Appl Opt. 2020 Feb 20;59(6):1756-1762. doi: 10.1364/AO.384662.
When live imaging is not feasible, sample fixation allows preserving the ultrastructure of biological samples for subsequent microscopy analysis. This process could be performed with various methods, each one affecting differently the biological structure of the sample. While these alterations were well-characterized using traditional microscopy, little information is available about the effects of the fixatives on the spatial molecular orientation of the biological tissue. We tackled this issue by employing rotating-polarization coherent anti-Stokes Raman scattering (RP-CARS) microscopy to study the effects of different fixatives on the myelin sub-micrometric molecular order and micrometric morphology. RP-CARS is a novel technique derived from CARS microscopy that allows probing spatial orientation of molecular bonds while maintaining the intrinsic chemical selectivity of CARS microscopy. By characterizing the effects of the fixation procedures, the present work represents a useful guide for the choice of the best fixation technique(s), in particular for polarization-resolved CARS microscopy. Finally, we show that the combination of paraformaldehyde and glutaraldehyde can be effectively employed as a fixative for RP-CARS microscopy, as long as the effects on the molecular spatial distribution, here characterized, are taken into account.
当实时成像不可行时,样品固定可保留生物样品的超微结构,以便随后进行显微镜分析。可以使用各种方法进行此过程,每种方法都会对样品的生物学结构产生不同的影响。虽然这些改变在传统显微镜下得到了很好的描述,但关于固定剂对生物组织的空间分子取向的影响的信息很少。我们通过采用旋转偏振相干反斯托克斯拉曼散射(RP-CARS)显微镜来研究不同固定剂对髓鞘亚微米分子有序性和微米形态的影响来解决这个问题。RP-CARS 是一种源自 CARS 显微镜的新技术,它允许在保持 CARS 显微镜固有化学选择性的同时探测分子键的空间取向。通过对固定程序的影响进行表征,本工作为选择最佳固定技术(特别是用于偏振分辨 CARS 显微镜)提供了有用的指南。最后,我们表明,只要考虑到这里所描述的对分子空间分布的影响,多聚甲醛和戊二醛的组合可以有效地用作 RP-CARS 显微镜的固定剂。