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首页> 外文期刊>Journal of breath research >A modeling-based evaluation of isothermal rebreathing for breath gas analyses of highly soluble volatile organic compounds
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A modeling-based evaluation of isothermal rebreathing for breath gas analyses of highly soluble volatile organic compounds

机译:基于模型的等温再呼吸评估,用于高溶解性挥发性有机化合物的呼吸气体分析

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摘要

Isothermal rebreathing has been proposed as an experimental technique for estimating the alveolar levels of hydrophilic volatile organic compounds (VOCs) in exhaled breath. Using the prototypic test compounds acetone and methanol, we demonstrate that the end-tidal breath profiles of such substances during isothermal rebreathing show a characteristic increase that contradicts the conventional pulmonary inert gas elimination theory due to Farhi. On the other hand, these profiles can reliably be captured by virtue of a previously developed mathematical model for the general exhalation kinetics of highly soluble, blood-borne VOCs, which explicitly takes into account airway gas exchange as a major determinant of the observable breath output. This model allows for a mechanistic analysis of various rebreathing protocols suggested in the literature. In particular, it predicts that the end-exhaled levels of acetone and methanol measured during free tidal breathing will underestimate the underlying alveolar concentration by a factor of up to 1.5. Moreover, it clarifies the discrepancies between in vitro and in vivo blood-breath ratios of hydrophilic VOCs and yields further quantitative insights into the physiological components of isothermal rebreathing and highly soluble gas exchange in general.
机译:已提出等温呼吸作为估计呼出气中亲水性挥发性有机化合物(VOC)的肺泡水平的实验技术。使用原型测试化合物丙酮和甲醇,我们证明了等温再呼吸过程中此类物质的潮气末呼吸特征显示出与常规肺惰性气体消除理论(由于Farhi)相抵触的特征性增加。另一方面,这些曲线可以通过先前开发的用于高度溶解性血源性VOC的一​​般呼气动力学的数学模型来可靠地捕获,该模型明确地将气道气体交换作为可观察到的呼吸输出的主要决定因素。该模型允许对文献中建议的各种呼吸协议进行机械分析。特别是,它预测在自由潮气呼吸期间测得的丙酮和甲醇的最终呼出水平会低估潜在的肺泡浓度达1.5倍。此外,它阐明了亲水性VOC的体外和体内血液呼吸比之间的差异,并进一步提供了对等温呼吸和高浓度气体交换的生理成分的进一步定量分析。

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