Leighton Ryan E, Alperstein Ariel M, Punihaole David, Silva W Ruchira, Frontiera Renee R
Department of Chemistry, University of Minnesota, Minneapolis, Minnesota55455, United States.
J Phys Chem B. 2023 Jan 12;127(1):26-36. doi: 10.1021/acs.jpcb.2c04415. Epub 2022 Dec 28.
Super-resolution fluorescence microscopy has been critical in elucidating the nanoscale structure of biological systems. However, fluorescent labels bring difficulties such as perturbative labeling steps and photobleaching. Thus, label-free super-resolution techniques are of great interest, like our group's 2016 stimulated Raman scattering (SRS) technique, stimulated Raman depletion microscopy (SRDM). Inspired by stimulated emission depletion microscopy, SRDM uses a toroidally shaped beam to deplete the signal formed on the edges of the focal spot, resulting in SRS signal being detected from only a subdiffraction limited region. In initial works, the cause of the depletion was not thoroughly characterized. Here, we conclusively demonstrate suppression mechanisms in SRDM, while also contrasting approaches to super-resolution Raman microscopy on the Stokes and anti-Stokes sides of the spectrum. By monitoring the depletion of both the SRS and inverse Raman scattering (IRS) signal at a range of depletion powers, we observed other four-wave coherent Raman pathways that correspond to the introduction of the femtosecond depletion beam. In addition, we showed the depletion of the IRS signal, paving the way for a super-resolution imaging technique based on IRS, inverse raman depletion microscopy (IRDM). Combined, SRDM and IRDM offer label-free super-resolution imaging over a large spectral range to accommodate a variety of different sample constraints.
超分辨率荧光显微镜在阐明生物系统的纳米级结构方面至关重要。然而,荧光标记带来了诸如干扰性标记步骤和光漂白等困难。因此,无标记超分辨率技术备受关注,例如我们团队在2016年提出的受激拉曼散射(SRS)技术、受激拉曼损耗显微镜(SRDM)。受受激发射损耗显微镜的启发,SRDM使用环形光束来耗尽在焦斑边缘形成的信号,从而仅从亚衍射极限区域检测到SRS信号。在最初的工作中,损耗的原因并未得到充分表征。在此,我们最终证明了SRDM中的抑制机制,同时还对比了光谱斯托克斯和反斯托克斯侧的超分辨率拉曼显微镜方法。通过在一系列损耗功率下监测SRS和反拉曼散射(IRS)信号的损耗情况,我们观察到了与飞秒损耗光束引入相对应的其他四波相干拉曼路径。此外,我们展示了IRS信号的损耗,为基于IRS的超分辨率成像技术——反拉曼损耗显微镜(IRDM)铺平了道路。综合起来,SRDM和IRDM在大光谱范围内提供无标记超分辨率成像,以适应各种不同的样品限制。