Zamuruyev Konstantin O, Aksenov Alexander A, Pasamontes Alberto, Brown Joshua F, Pettit Dayna R, Foutouhi Soraya, Weimer Bart C, Schivo Michael, Kenyon Nicholas J, Delplanque Jean-Pierre, Davis Cristina E
Department of Mechanical and Aerospace Engineering, University of California, Davis, One Shields Avenue, Davis, CA 95616, USA.
J Breath Res. 2016 Dec 22;11(1):016001. doi: 10.1088/1752-7163/11/1/016001.
Exhaled breath condensate (EBC) analysis is a developing field with tremendous promise to advance personalized, non-invasive health diagnostics as new analytical instrumentation platforms and detection methods are developed. Multiple commercially-available and researcher-built experimental samplers are reported in the literature. However, there is very limited information available to determine an effective breath sampling approach, especially regarding the dependence of breath sample metabolomic content on the collection device design and sampling methodology. This lack of an optimal standard procedure results in a range of reported results that are sometimes contradictory. Here, we present a design of a portable human EBC sampler optimized for collection and preservation of the rich metabolomic content of breath. The performance of the engineered device is compared to two commercially available breath collection devices: the RTube and TurboDECCS. A number of design and performance parameters are considered, including: condenser temperature stability during sampling, collection efficiency, condenser material choice, and saliva contamination in the collected breath samples. The significance of the biological content of breath samples, collected with each device, is evaluated with a set of mass spectrometry methods and was the primary factor for evaluating device performance. The design includes an adjustable mass-size threshold for aerodynamic filtering of saliva droplets from the breath flow. Engineering an inexpensive device that allows efficient collection of metalomic-rich breath samples is intended to aid further advancement in the field of breath analysis for non-invasive health diagnostic. EBC sampling from human volunteers was performed under UC Davis IRB protocol 63701-3 (09/30/2014-07/07/2017).
呼出气冷凝物(EBC)分析是一个不断发展的领域,随着新的分析仪器平台和检测方法的开发,在推进个性化、非侵入性健康诊断方面具有巨大潜力。文献中报道了多种商用和研究人员自制的实验采样器。然而,关于确定一种有效的呼气采样方法的信息非常有限,特别是关于呼气样本代谢组含量对收集装置设计和采样方法的依赖性。缺乏最佳标准程序导致一系列报告结果有时相互矛盾。在此,我们展示了一种便携式人体EBC采样器的设计,该采样器针对呼气中丰富的代谢组含量的收集和保存进行了优化。将该工程设备的性能与两种商用呼气收集设备:RTube和TurboDECCS进行了比较。考虑了许多设计和性能参数,包括:采样期间冷凝器温度稳定性、收集效率、冷凝器材料选择以及收集的呼气样本中的唾液污染。使用一组质谱方法评估了用每种设备收集的呼气样本的生物含量的重要性,这是评估设备性能的主要因素。该设计包括一个可调节的质量大小阈值,用于从气流中对唾液滴进行空气动力学过滤。设计一种允许高效收集富含代谢组的呼气样本的廉价设备旨在帮助推进非侵入性健康诊断的呼气分析领域。根据加州大学戴维斯分校机构审查委员会协议63701 - 3(2014年9月30日 - 2017年7月7日)对人类志愿者进行了EBC采样。