Institute for Biological and Medical Imaging, Helmholtz Zentrum Munich, German Research Center for Environmental Health, Ingolstaedter Landstrasse 1, 85764 Neuherberg, Germany; School of Bioengineering, Technical University of Munich, 81675 Munich, Germany; Department of Experimental Neurobiology, National Institute of Mental Health, Topolová 748, 250 67 Klecany, Czech Republic; Third Faculty of Medicine, Charles University, 116 36 Prague, Czech Republic.
Institute for Biological and Medical Imaging, Helmholtz Zentrum Munich, German Research Center for Environmental Health, Ingolstaedter Landstrasse 1, 85764 Neuherberg, Germany; School of Bioengineering, Technical University of Munich, 81675 Munich, Germany.
Trends Biotechnol. 2019 Dec;37(12):1315-1326. doi: 10.1016/j.tibtech.2019.07.012. Epub 2019 Oct 29.
Unlike traditional optical methods, optoacoustic imaging is less sensitive to scattering of ballistic photons, so it is capable of high-resolution interrogation at a greater depth. By integrating video-rate visualization with multiplexing and sensing a range of endogenous and exogenous chromophores, optoacoustic imaging has matured into a versatile noninvasive investigation modality with rapidly expanding use in biomedical research. We review the principal features of the technology and discuss recent advances it has enabled in structural, functional, and molecular neuroimaging in small-animal models. In extending the boundaries of noninvasive observation beyond the reach of customary photonic methods, the latest developments in optoacoustics have substantially advanced neuroimaging inquiry, with promising implications for basic and translational studies.
与传统的光学方法不同,光声成像是对弹道光子散射不敏感的,因此它能够在更大的深度进行高分辨率的询问。通过将视频速率可视化与复用和感测一系列内源性和外源性发色团相结合,光声成像已经成熟为一种多功能的非侵入性研究模式,在生物医学研究中的应用迅速扩大。我们回顾了该技术的主要特点,并讨论了它在小动物模型中的结构、功能和分子神经成像方面所带来的最新进展。在将非侵入性观察的范围扩展到常规光子方法无法到达的范围方面,光声技术的最新发展极大地推动了神经成像的研究,为基础和转化研究带来了广阔的前景。