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Fluorescence-detected linear dichroism imaging in a re-scan confocal microscope equipped with differential polarization attachment

机译:配备差动偏振附件的重新扫描共聚焦显微镜中的荧光检测线性二色性成像

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摘要

Confocal laser scanning microscopy is probably the most widely used and one of the most powerful techniques in basic biology, medicine and material sciences that is employed to elucidate the architecture of complex cellular structures and molecular macro-assemblies. It has recently been shown that the information content, signal-to-noise ratio and resolution of such microscopes (LSMs) can be improved significantly by adding different attachments or modifying their design, while retaining their user-friendly features and relatively moderate costs. Differential polarization (DP) attachments, using high-frequency modulation/demodulation circuits, have made LSMs capable of high-precision 2D and 3D mapping of the anisotropy of microscopic samples—without interfering with their ‘conventional’ fluorescence or transmission imaging (Steinbach et al. in Methods Appl Fluoresc 2:015005, ). The resolution and the quality of fluorescence imaging have been enhanced in the recently constructed Re-scan confocal microscopy (RCM) (De Luca et al. in Biomed Opt Express 4:2644–2656, ). In this work, we developed the RCM technique further, by adding a DP-attachment modulating the exciting laser beam via a liquid crystal (LC) retarder synchronized with the data acquisition system; by this means, and with the aid of a software, fluorescence-detected linear dichroism (FDLD), characteristic of the anisotropic molecular organization of the sample, could be recorded in parallel with the confocal fluorescence imaging. For demonstration, we show FDLD images of a plant cell wall (Ginkgo biloba) stained with Etzold’s staining solution.Electronic supplementary materialThe online version of this article (10.1007/s00249-019-01365-4) contains supplementary material, which is available to authorized users.
机译:共聚焦激光扫描显微镜可能是基础生物学,医学和材料科学中使用最广泛的方法,也是最强大的技术之一,可用于阐明复杂细胞结构和分子宏组件的结构。最近显示,通过添加不同的附件或修改其设计,同时保留其用户友好的功能和相对适中的成本,可以显着提高此类显微镜(LSM)的信息含量,信噪比和分辨率。使用高频调制/解调电路的差分偏振(DP)附件使LSM能够对微观样品的各向异性进行高精度2D和3D映射,而不会干扰其``常规''荧光或透射成像(Steinbach等在Methods Appl Fluoresc 2:015005,)中。在最近构建的Re-scan共聚焦显微镜(RCM)中,荧光成像的分辨率和质量得到了增强(De Luca等人在Biomed Opt Express 4:2644–2656中,)。在这项工作中,我们进一步开发了RCM技术,通过添加DP附件通过与数据采集系统同步的液晶(LC)延迟器来调制激发激光束;通过这种方式,并借助软件,可以与共聚焦荧光成像并行记录荧光检测的线性二向色性(FDLD),该光谱具有样品的各向异性分子组织的特征。为了进行演示,我们显示了用Etzold染色溶液染色的植物细胞壁(银杏叶)的FDLD图像。电子补充材料本文的在线版本(10.1007 / s00249-019-01365-4)包含补充材料,可以通过授权使用用户。

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