Cao Jian, Yu Yanze, Ma Yong, Zhou Xingtao, Zhao Jing
J Refract Surg. 2025 Jul;41(7):e731-e746. doi: 10.3928/1081597X-20250513-02. Epub 2025 Jul 1.
To summarize recent progress in the clinical and experimental applications of Brillouin microscopy in ophthalmology, highlighting its potential to advance biomechanical understanding in these contexts.
Literature review.
Employing low-power lasers across visible to near-infrared wavelengths, Brillouin microscopy enables the assessment of tissue's longitudinal modulus or viscoelasticity by analyzing the Brillouin frequency shift. This technique provides valuable insights into the cornea's hydration state and anisotropic biomechanics, improving our understanding of its intrinsic characteristics. Numerous studies have demonstrated the diagnostic potential of Brillouin microscopy for corneal diseases. Experimental research has also shown significant changes in Brillouin biomechanics properties following procedures like corneal flap formation and corneal cross-linking. Additionally, Brillouin microscopy offers a novel perspective on age-related changes in both Brillouin biomechanics and morphology of crystalline lenses. Successful Brillouin measurements have been performed on other ocular tissues, including the limbus, sclera, and retina, in ex vivo studies.
Brillouin microscopy holds great promise as an ophthalmology tool. It offers unique insights into the biomechanical properties, disease-related alterations in ocular tissues, and intrinsic characteristics of biological specimens. The application of stimulated Brillouin microscopy, along with the integration of laser pump and machine learning techniques, can further enhance the acquisition speed and resolution of biological imaging. .
总结布里渊显微镜在眼科临床和实验应用中的最新进展,突出其在这些情况下推进生物力学理解的潜力。
文献综述。
布里渊显微镜利用可见到近红外波长的低功率激光,通过分析布里渊频移来评估组织的纵向模量或粘弹性。该技术为角膜的水化状态和各向异性生物力学提供了有价值的见解,增进了我们对其固有特性的理解。众多研究已证明布里渊显微镜对角膜疾病的诊断潜力。实验研究还表明,在角膜瓣形成和角膜交联等手术后,布里渊生物力学特性会发生显著变化。此外,布里渊显微镜为晶状体的布里渊生物力学和形态学与年龄相关的变化提供了新视角。在离体研究中,已成功对包括角膜缘、巩膜和视网膜在内的其他眼组织进行了布里渊测量。
布里渊显微镜作为一种眼科工具具有巨大潜力。它为眼组织的生物力学特性、与疾病相关的改变以及生物标本的固有特性提供了独特见解。受激布里渊显微镜的应用,以及激光泵与机器学习技术的结合,可进一步提高生物成像的采集速度和分辨率。