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控制光的声音:光开关光声成像。

Controlling the sound of light: photoswitching optoacoustic imaging.

机构信息

Institute of Biological and Medical Imaging, Helmholtz Zentrum München, Neuherberg, Germany.

Protein Engineering for Superresolution Microscopy Lab, University of Regensburg, Regensburg, Germany.

出版信息

Nat Methods. 2024 Nov;21(11):1996-2007. doi: 10.1038/s41592-024-02396-2. Epub 2024 Sep 25.

Abstract

Optoacoustic (photoacoustic) imaging advances allow high-resolution optical imaging much deeper than optical microscopy. However, while label-free optoacoustics have already entered clinical application, biological imaging is in need of ubiquitous optoacoustic labels for use in ways that are similar to how fluorescent proteins propelled optical microscopy. We review photoswitching advances that shine a new light or, in analogy, 'bring a new sound' to biological optoacoustic imaging. Based on engineered labels and novel devices, switching uses light or other energy forms and enables signal modulation and synchronous detection for maximizing contrast and detection sensitivity over other optoacoustic labels. Herein, we explain contrast enhancement in the spectral versus temporal domains and review labels and key concepts of switching and their properties to modulate optoacoustic signals. We further outline systems and applications and discuss how switching can enable optoacoustic imaging of cellular or molecular contrast at depths and resolutions beyond those of other optical methods.

摘要

光声(光声)成象技术的进步使得光学成象的分辨率远远超过光学显微镜。然而,虽然无标记光声技术已经进入临床应用,但生物成象需要普遍的光声标记,以便以类似于推动光学显微镜的荧光蛋白的方式使用。我们综述了光开关技术的进展,这些进展为生物光声成象带来了新的曙光,或者可以类比为“带来新的声音”。基于工程化的标记物和新型器件,光开关利用光或其他能量形式,实现了信号调制和同步检测,从而在对比度和检测灵敏度方面优于其他光声标记物。在这里,我们解释了在光谱和时间域中的对比度增强,并综述了标记物和光开关的关键概念及其调制光声信号的特性。我们进一步概述了系统和应用,并讨论了光开关如何使细胞或分子对比的光声成象能够达到超越其他光学方法的深度和分辨率。

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