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Merck

Analytical methodologies for broad metabolite coverage of exhaled breath condensate.

Journal of chromatography. B, Analytical technologies in the biomedical and life sciences (2017-07-12)
Alexander A Aksenov, Konstantin O Zamuruyev, Alberto Pasamontes, Joshua F Brown, Michael Schivo, Soraya Foutouhi, Bart C Weimer, Nicholas J Kenyon, Cristina E Davis
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Breath analysis has been gaining popularity as a non-invasive technique that is amenable to a broad range of medical uses. One of the persistent problems hampering the wide application of the breath analysis method is measurement variability of metabolite abundances stemming from differences in both sampling and analysis methodologies used in various studies. Mass spectrometry has been a method of choice for comprehensive metabolomic analysis. For the first time in the present study, we juxtapose the most commonly employed mass spectrometry-based analysis methodologies and directly compare the resultant coverages of detected compounds in exhaled breath condensate in order to guide methodology choices for exhaled breath condensate analysis studies. Four methods were explored to broaden the range of measured compounds across both the volatile and non-volatile domain. Liquid phase sampling with polyacrylate Solid-Phase MicroExtraction fiber, liquid phase extraction with a polydimethylsiloxane patch, and headspace sampling using Carboxen/Polydimethylsiloxane Solid-Phase MicroExtraction (SPME) followed by gas chromatography mass spectrometry were tested for the analysis of volatile fraction. Hydrophilic interaction liquid chromatography and reversed-phase chromatography high performance liquid chromatography mass spectrometry were used for analysis of non-volatile fraction. We found that liquid phase breath condensate extraction was notably superior compared to headspace extraction and differences in employed sorbents manifested altered metabolite coverages. The most pronounced effect was substantially enhanced metabolite capture for larger, higher-boiling compounds using polyacrylate SPME liquid phase sampling. The analysis of the non-volatile fraction of breath condensate by hydrophilic and reverse phase high performance liquid chromatography mass spectrometry indicated orthogonal metabolite coverage by these chromatography modes. We found that the metabolite coverage could be enhanced significantly with the use of organic solvent as a device rinse after breath sampling to collect the non-aqueous fraction as opposed to neat breath condensate sample. Here, we show the detected ranges of compounds in each case and provide a practical guide for methodology selection for optimal detection of specific compounds.

MATERIALS
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Supelco
SPME fiber assembly, Carbowax-Polyethylene Glycol (PEG) Coating, needle size 23 ga, df 60 ฮผm(PEG, metal alloy fiber, for use with manual holder
Supelco
SPME Portable Field Sampler, coating PDMS
Supelco
Carboxenยฎ-1006 PLOT Capillary GC Column, L ร— I.D. 30 m ร— 0.53 mm, average thickness 30 ฮผm
Supelco
Carboxenยฎ Adsorbent, matrix Carboxenยฎ 563, 20-45 mesh, bottle of 10 g
Supelco
Carboxenยฎ Adsorbent, matrix Carboxenยฎ 564, 20-45 mesh, bottle of 10 g
Supelco
Carboxenยฎ Adsorbent, matrix Carboxenยฎ 569, 20-45 mesh, bottle of 10 g
Supelco
SPME Fiber Assembly, 50/30µm DVB/CAR/PDMS, Metal Alloy (1cm), needle size 23 ga, Autosampler, pk of 1 ร—, plain gray hub
Supelco
SPME fiber assembly Carboxen/Polydimethylsiloxane (CAR/PDMS), df 85 ฮผm(CAR/PDMS, for use with autosampler, needle size 23 ga, metal alloy fiber
Supelco
SPME Fiber Assembly, 50/30µm DVB/CAR/PDMS, StableFlex (1cm), needle size 24 ga, Manual Holder, pk of 3, plain gray hub
Supelco
SPME Portable Field Sampler, coating CAR/PDMS
Supelco
Carboxenยฎ Adsorbent, matrix Carboxenยฎ 1000, 40-60 mesh, bottle of 50 g
Supelco
SPME Fiber Assembly Polydimethylsiloxane/Divinylbenzene (PDMS/DVB), df 65 ฮผm(PDMS/DVB, for use with autosampler, needle size 23 ga
Supelco
SPME Fiber Assembly, 50/30µm DVB/CAR/PDMS, StableFlex (1 cm), needle size 23 ga, Autosampler, pk of 3, plain gray hub
Supelco
SPME fiber assembly Polydimethylsiloxane (PDMS), df 7 ฮผm(PDMS, needle size 23 ga, for use with autosampler
Supelco
SPME Fiber Assembly Polydimethylsiloxane/Divinylbenzene (PDMS/DVB), df 65 ฮผm(PDMS/DVB, needle size 23 ga, PDMS/DVB StableFlex, for use with autosampler
Supelco
SPME fiber assembly polyacrylate (PA), df 85 ฮผm(PA, for use with autosampler, needle size 23 ga
Supelco
SPME fiber assembly Polydimethylsiloxane (PDMS), df 30 ฮผm(PDMS, needle size 24 ga, for use with autosampler
Supelco
SPME fiber assembly Carboxen/Polydimethylsiloxane (CAR/PDMS), df 75 ฮผm(CAR/PDMS, needle size 23 ga, for use with autosampler
Supelco
SPME Fiber Assembly Polydimethylsiloxane/Divinylbenzene (PDMS/DVB), df 65 ฮผm(PDMS/DVB, needle size 24 ga, for use with manual holder
Supelco
SPME Sampling Stand, for use with 4 mL vials
Supelco
SPME fiber assembly Polydimethylsiloxane (PDMS), df 7 ฮผm(PDMS, needle size 24 ga, for use with manual holder
Supelco
SPME Fiber Assembly Polydimethylsiloxane/Divinylbenzene (PDMS/DVB), fused silica fiber, df 65 ฮผm(PDMS/DVB, for use with manual holder, needle size 23 ga
Supelco
SPME Sampling Stand, for use with 15 mL vials
Supelco
SPME fiber assembly Carboxen/Polydimethylsiloxane (CAR/PDMS), df 85 ฮผm(CAR/PDMS, needle size 24 ga, StableFlex, for use with autosampler
Supelco
Carboxenยฎ-1010 PLOT Capillary GC Column, L ร— I.D. 30 m ร— 0.53 mm, average thickness 30 ฮผm
Supelco
Carboxenยฎ Adsorbent, matrix Carboxenยฎ 564, 20-45 mesh, pack of 144 ร— 290 mg
Supelco
Carboxenยฎ-1010 PLOT Capillary GC Column, L ร— I.D. 30 m ร— 0.32 mm, average thickness 15 ฮผm
Supelco
Carboxenยฎ Adsorbent, matrix Carboxenยฎ 1003, 40-60 mesh, bottle of 10 g
Supelco
SPME fiber assembly Polydimethylsiloxane (PDMS), df 7 ฮผm(PDMS, needle size 24 ga, for use with autosampler
Supelco
SPME fiber assembly polyacrylate (PA), df 85 ฮผm(PA, for use with manual holder, needle size 24 ga