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The inducible chemical-genetic fluorescent marker FAST outperforms classical fluorescent proteins in the quantitative reporting of bacterial biofilm dynamics

机译:在细菌生物膜动力学的定量报告中,可诱导的化学遗传荧光标记FAST优于传统的荧光蛋白

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To increase our understanding of bacterial biofilm complexity, real- time quantitative analyses of the living community functions are required. To reach this goal, accurate fluorescent reporters are needed. In this paper, we used the classical fluorescent genetic reporters of the GFP family and demonstrated their limits in the context of a living biofilm. We showed that fluorescence signal saturated after only a few hours of growth and related this saturation to the reduction of oxygen concentration induced by bacterial consumption. This behaviour prevents the use of GFP-like fluorescent proteins for quantitative measurement in living biofilms. To overcome this limitation, we propose the use of a recently introduced small protein tag, FAST, which is fluorescent in the presence of an exogenously applied fluorogenic dye, enabling to avoid the oxygen sensitivity issue. We compared the ability of FAST to report on biofilm growth with that of GFP and mCherry, and demonstrated the superiority of the FAST:fluorogen probes for investigating dynamics in the complex environment of a living biofilm.
机译:为了增加我们对细菌生物膜复杂性的了解,需要对生活社区功能进行实时定量分析。为了达到这个目标,需要精确的荧光报告分子。在本文中,我们使用了GFP系列的经典荧光遗传报告基因,并在活生物膜的背景下证明了它们的局限性。我们显示荧光信号仅在生长几个小时后就饱和,并将这种饱和与细菌消耗引起的氧浓度降低相关。这种行为阻止了使用GFP样荧光蛋白进行活生物膜的定量测量。为了克服此限制,我们建议使用最近引入的小蛋白标签FAST,该标签在存在外源施加的荧光染料的情况下发出荧光,从而可以避免氧敏感性问题。我们将FAST报告生物膜生长的能力与GFP和mCherry的能力进行了比较,并证明了FAST:氟探针在研究生物膜复杂环境中的动力学方面的优越性。

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