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等离子体增强扩展显微镜。

Plasmon-Enhanced Expansion Microscopy.

机构信息

Department of Chemistry, Washington University in St. Louis, St. Louis, Missouri 63130, United States.

Department of Mechanical Engineering and Materials Science, and Institute of Materials Science and Engineering, Washington University in St. Louis, St. Louis, Missouri 63130, United States.

出版信息

Nano Lett. 2023 Jun 28;23(12):5654-5662. doi: 10.1021/acs.nanolett.3c01256. Epub 2023 Jun 12.

Abstract

Expansion microscopy (ExM) is a rapidly emerging super-resolution microscopy technique that involves isotropic expansion of biological samples to improve spatial resolution. However, fluorescence signal dilution due to volumetric expansion is a hindrance to the widespread application of ExM. Here, we introduce plasmon-enhanced expansion microscopy (p-ExM) by harnessing an ultrabright fluorescent nanoconstruct, called plasmonic-fluor (PF), as a nanolabel. The unique structure of PFs renders nearly 15000-fold brighter fluorescence signal intensity and higher fluorescence retention following the ExM protocol (nearly 76%) compared to their conventional counterparts (<16% for IR-650). Individual PFs can be easily imaged using conventional fluorescence microscopes, making them excellent "digital" labels for ExM. We demonstrate that p-ExM enables improved tracing and decrypting of neural networks labeled with PFs, as evidenced by improved quantification of morphological markers (nearly a 2.5-fold increase in number of neurite terminal points). Overall, p-ExM complements the existing ExM techniques for probing structure-function relationships of various biological systems.

摘要

扩展显微镜(ExM)是一种新兴的超分辨率显微镜技术,它通过对生物样本进行各向同性的扩展来提高空间分辨率。然而,由于体积扩展导致荧光信号稀释,这限制了 ExM 的广泛应用。在这里,我们利用超亮荧光纳米结构,称为等离子体荧光(PF),作为纳米标记,引入了等离子增强扩展显微镜(p-ExM)。与传统的 PF 相比(IR-650 时<16%),PF 的独特结构使荧光信号强度提高了近 15000 倍,并且在 ExM 方案后荧光保留率更高(近 76%)。单个 PF 可以使用传统荧光显微镜轻松成像,使其成为 ExM 的优秀“数字”标记。我们证明了 p-ExM 可以改善用 PF 标记的神经网络的追踪和解密,这可以通过形态标记物的定量分析(神经突末端点数增加近 2.5 倍)得到证明。总的来说,p-ExM 补充了现有的 ExM 技术,用于探测各种生物系统的结构-功能关系。

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