Vizuete William, Sexton Kenneth G, Nguyen Hang, Smeester Lisa, Aagaard Kjersti Marie, Shope Cynthia, Lefer Barry, Flynn James H, Alvarez Sergio, Erickson Mathew H, Fry Rebecca C
Department of Environmental Sciences and Engineering, Gillings School of Global Public Health, The University of North Carolina at Chapel Hill, Chapel Hill, NC, USA.
Division of Maternal Fetal Medicine, Baylor College of Medicine, Houston, TX, USA.
Environ Health Insights. 2016 Feb 18;9(Suppl 4):15-23. doi: 10.4137/EHI.S15656. eCollection 2015.
Current in vitro studies do not typically assess cellular impacts in relation to real-world atmospheric mixtures of gases. In this study, we set out to examine the feasibility of measuring biological responses at the level of gene expression in human lung cells upon direct exposures to air in the field. This study describes the successful deployment of lung cells in the heavily industrialized Houston Ship Channel. By examining messenger RNA (mRNA) levels from exposed lung cells, we identified changes in genes that play a role as inflammatory responders in the cell. The results show anticipated responses from negative and positive controls, confirming the integrity of the experimental protocol and the successful deployment of the in vitro instrument. Furthermore, exposures to ambient conditions displayed robust changes in gene expression. These results demonstrate a methodology that can produce gas-phase toxicity data in the field.
目前的体外研究通常不会评估与现实世界大气混合气体相关的细胞影响。在本研究中,我们着手探讨在野外直接暴露于空气的情况下,测量人类肺细胞基因表达水平上的生物反应的可行性。本研究描述了在工业化程度很高的休斯顿航道成功部署肺细胞的情况。通过检测暴露的肺细胞中的信使核糖核酸(mRNA)水平,我们确定了在细胞中作为炎症反应者起作用的基因的变化。结果显示了阴性和阳性对照的预期反应,证实了实验方案的完整性以及体外仪器的成功部署。此外,暴露于环境条件下显示出基因表达的强烈变化。这些结果证明了一种能够在野外产生气相毒性数据的方法。