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1.
Anal Chem ; 90(11): 6453-6460, 2018 06 05.
Artículo en Inglés | MEDLINE | ID: mdl-29767961

RESUMEN

The tricarboxylic acid (TCA) cycle is one of the most important metabolic pathway for cellular respiration in aerobic organisms. It provides and collects intermediates for many other interconnecting pathways and acts as a hub connecting metabolism of carbohydrates, fatty acids, and amino acids. Alteration in intracellular levels of its intermediates has been linked with a wide range of illnesses ranging from cancer to cellular necrosis or liver cirrhosis. Therefore, there exists an intrinsic interest in monitoring such metabolites. Our goal in this study was to evaluate whether, at least the most volatile metabolites of the TCA cycle, could be detected in breath in vivo and in real time. We used secondary electrospray ionization coupled with high-resolution mass spectrometry (SESI-HRMS) to conduct this targeted analysis. We enrolled six healthy individuals who provided full exhalations into the SESI-HRMS system at different times during 3 days. For the first time, we observed exhaled compounds that appertain to the TCA cycle: fumaric, succinic, malic, keto-glutaric, oxaloacetic, and aconitic acids. We found high intraindividual variability and a significant overall difference between morning and afternoon levels for malic acid, oxaloacetic acid, and aconitic acid, supporting previous studies suggesting circadian fluctuations of these metabolites in humans. This study provides first evidence that TCA cycle could conveniently be monitored in breath, opening new opportunities to study in vivo this important metabolic pathway.


Asunto(s)
Pruebas Respiratorias/métodos , Ciclo del Ácido Cítrico , Espectrometría de Masa por Ionización de Electrospray/métodos , Ácidos Tricarboxílicos/análisis , Adulto , Pruebas Respiratorias/instrumentación , Diseño de Equipo , Espiración , Femenino , Humanos , Masculino , Espectrometría de Masa por Ionización de Electrospray/instrumentación , Espectrometría de Masas en Tándem/instrumentación , Espectrometría de Masas en Tándem/métodos , Ácidos Tricarboxílicos/metabolismo
2.
J Breath Res ; 12(2): 027113, 2018 02 07.
Artículo en Inglés | MEDLINE | ID: mdl-29411710

RESUMEN

While there has been progress in making use of breath tests to guide clinical decision making, the full potential of exhaled breath analysis still remains to be exploited. Here we summarize some of the reasons why this is the case, what we have done so far to overcome some of the existing obstacles, and our vision of how we think breath analysis will play a more prominent role in the coming years. In particular, we envision that real-time high-resolution mass spectrometry will provide valuable information in biomarker discovery studies. However, this can only be achieved by a coordinated effort, using standardized equipment and methods in multi-center studies to eventually deliver tangible advances in the field of breath analysis in a clinical setting. Concrete aspects such as sample integrity, compound identification, quantification and standardization are discussed. Novel secondary electrospray ionization developments with the aim of facilitating inter-groups comparisons and biomarker validation studies are also presented.


Asunto(s)
Espectrometría de Masa por Ionización de Electrospray/métodos , Investigación Biomédica Traslacional , Biomarcadores/análisis , Pruebas Respiratorias , Estudios de Seguimiento , Humanos , Proyectos Piloto
3.
Sci Rep ; 7(1): 14236, 2017 10 27.
Artículo en Inglés | MEDLINE | ID: mdl-29079837

RESUMEN

While yeast is one of the most studied organisms, its intricate biology remains to be fully mapped and understood. This is especially the case when it comes to capture rapid, in vivo fluctuations of metabolite levels. Secondary electrospray ionization-high resolution mass spectrometry SESI-HRMS is introduced here as a sensitive and noninvasive analytical technique for online monitoring of microbial metabolic activity. The power of this technique is exemplarily shown for baker's yeast fermentation, for which the time-resolved abundance of about 300 metabolites is demonstrated. The results suggest that a large number of metabolites produced by yeast from glucose neither are reported in the literature nor are their biochemical origins deciphered. With the technique demonstrated here, researchers interested in distant disciplines such as yeast physiology and food quality will gain new insights into the biochemical capability of this simple eukaryote.

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