Pérez-Cota Fernando, Smith Richard J, Moradi Emilia, Marques Leonel, Webb Kevin F, Clark Matt
Appl Opt. 2015 Oct 1;54(28):8388-98. doi: 10.1364/AO.54.008388.
At low frequencies ultrasound is a valuable tool to mechanically characterize and image biological tissues. There is much interest in using high-frequency ultrasound to investigate single cells. Mechanical characterization of vegetal and biological cells by measurement of Brillouin oscillations has been demonstrated using ultrasound in the GHz range. This paper presents a method to extend this technique from the previously reported single-point measurements and line scans into a high-resolution acoustic imaging tool. Our technique uses a three-layered metal-dielectric-metal film as a transducer to launch acoustic waves into the cell we want to study. The design of this transducer and measuring system is optimized to overcome the vulnerability of a cell to the exposure of laser light and heat without sacrificing the signal-to-noise ratio. The transducer substrate shields the cell from the laser radiation, efficiently generates acoustic waves, facilitates optical detection in transmission, and aids with heat dissipation away from the cell. This paper discusses the design of the transducers and instrumentation and presents Brillouin frequency images on phantom, fixed, and living cells.
在低频情况下,超声是对生物组织进行机械特性表征和成像的一种宝贵工具。人们对使用高频超声来研究单细胞非常感兴趣。利用吉赫兹范围内的超声,通过测量布里渊振荡对植物细胞和生物细胞进行机械特性表征已得到证实。本文提出了一种将该技术从先前报道的单点测量和线扫描扩展为高分辨率声学成像工具的方法。我们的技术使用三层金属 - 电介质 - 金属薄膜作为换能器,将声波发射到我们想要研究的细胞中。该换能器和测量系统的设计经过优化,以克服细胞对激光照射和热暴露的脆弱性,同时不牺牲信噪比。换能器基板可使细胞免受激光辐射,有效产生声波,便于透射光检测,并有助于细胞散热。本文讨论了换能器和仪器的设计,并展示了在体模、固定细胞和活细胞上的布里渊频率图像。