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基于声透镜光束整形的双光子显微镜增强体积成像。

Enhanced volumetric imaging in 2-photon microscopy via acoustic lens beam shaping.

机构信息

Nanoscopy, Istituto Italiano di Tecnologia, Genoa, Italy.

DIBRIS, Università degli Studi di Genova, Genoa, Italy.

出版信息

J Biophotonics. 2018 Feb;11(2). doi: 10.1002/jbio.201700050. Epub 2017 Jul 25.

Abstract

Three-dimensional imaging at high-spatiotemporal resolutions and over large penetration depths is key for unmasking the dynamics and structural organization of complex biological systems. However, the need to axially shift the focus, with consequent limitations in imaging speed, and signal degradation at large depths due to scattering effects, makes this task challenging. Here, we present a novel approach in 2-photon excitation microscopy that allows fast volumetric imaging and enhanced signal-to-background (S/B) in thick tissue. Our technique is based on ultrafast beam shaping at each pixel by means of an acoustic optofluidic lens. Shaping the excitation beam with different phase profiles enables both high-speed axial focus shifting, for continuous volumetric imaging, and controlled aberrated imaging, advantageous for out-of-focus background removal. We provide a theoretical description of our approach, and demonstrate volumetric imaging of neuronal cells from a mouse brain slice with enhancements in S/B up to a factor of 10 over a depth of 600 μm.

摘要

高时空分辨率和大穿透深度的三维成像是揭示复杂生物系统动力学和结构组织的关键。然而,需要轴向移动焦点,这会导致成像速度受限,并且由于散射效应,在大深度处信号会退化,这使得这项任务具有挑战性。在这里,我们提出了一种新的双光子激发显微镜方法,该方法允许在厚组织中进行快速体积成像和增强的信号背景比(S/B)。我们的技术基于在每个像素处通过声光流形透镜进行超快光束整形。通过不同的相位分布来整形激发光束,可以实现高速轴向焦点移动,从而进行连续的体积成像,以及控制像差成像,有利于去除离焦背景。我们提供了我们方法的理论描述,并展示了对来自小鼠脑切片的神经元细胞的体积成像,在 600μm 的深度内,S/B 增强高达 10 倍。

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