Huang Yuanhui, Omar Murad, Tian Weili, Lopez-Schier Hernán, Westmeyer Gil Gregor, Chmyrov Andriy, Sergiadis George, Ntziachristos Vasilis
Institute for Biological and Medical Imaging (IBMI), Helmholtz Zentrum München, D-85764 Neuherberg, Germany.
Chair of Biological Imaging at the Central Institute for Translational Cancer Research (TranslaTUM), School of Medicine, Technical University of Munich, D-81675 Munich, Germany.
Sci Adv. 2021 May 12;7(20). doi: 10.1126/sciadv.abd1505. Print 2021 May.
Despite its importance in regulating cellular or tissue function, electrical conductivity can only be visualized in tissue indirectly as voltage potentials using fluorescent techniques, or directly with radio waves. These either requires invasive procedures like genetic modification or suffers from limited resolution. Here, we introduce radio-frequency thermoacoustic mesoscopy (RThAM) for the noninvasive imaging of conductivity by exploiting the direct absorption of near-field ultrashort radio-frequency pulses to stimulate the emission of broadband ultrasound waves. Detection of ultrasound rather than radio waves enables micrometer-scale resolutions, over several millimeters of tissue depth. We confirm an imaging resolution of <30 μm in phantoms and demonstrate microscopic imaging of conductivity correlating to physical structures in 1- and 512-cell zebrafish embryos, as well as larvae. These results support RThAM as a promising method for high-resolution, label-free assessment of conductivity in tissues.
尽管电导率在调节细胞或组织功能方面很重要,但目前只能通过荧光技术将其作为电压电位在组织中间接可视化,或者直接用无线电波进行可视化。这些方法要么需要基因改造等侵入性操作,要么分辨率有限。在此,我们引入了射频热声显微镜(RThAM),通过利用近场超短射频脉冲的直接吸收来刺激宽带超声波的发射,从而对电导率进行无创成像。检测超声波而非无线电波能够实现微米级分辨率,成像深度可达数毫米的组织。我们在模型中证实了小于30μm的成像分辨率,并展示了与1细胞和512细胞斑马鱼胚胎以及幼体中的物理结构相关的电导率微观成像。这些结果支持RThAM作为一种有前景的方法,用于对组织中的电导率进行高分辨率、无标记评估。