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A Highlights from MBoC Selection: Measuring fast gene dynamics in single cells with time-lapse luminescence microscopy

机译:MBoC选择的亮点:使用延时发光显微镜测量单个细胞中的快速基因动态

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摘要

Time-lapse fluorescence microscopy is an important tool for measuring in vivo gene dynamics in single cells. However, fluorescent proteins are limited by slow chromophore maturation times and the cellular autofluorescence or phototoxicity that arises from light excitation. An alternative is luciferase, an enzyme that emits photons and is active upon folding. The photon flux per luciferase is significantly lower than that for fluorescent proteins. Thus time-lapse luminescence microscopy has been successfully used to track gene dynamics only in larger organisms and for slower processes, for which more total photons can be collected in one exposure. Here we tested green, yellow, and red beetle luciferases and optimized substrate conditions for in vivo luminescence. By combining time-lapse luminescence microscopy with a microfluidic device, we tracked the dynamics of cell cycle genes in single yeast with subminute exposure times over many generations. Our method was faster and in cells with much smaller volumes than previous work. Fluorescence of an optimized reporter (Venus) lagged luminescence by 15–20 min, which is consistent with its known rate of chromophore maturation in yeast. Our work demonstrates that luciferases are better than fluorescent proteins at faithfully tracking the underlying gene expression.
机译:延时荧光显微镜是测量单个细胞体内基因动态的重要工具。但是,荧光蛋白受发色团成熟时间缓慢以及光激发引起的细胞自发荧光或光毒性的限制。一种替代方法是萤光素酶,它是一种发出光子并在折叠时有活性的酶。每个荧光素酶的光子通量明显低于荧光蛋白。因此,延时发光显微镜仅在较大的生物体中和较慢的过程中已成功地用于跟踪基因动力学,对于较慢的过程,一次曝光可以收集更多的总光子。在这里,我们测试了绿色,黄色和红色的甲虫萤光素酶,并优化了体内发光的底物条件。通过将延时发光显微镜与微流控设备相结合,我们跟踪了单代酵母中细胞周期基因的动态变化,并在许多世代中都具有亚分钟的暴露时间。与以前的工作相比,我们的方法速度更快,并且在体积更小的细胞中。优化的报告基因(金星)的荧光在15–20分钟后会滞后发光,这与其已知的发色团在酵母中的成熟速率一致。我们的工作表明,荧光素酶在忠实地跟踪潜在的基因表达方面比荧光蛋白更好。

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