Zvietcovich Fernando, Larin Kirill V
University of Houston, Biomedical Engineering, Houston, TX, United States, 77204.
Prog Biomed Eng (Bristol). 2022 Jan;4(1). doi: 10.1088/2516-1091/ac4512. Epub 2022 Jan 14.
After 10 years of progress and innovation, optical coherence elastography (OCE) based on the propagation of mechanical waves has become one of the major and the most studied OCE branches, producing a fundamental impact in the quantitative and nondestructive biomechanical characterization of tissues. Preceding previous progress made in ultrasound and magnetic resonance elastography; wave-based OCE has pushed to the limit the advance of three major pillars: (1) implementation of novel wave excitation methods in tissues, (2) understanding new types of mechanical waves in complex boundary conditions by proposing advance analytical and numerical models, and (3) the development of novel estimators capable of retrieving quantitative 2D/3D biomechanical information of tissues. This remarkable progress promoted a major advance in answering basic science questions and the improvement of medical disease diagnosis and treatment monitoring in several types of tissues leading, ultimately, to the first attempts of clinical trials and translational research aiming to have wave-based OCE working in clinical environments. This paper summarizes the fundamental up-to-date principles and categories of wave-based OCE, revises the timeline and the state-of-the-art techniques and applications lying in those categories, and concludes with a discussion on the current challenges and future directions, including clinical translation research.
经过10年的发展与创新,基于机械波传播的光学相干弹性成像(OCE)已成为主要且研究最多的OCE分支之一,对组织的定量和无损生物力学表征产生了根本性影响。先于超声和磁共振弹性成像之前取得的进展;基于波的OCE将三大支柱的发展推向了极限:(1)在组织中实施新型波激发方法,(2)通过提出先进的分析和数值模型来理解复杂边界条件下的新型机械波,以及(3)开发能够获取组织定量二维/三维生物力学信息的新型估计器。这一显著进展推动了在回答基础科学问题方面的重大进步,并改善了多种组织类型中的医学疾病诊断和治疗监测,最终促成了旨在使基于波的OCE在临床环境中发挥作用的首次临床试验和转化研究尝试。本文总结了基于波的OCE的基本最新原理和类别,回顾了这些类别中的时间线以及最新技术和应用,并以对当前挑战和未来方向的讨论作为结尾,包括临床转化研究。