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Fluorescence Microscopy as a Tool for In Situ Life Detection

机译:荧光显微镜作为原位寿命检测工具

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The identification of extant and, in some cases, extinct bacterial life is most convincingly and efficiently performed with modern high-resolution microscopy. Epifluorescence microscopy of microbial autofluorescence or in conjunction with fluorescent dyes is among the most useful of these techniques. We explored fluorescent labeling and imaging of bacteria in rock and soil in the context of in situ life detection for planetary exploration. The goals were two-fold: to target non-Earth-centric biosignatures with the greatest possible sensitivity and to develop labeling procedures amenable to robotic implementation with technologies that are currently space qualified. A wide panel of commercially available dyes that target specific biosignature molecules was screened, and those with desirable properties (i.e., minimal binding to minerals, strong autofluorescence contrast, no need for wash steps) were identified. We also explored the potential of semiconductor quantum dots (QDs) as bacterial and space probes. A specific instrument for space implementation is suggested and discussed.
机译:使用现代高分辨率显微镜,最有说服力且最有效的方法是对现存的细菌生命(在某些情况下甚至是已灭绝的细菌)进行鉴定。这些技术中最有用的是微生物自发荧光的荧光显微镜或与荧光染料的结合。我们在现场探测行星探测的背景下,探索了岩石和土壤中细菌的荧光标记和成像技术。目标有两个:以最大的敏感性瞄准非以地球为中心的生物印记,并开发适用于采用当前太空技术的机器人实施的标签程序。筛选了靶向特定生物特征分子的各种可商购的染料,并鉴定了具有所需特性(即与矿物质的结合最小,强烈的自发荧光对比,无需洗涤步骤)的那些染料。我们还探索了作为细菌和太空探针的半导体量子点(QD)的潜力。建议并讨论了一种具体的空间实施手段。

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