根扩展显微镜:拟南芥超分辨率成像的可靠方法

Magali S Grison, Guillaume Maucort, Amandine Dumazel, Dorian Champelovier, Yutaro Shimizu, Yohann Boutté, Mónica Fernández-Monreal, Emmanuelle M Bayer
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引用次数: 0

摘要

扩展显微镜(ExM)通过物理放大样品,超越光衍射极限,并使用标准显微镜实现纳米级可视化,彻底改变了生物成像。虽然广泛应用于各种生物样品,但其在植物组织中的应用却很少。在这项工作中,我们提出了root - exm,一种适用于坚硬和复杂的多细胞植物组织的扩增方法,重点是拟南芥(拟南芥)的初生根。ROOT-ExM实现了各向同性扩展,分辨率提高了4倍,使超分辨率显微镜可以与受激发射损耗(STED)显微镜相媲美。标记是通过免疫定位、室特异性染料和天然荧光保存来实现的,而n -羟基琥珀酰亚胺酯-染料偶联物在特异性标记的同时揭示了细胞的超微结构背景。我们成功地应用了ROOT-ExM成像各种细胞器和亚细胞区室,包括高尔基体、内质网、细胞骨架和微小的壁嵌结构,如胞间连丝。ROOT-ExM与STED的结合使光镜下的胞间连丝达到了前所未有的分辨率。当与点阵光片显微镜相结合时,ROOT-ExM可以对纳米级细胞过程进行三维定量分析,例如细胞分裂过程中靠近细胞板的囊泡的大小定量。在植物生物学中实现超分辨率荧光成像仍然是一个艰巨的挑战。我们的研究结果强调,ROOT-ExM为这一挑战提供了一个显著的、具有成本效益的解决方案,为深入了解植物亚细胞结构铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Root expansion microscopy: A robust method for super resolution imaging in Arabidopsis
Expansion microscopy (ExM) has revolutionized biological imaging by physically enlarging samples, surpassing the light diffraction limit, and enabling nanoscale visualization using standard microscopes. While extensively employed across a wide range of biological samples, its application to plant tissues is sparse. In this work, we present ROOT-ExM, an expansion method suited for stiff and intricate multicellular plant tissues, focusing on the primary root of Arabidopsis (Arabidopsis thaliana). ROOT-ExM achieves isotropic expansion with a 4-fold increase in resolution, enabling super-resolution microscopy comparable to stimulated emission depletion (STED) microscopy. Labeling is achieved through immunolocalization, compartment-specific dyes, and native fluorescence preservation, while N-hydroxysuccinimide ester-dye conjugates reveal the ultrastructural context of cells alongside specific labeling. We successfully applied ROOT-ExM to image various organelles and subcellular compartments, including the Golgi apparatus, the endoplasmic reticulum, the cytoskeleton, and tiny wall-embedded structures such as plasmodesmata. Combination of ROOT-ExM with STED enabled reaching an unprecedented resolution of plasmodesmata by light microscopy. When combined with lattice light sheet microscopy, ROOT-ExM enabled 3D quantitative analysis of nanoscale cellular processes, such as the size quantification of vesicles near the cell plate during cell division. Achieving super-resolution fluorescence imaging in plant biology remains a formidable challenge. Our findings underscore that ROOT-ExM provides a remarkable, cost-effective solution to this challenge, paving the way for valuable insights into plant subcellular architecture.
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