Center for Biosignatures Discovery Automation, Biodesign Institute, Arizona State University, Tempe, Arizona, USA.
Appl Environ Microbiol. 2013 Mar;79(6):1850-8. doi: 10.1128/AEM.03399-12. Epub 2013 Jan 11.
Directly monitoring the stress response of microbes to their environments could be one way to inspect the health of microorganisms themselves, as well as the environments in which the microorganisms live. The ultimate resolution for such an endeavor could be down to a single-cell level. In this study, using the diatom Thalassiosira pseudonana as a model species, we aimed to measure gene expression responses of this organism to various stresses at a single-cell level. We developed a single-cell quantitative real-time reverse transcription-PCR (RT-qPCR) protocol and applied it to determine the expression levels of multiple selected genes under nitrogen, phosphate, and iron depletion stress conditions. The results, for the first time, provided a quantitative measurement of gene expression at single-cell levels in T. pseudonana and demonstrated that significant gene expression heterogeneity was present within the cell population. In addition, different expression patterns between single-cell- and bulk-cell-based analyses were also observed for all genes assayed in this study, suggesting that cell response heterogeneity needs to be taken into consideration in order to obtain accurate information that indicates the environmental stress condition.
直接监测微生物对其环境的应激反应可能是一种检查微生物自身健康以及微生物生存环境的方法。这种努力的最终分辨率可能达到单细胞水平。在这项研究中,我们以硅藻假鱼腥藻为模型物种,旨在测量该生物对各种应激的基因表达反应在单细胞水平上。我们开发了一种单细胞定量实时逆转录聚合酶链反应(RT-qPCR)方案,并将其应用于确定在氮、磷和铁耗尽应激条件下多个选定基因的表达水平。结果首次提供了在 T. pseudonana 单细胞水平上基因表达的定量测量,并表明细胞群体内存在显著的基因表达异质性。此外,对于本研究中检测的所有基因,单细胞和批量细胞分析之间的表达模式也不同,这表明需要考虑细胞反应的异质性,以便获得准确的信息,指示环境应激条件。