Shi Chenjun, Zhang Hongyuan, Zhang Jitao
Department of Biomedical Engineering, Wayne State University, Detroit, MI, United States.
Cole Eye Institute, Cleveland Clinic, Cleveland, OH, United States.
Front Phys. 2023;11. doi: 10.3389/fphy.2023.1175653. Epub 2023 Mar 31.
Brillouin microscopy based on spontaneous Brillouin scattering has emerged as a unique elastography technique because of its merit of non-contact, label-free, and high-resolution mechanical imaging of biological cell and tissue. Recently, several new optical modalities based on stimulated Brillouin scattering have been developed for biomechanical research. As the scattering efficiency of the stimulated process is much higher than its counterpart in the spontaneous process, stimulated Brillouin-based methods have the potential to significantly improve the speed and spectral resolution of existing Brillouin microscopy. Here, we review the ongoing technological advancements of three methods, including continuous wave stimulated Brillouin microscopy, impulsive stimulated Brillouin microscopy, and laser-induced picosecond ultrasonics. We describe the physical principle, the representative instrumentation, and biological application of each method. We further discuss the current limitations as well as the challenges for translating these methods into a visible biomedical instrument for biophysics and mechanobiology.
基于自发布里渊散射的布里渊显微镜已成为一种独特的弹性成像技术,因为它具有对生物细胞和组织进行非接触、无标记和高分辨率机械成像的优点。最近,几种基于受激布里渊散射的新光学模态已被开发用于生物力学研究。由于受激过程的散射效率远高于自发过程,基于受激布里渊的方法有可能显著提高现有布里渊显微镜的速度和光谱分辨率。在此,我们回顾三种方法的当前技术进展,包括连续波受激布里渊显微镜、脉冲受激布里渊显微镜和激光诱导皮秒超声。我们描述了每种方法的物理原理、代表性仪器设备及生物应用。我们还进一步讨论了当前的局限性以及将这些方法转化为用于生物物理和力学生物学的实用生物医学仪器所面临的挑战。