444. https://doi.org/10.1111/resp.13465
, & Kohler, Malcolm. (2019). Molecular breath analysis supports altered amino acid metabolism in idiopathic pulmonary fibrosis.
Gaugg, Martin Thomas, Nussbaumer-Ochsner, Yvonne, Bregy, Lukas, Engler, Anna, Stebler, Nina, Gaisl, Thomas, Bruderer, Tobias, Nowak, Nora, Chest, 156(2), 269–276. https://doi.org/10.1016/j.chest.2018.12.023
, Zenobi, Renato, & Kohler, Malcolm. (2019). Real-Time Breath Analysis Reveals Specific Metabolic Signatures of COPD Exacerbations.
Gaugg, Martin Thomas, Nussbaumer-Ochsner, Yvonne, Bregy, Lukas, Engler, Anna, Stebler, Nina, Gaisl, Thomas, Bruderer, Tobias, Nowak, Nora, Chest, 156(2), 269–276. https://doi.org/10.1016/j.chest.2018.12.023
, Zenobi, Renato, & Kohler, Malcolm. (2019). Real-Time Breath Analysis Reveals Specific Metabolic Signatures of COPD Exacerbations.
Singh, Kapil Dev, Tancev, Georgi, Decrue, Fabienne, Usemann, Jakob, Appenzeller, Rhea, Barreiro, Pedro, Jaumà, Gabriel, Macia Santiago, Miriam, Vidal de Miguel, Guillermo, Frey, Urs, & Analytical and Bioanalytical Chemistry, 411(19), 4883–4898. https://doi.org/10.1007/s00216-019-01764-8
. (2019). Standardization procedures for real-time breath analysis by secondary electrospray ionization high-resolution mass spectrometry.
Singh, Kapil Dev, Tancev, Georgi, Decrue, Fabienne, Usemann, Jakob, Appenzeller, Rhea, Barreiro, Pedro, Jaumà, Gabriel, Macia Santiago, Miriam, Vidal de Miguel, Guillermo, Frey, Urs, & Analytical and Bioanalytical Chemistry, 411(19), 4883–4898. https://doi.org/10.1007/s00216-019-01764-8
. (2019). Standardization procedures for real-time breath analysis by secondary electrospray ionization high-resolution mass spectrometry.
Gaisl, Thomas, Bregy, Lukas, Stebler, Nina, Gaugg, Martin T, Bruderer, Tobias, García-Gómez, Diego, Moeller, Alexander, Singer, Florian, Schwarz, Esther I, Benden, Christian, Journal of breath research, 12(3), 36013. https://doi.org/10.1088/1752-7163/aab7fd
, Zenobi, Renato, & Kohler, Malcolm. (2018). Real-time exhaled breath analysis in patients with cystic fibrosis and controls.
Gaisl, Thomas, Bregy, Lukas, Stebler, Nina, Gaugg, Martin T, Bruderer, Tobias, García-Gómez, Diego, Moeller, Alexander, Singer, Florian, Schwarz, Esther I, Benden, Christian, Journal of breath research, 12(3), 36013. https://doi.org/10.1088/1752-7163/aab7fd
, Zenobi, Renato, & Kohler, Malcolm. (2018). Real-time exhaled breath analysis in patients with cystic fibrosis and controls.
Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, Clinical Mass Spectrometry, 7, 29–35. https://doi.org/10.1016/j.clinms.2018.02.003
, 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.
Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, Clinical Mass Spectrometry, 7, 29–35. https://doi.org/10.1016/j.clinms.2018.02.003
, 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.
Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, Clinical Mass Spectrometry, 7, 29–35. https://doi.org/10.1016/j.clinms.2018.02.003
, 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.
Bregy, Lukas, Nussbaumer-Ochsner, Yvonne, Clinical Mass Spectrometry, 7, 29–35. https://doi.org/10.1016/j.clinms.2018.02.003
, 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.
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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., Rapid Communications in Mass Spectrometry, 23(17), 2839–2845. https://doi.org/10.1002/rcm.4180
, & Traldi P. (2009). Letter to the editor.
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, Rapid Communications in Mass Spectrometry, 23(17), 2839–2845. https://doi.org/10.1002/rcm.4180
, & Traldi, Pietro. (2009). MALDI-MS-NIST library approach for colorectal cancer diagnosis.
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, Rapid Communications in Mass Spectrometry, 23(17), 2839–2845. https://doi.org/10.1002/rcm.4180
, & Traldi, Pietro. (2009). MALDI-MS-NIST library approach for colorectal cancer diagnosis.