Fang Qi, Krajancich Brooke, Chin Lixin, Zilkens Renate, Curatolo Andrea, Frewer Luke, Anstie James D, Wijesinghe Philip, Hall Colin, Dessauvagie Benjamin F, Latham Bruce, Saunders Christobel M, Kennedy Brendan F
BRITElab, Harry Perkins Institute of Medical Research, QEII Medical Centre, Nedlands and Centre for Medical Research, The University of Western Australia, Perth, Western Australia, 6009, Australia.
Department of Electrical, Electronic & Computer Engineering, School of Engineering, The University of Western Australia, 35 Stirling Highway, Perth, Western Australia, 6009, Australia.
Biomed Opt Express. 2019 Jul 16;10(8):4034-4049. doi: 10.1364/BOE.10.004034. eCollection 2019 Aug 1.
Optical coherence elastography (OCE) has been proposed for a range of clinical applications. However, the majority of these studies have been performed using bulky, lab-based imaging systems. A compact, handheld imaging probe would accelerate clinical translation, however, to date, this had been inhibited by the slow scan rates of compact devices and the motion artifact induced by the user's hand. In this paper, we present a proof-of-concept, handheld quantitative micro-elastography (QME) probe capable of scanning a 6 × 6 × 1 mm volume of tissue in 3.4 seconds. This handheld probe is enabled by a novel QME acquisition protocol that incorporates a custom bidirectional scan pattern driving a microelectromechanical system (MEMS) scanner, synchronized with the sample deformation induced by an annular PZT actuator. The custom scan pattern reduces the total acquisition time and the time difference between B-scans used to generate displacement maps, minimizing the impact of motion artifact. We test the feasibility of the handheld QME probe on a tissue-mimicking silicone phantom, demonstrating comparable image quality to a bench-mounted setup. In addition, we present the first handheld QME scans performed on human breast tissue specimens. For each specimen, quantitative micro-elastograms are co-registered with, and validated by, histology, demonstrating the ability to distinguish stiff cancerous tissue from surrounding soft benign tissue.
光学相干弹性成像(OCE)已被应用于一系列临床应用中。然而,这些研究大多是使用笨重的、基于实验室的成像系统进行的。一种紧凑的手持式成像探头将加速临床转化,然而,迄今为止,这受到了紧凑型设备扫描速度慢以及用户手部引起的运动伪影的限制。在本文中,我们展示了一种概念验证的手持式定量微弹性成像(QME)探头,它能够在3.4秒内扫描6×6×1毫米体积的组织。这种手持式探头通过一种新颖的QME采集协议实现,该协议采用定制的双向扫描模式驱动微机电系统(MEMS)扫描仪,并与环形PZT致动器引起的样本变形同步。定制扫描模式减少了总采集时间以及用于生成位移图的B扫描之间的时间差,从而将运动伪影的影响降至最低。我们在仿组织硅橡胶体模上测试了手持式QME探头的可行性,证明其图像质量与台式设置相当。此外,我们展示了首次在人体乳腺组织标本上进行的手持式QME扫描。对于每个标本,定量微弹性图与组织学进行配准并通过组织学验证,证明了区分坚硬癌组织与周围柔软良性组织的能力。