Alali Sanaz, Vitkin Alex
University of Toronto, Division of Biophysics and Bioimaging, Ontario Cancer Institute/University Health Network and Department of Medical Biophysics, 101 College Street, Toronto, Ontario MG 1L7, Canada.
University of Toronto, Division of Biophysics and Bioimaging, Ontario Cancer Institute/University Health Network and Department of Medical Biophysics, 101 College Street, Toronto, Ontario MG 1L7, CanadabUniversity of Toronto, Department of Radiation Oncol.
J Biomed Opt. 2015 Jun;20(6):61104. doi: 10.1117/1.JBO.20.6.061104.
Polarized light point measurements and wide-field imaging have been studied for many years in an effort to develop accurate and information-rich tissue diagnostic methods. However, the extensive depolarization of polarized light in thick biological tissues has limited the success of these investigations. Recently, advances in technology and conceptual understanding have led to a significant resurgence of research activity in the promising field of bulk tissue polarimetry. In particular, with the advent of improved measurement, analysis, and interpretation methods, including Mueller matrix decomposition, new diagnostic avenues, such as quantification of microstructural anisotropy in bulk tissues, have been enabled. Further, novel technologies have improved the speed and the accuracy of polarimetric instruments for ex vivo and in vivo diagnostics. In this paper, we review some of the recent progress in tissue polarimetry, provide illustrative application examples, and offer an outlook to the future of polarized light imaging in bulk biological tissues.
多年来,人们一直在研究偏振光点测量和宽场成像,以开发准确且信息丰富的组织诊断方法。然而,偏振光在厚生物组织中的广泛去极化限制了这些研究的成功。最近,技术进步和概念理解的提升导致了在有前景的体组织偏振测定领域研究活动的显著复兴。特别是,随着包括穆勒矩阵分解在内的改进测量、分析和解释方法的出现,开启了新的诊断途径,如对体组织中微观结构各向异性的量化。此外,新技术提高了用于离体和体内诊断的偏振测量仪器的速度和准确性。在本文中,我们回顾了组织偏振测定的一些最新进展,提供了说明性的应用示例,并对厚生物组织中偏振光成像的未来进行了展望。