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用散斑衍射层析成像技术绘制厚组织中的纳米级地形特征。

Mapping nanoscale topographic features in thick tissues with speckle diffraction tomography.

作者信息

Kang Sungsam, Zhou Renjie, Brelen Marten, Mak Heather K, Lin Yuechuan, So Peter T C, Yaqoob Zahid

机构信息

Laser Biomedical Research Center, G. R. Harrison Spectroscopy Laboratory, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.

Department of Biomedical Engineering, The Chinese University of Hong Kong, Hong Kong, China.

出版信息

Light Sci Appl. 2023 Aug 22;12(1):200. doi: 10.1038/s41377-023-01240-0.

Abstract

Resolving three-dimensional morphological features in thick specimens remains a significant challenge for label-free imaging. We report a new speckle diffraction tomography (SDT) approach that can image thick biological specimens with ~500 nm lateral resolution and ~1 μm axial resolution in a reflection geometry. In SDT, multiple-scattering background is rejected through spatiotemporal gating provided by dynamic speckle-field interferometry, while depth-resolved refractive index maps are reconstructed by developing a comprehensive inverse-scattering model that also considers specimen-induced aberrations. Benefiting from the high-resolution and full-field quantitative imaging capabilities of SDT, we successfully imaged red blood cells and quantified their membrane fluctuations behind a turbid medium with a thickness of 2.8 scattering mean-free paths. Most importantly, we performed volumetric imaging of cornea inside an ex vivo rat eye and quantified its optical properties, including the mapping of nanoscale topographic features of Dua's and Descemet's membranes that had not been previously visualized.

摘要

解析厚样本中的三维形态特征对于无标记成像来说仍然是一项重大挑战。我们报告了一种新的散斑衍射断层扫描(SDT)方法,该方法能够在反射几何结构中对厚生物样本进行成像,横向分辨率约为500纳米,轴向分辨率约为1微米。在SDT中,通过动态散斑场干涉测量法提供的时空选通来抑制多重散射背景,同时通过开发一个综合的逆散射模型来重建深度分辨的折射率图,该模型还考虑了样本引起的像差。受益于SDT的高分辨率和全场定量成像能力,我们成功地对红细胞进行了成像,并对其在厚度为2.8个散射平均自由程的浑浊介质后的膜波动进行了量化。最重要的是,我们对离体大鼠眼内的角膜进行了体积成像,并对其光学特性进行了量化,包括对以前未可视化的杜阿氏膜和后弹力层的纳米级地形特征进行映射。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2aeb/10444882/2ba8c6f60668/41377_2023_1240_Fig1_HTML.jpg

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