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首页> 外文期刊>Journal of breath research >Fitting of single-exhalation profiles using a pulmonary gas exchange model-application to carbon monoxide
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Fitting of single-exhalation profiles using a pulmonary gas exchange model-application to carbon monoxide

机译:使用肺气体交换模型应用于一氧化碳的单次呼出曲线拟合

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摘要

Real-time breath gas analysis coupled to gas exchange modeling is emerging as promising strategy to enhance the information gained from breath tests. It is shown for exhaled breath carbon monoxide (eCO), a potential biomarker for oxidative stress and respiratory diseases, that a weighted, nonlinear least-squares fit of simulated to measured expirograms can be used to extract physiological parameters, such as airway and alveolar concentrations and diffusing capacities. ExperimentalCO exhalation profiles are acquired with high time-resolution and precision using mid-infrared tunable diode laser absorption spectroscopy and online breath sampling. A trumpet model with axial diffusion is employed to generate eCO profiles based on measured exhalation flow rates and volumes. The concept is demonstrated on two healthy non-smokers exhaling at a flow rate of 250 ml s~(-1) during normal breathing and at 120 ml s~(-1) after 10 s of breath-holding. The obtained gas exchange parameters of the two subjects are in a similar range, but clearly distinguishable. Over a series of twenty consecutive expirograms, the intra-individual variation in the alveolar parameters is less than 6%. After a 2 h exposure to 10 ± 2 ppm CO, end-tidal and alveolar CO concentrations are significantly increased (by factors of 2.7 and 4.9 for the two subjects) and the airway CO concentration is slightly higher, while the alveolar diffusing capacity is unchanged compared to before exposure. Using model simulations, it is found that a three-fold increase in maximum airway CO flux and a reduction in alveolar diffusing capacity by 60% lead to clearly distinguishable changes in the exhalation profile shape. This suggests that extended breath CO analysis has clinical relevance in assessing airway inflammation and chronic obstructive pulmonary disease. Moreover, the novel methodology contributes to the standardization of real-time breath gas analysis.
机译:与气体交换建模相结合的实时呼气气体分析是由于有前途的策略,以提高呼吸测试中获得的信息。它显示出呼出的呼吸一氧化碳(ECO),潜在的氧化应激和呼吸疾病的潜在生物标志物,其加权的非线性最小二乘拟合可以用于提取生理参数,例如气道和肺泡浓度并扩散容量。使用中红外线可调二极管激光吸收光谱和在线呼吸采样,以高时间分辨率和精度获得实验性呼出轮廓。采用具有轴向扩散的小号模型来基于测量的呼气流量和体积产生ECO型材。在正常呼吸期间,在呼吸持续10秒钟后,在两次以250ml S〜(-1)的流速下,在两个健康的非吸烟者呼气的概念上展示。所获得的两个受试者的气体交换参数处于相似的范围内,但明显可区分。超过一系列连续出现的出现,肺泡参数的个体内变化小于6%。在2小时暴露于10±2ppm CO后,终末潮汐和肺泡CO浓度显着增加(通过两个受试者的2.7和4.9的因素),并且气道Co浓度略高,而肺泡扩散能力不变与暴露前相比。使用模型模拟,发现最大气道Co通量的三倍增加了60%的肺泡扩散容量的减少,导致呼气曲线形状明显可区分。这表明扩展呼吸共同分析在评估气道炎症和慢性阻塞性肺病方面具有临床相关性。此外,新型方法有助于实时呼气气体分析的标准化。

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