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Multiphoton microspectroscopy in living plant cells

机译:生物植物细胞中的多光子微型光谱学

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Microspectroscopicxmeasurements in plant cells are complicated by the presence of dense cellular structures such as the cell wall that causes severe light scattering. In addition, the low penetration depth of the excitation light limits the fluorescence signal originating from deeper cell layers in thick multi-cellular plant preparations when single-photon excitation (SPE) is applied. However, two-photon excitation (TPE) can overcome these problems. We report on two-photon microscopy studies of Histone 2B-YFP, a nuclear-expressed protein involved in chromatin packaging. In contrast to SPE, TPE allows imaging throughout the whole root. Therefore by using TPE it was also possible to visualize the root quiescent centers using SCARECROW-EGFP localized in the middle of the root. The interactions between various members of the Arabidopsis thaliana embryogenesis receptor kinase family (AtSERK) have been studied by monitoring Foerster resonance energy transfer (FRET) between AtSERK-ECFP and -EYFP fusion proteins using fluorescence lifetime imaging microscopy (FLIM) of the two-photon excited ECFP component.
机译:植物细胞中的微型光谱XmeSurement通过致密细胞结构(例如导致严重光散射的细胞壁)复杂。另外,当施加单光子激发(SPE)时,激发光的低渗透深度限制了源自厚多细胞植物制剂中的深层细胞层的荧光信号。然而,双光子激发(TPE)可以克服这些问题。我们报道了组蛋白2b-yfp的两光膜显微镜研究,染色蛋白包装的核表达蛋白质。与SPE相比,TPE允许在整个根部内成像。因此,通过使用TPE,还可以使用稻草人-GEFP定位在根的中间的稻草体静物中心来可视化根静态中心。通过使用双光子的荧光寿命成像显微镜(Flim)在ATSERK-ECFP和-EYFP融合蛋白之间监测Foerster谐振能量转移(FRET)来研究拟南芥植物胚胎发生受体激酶家族(ATSERK)之间的各种成员之间的相互作用。激动的ECFP组件。

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