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神经元超微结构的红外纳米成像及纳米颗粒与细胞的相互作用。

Infrared nanoimaging of neuronal ultrastructure and nanoparticle interaction with cells.

机构信息

Experimental Solid State Group, Department of Physics, Imperial College London, SW7 2BW, UK.

Centre for Ultrastructural Imaging, Kings College London, SE1 1UL, UK.

出版信息

Nanoscale. 2024 Mar 21;16(12):6190-6198. doi: 10.1039/d3nr04948e.

Abstract

Here we introduce scattering-type scanning near-field optical microscopy (s-SNOM) as a novel tool for nanoscale chemical-imaging of sub-cellular organelles, nanomaterials and of the interactions between them. Our setup uses a tuneable mid-infrared laser and a sharp scanning probe to image at a resolution substantially surpassing the diffraction limit. The laser can be tuned to excite vibrational modes of functional groups in biomolecules, ( amide moieties), in a way that enables direct chemical mapping without the need for labelling. We, for the first time, chemically image neuronal ultrastructure, identify neuronal organelles and sub-organelle structures as small as 10 nm and validate our findings using transmission electron microscopy (TEM). We produce chemical and morphological maps of neurons treated with gold nanospheres and characterize nanoparticle size and intracellular location, and their interaction with the plasma membrane. Our results show that the label-free nature of s-SNOM means it has a 'true' chemical resolution of up to 20 nm which can be further improved. We argue that it offers significant potential in nanomedicine for nanoscale chemical imaging of cell ultrastructure and the subcellular distribution of nanomaterials within tissues.

摘要

我们介绍了散射型扫描近场光学显微镜 (s-SNOM),它是一种用于亚细胞细胞器、纳米材料及其相互作用的纳米级化学成像的新型工具。我们的装置使用可调谐中红外激光和尖锐的扫描探针,以大大超过衍射极限的分辨率进行成像。激光可以被调谐以激发生物分子中官能团的振动模式(酰胺部分),以无需标记的方式实现直接化学映射。我们首次对神经元超微结构进行了化学成像,识别了神经元细胞器和小至 10nm 的亚细胞器结构,并使用透射电子显微镜 (TEM) 验证了我们的发现。我们生成了用金纳米球处理的神经元的化学和形态图谱,并表征了纳米颗粒的大小和细胞内位置及其与质膜的相互作用。我们的结果表明,s-SNOM 的无标记性质使其具有高达 20nm 的“真实”化学分辨率,并且可以进一步提高。我们认为,它在纳米医学中具有很大的潜力,可用于组织内细胞超微结构和纳米材料亚细胞分布的纳米级化学成像。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e60/10956966/2798563b6a18/d3nr04948e-f1.jpg

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