Department of Bioengineering, University of Washington, Seattle, WA 98195, USA.
AGH University of Science and Technology, Krakow, Poland.
Sci Rep. 2016 Dec 23;6:38967. doi: 10.1038/srep38967.
Elastography plays a key role in characterizing soft media such as biological tissue. Although this technology has found widespread use in both clinical diagnostics and basic science research, nearly all methods require direct physical contact with the object of interest and can even be invasive. For a number of applications, such as diagnostic measurements on the anterior segment of the eye, physical contact is not desired and may even be prohibited. Here we present a fundamentally new approach to dynamic elastography using non-contact mechanical stimulation of soft media with precise spatial and temporal shaping. We call it acoustic micro-tapping (AμT) because it employs focused, air-coupled ultrasound to induce significant mechanical displacement at the boundary of a soft material using reflection-based radiation force. Combining it with high-speed, four-dimensional (three space dimensions plus time) phase-sensitive optical coherence tomography creates a non-contact tool for high-resolution and quantitative dynamic elastography of soft tissue at near real-time imaging rates. The overall approach is demonstrated in ex-vivo porcine cornea.
弹性成像在描述生物组织等软介质方面发挥着关键作用。尽管这项技术已在临床诊断和基础科学研究中得到广泛应用,但几乎所有方法都需要与感兴趣的物体直接物理接触,甚至可能具有侵入性。对于一些应用,例如对眼前节的诊断测量,不希望也可能禁止物理接触。在这里,我们提出了一种使用非接触机械刺激软介质的动态弹性成像的全新方法,该方法具有精确的空间和时间成形。我们称之为声微敲击(AμT),因为它使用聚焦的、空气耦合的超声波,通过基于反射的辐射力在软材料的边界处引起显著的机械位移。将其与高速、四维(三个空间维度加时间)相敏光相干断层扫描相结合,为软组织的高分辨率和定量动态弹性成像创建了一个非接触工具,可实现近实时成像速度。整体方法在离体猪角膜中得到了验证。