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非线性声片显微镜:在毛细血管和细胞尺度上对不透明器官进行成像。

Nonlinear sound-sheet microscopy: Imaging opaque organs at the capillary and cellular scale.

作者信息

Heiles Baptiste, Nelissen Flora, Waasdorp Rick, Terwiel Dion, Park Byung Min, Ibarra Eleonora Munoz, Matalliotakis Agisilaos, Ara Tarannum, Barturen-Larrea Pierina, Duan Mengtong, Shapiro Mikhail G, Gazzola Valeria, Maresca David

机构信息

Department of Imaging Physics, Delft University of Technology, Delft, Netherlands.

Netherlands Institute for Neuroscience, Amsterdam, Netherlands.

出版信息

Science. 2025 Apr 4;388(6742):eads1325. doi: 10.1126/science.ads1325.

Abstract

Light-sheet fluorescence microscopy has revolutionized biology by visualizing dynamic cellular processes in three dimensions. However, light scattering in thick tissue and photobleaching of fluorescent reporters limit this method to studying thin or translucent specimens. In this study, we applied nondiffractive ultrasound beams in conjunction with a cross-amplitude modulation sequence and nonlinear acoustic reporters to enable fast and volumetric imaging of targeted biological functions. We reported volumetric imaging of tumor gene expression at the cubic centimeter scale using genetically encoded gas vesicles and localization microscopy of cerebral capillary networks using intravascular microbubble contrast agents. Nonlinear sound-sheet microscopy provides a ~64× acceleration in imaging speed, ~35× increase in imaged volume, and ~4× increase in classical imaging resolution compared with the state of the art in biomolecular ultrasound.

摘要

光片荧光显微镜通过对动态细胞过程进行三维可视化,给生物学带来了变革。然而,厚组织中的光散射和荧光报告分子的光漂白限制了该方法仅能用于研究薄的或半透明的标本。在本研究中,我们将非衍射超声束与交叉幅度调制序列及非线性声学报告分子相结合,以实现对靶向生物功能的快速体成像。我们报告了使用基因编码的气体囊泡对立方厘米尺度的肿瘤基因表达进行体成像,以及使用血管内微泡造影剂对脑毛细血管网络进行定位显微镜成像。与生物分子超声领域的现有技术相比,非线性声片显微镜在成像速度上提高了约64倍,成像体积增加了约35倍,经典成像分辨率提高了约4倍。

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