Spatio-temporal imaging of cell fate dynamics in single plant cells using luminescence microscope.

Shunji Shimadzu, Tomoyuki Furuya, Yasuko Ozawa, Hiroo Fukuda, Yuki Kondo
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引用次数: 1

Abstract

Stem cell fates are spatio-temporally regulated during plant development. Time-lapse imaging of fluorescence reporters is the most widely used method for spatio-temporal analysis of biological processes. However, excitation light for imaging fluorescence reporters causes autofluorescence and photobleaching. Unlike fluorescence reporters, luminescence proteins do not require excitation light, and therefore offer an alternative reporter for long-term and quantitative spatio-temporal analysis. We established an imaging system for luciferase, which enabled monitoring cell fate marker dynamics during vascular development in a vascular cell induction system called VISUAL. Single cells expressing the cambium marker, proAtHB8:ELUC, had sharp luminescence peaks at different time points. Furthermore, dual-color luminescence imaging revealed spatio-temporal relationships between cells that differentiated into xylem or phloem, and cells that transitioned from procambium to cambium. This imaging system enables not only the detection of temporal gene expression, but also facilitates monitoring of spatio-temporal dynamics of cell identity transitions at the single cell level.

利用发光显微镜对单个植物细胞命运动态的时空成像。
干细胞命运在植物发育过程中受到时空调控。荧光报告的延时成像是生物过程时空分析中使用最广泛的方法。然而,用于成像荧光报告的激发光会引起自身荧光和光漂白。与荧光报告不同,发光蛋白不需要激发光,因此为长期和定量的时空分析提供了另一种报告。我们建立了一个荧光素酶成像系统,该系统可以在血管细胞诱导系统VISUAL中监测血管发育过程中的细胞命运标记动态。表达形成层标记物proAtHB8:ELUC的单细胞在不同时间点有明显的发光峰。此外,双色发光成像揭示了分化为木质部或韧皮部的细胞与从原形成层过渡到形成层的细胞之间的时空关系。该成像系统不仅可以检测时间基因表达,还可以在单细胞水平上方便地监测细胞身份转换的时空动态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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