Harvey MacAulay, Cisek Richard, Alizadeh Mehdi, Barzda Virginijus, Kreplak Laurent, Tokarz Danielle
Department of Chemistry, Saint Mary's University, 923 Robie Street, Halifax, NS, B3H 3C3 Canada.
Department of Chemical and Physical Sciences, University of Toronto Mississauga, Mississauga, ON, L5L 1C6, Canada.
Nanophotonics. 2023 Apr 14;12(11):2061-2071. doi: 10.1515/nanoph-2023-0177. eCollection 2023 May.
Second harmonic generation (SHG) microscopy is a commonly used technique to study the organization of collagen within tissues. However, individual collagen fibrils, which have diameters much smaller than the resolution of most optical systems, have not been extensively investigated. Here we probe the structure of individual collagen fibrils using polarization-resolved SHG (PSHG) microscopy and atomic force microscopy. We find that longitudinally polarized light occurring at the edge of a focal volume of a high numerical aperture microscope objective illuminated with linearly polarized light creates a measurable variation in PSHG signal along the axis orthogonal to an individual collagen fibril. By comparing numerical simulations to experimental data, we are able to estimate parameters related to the structure and chirality of the collagen fibril without tilting the sample out of the image plane, or cutting tissue at different angles, enabling chirality measurements on individual nanostructures to be performed in standard PSHG microscopes. The results presented here are expected to lead to a better understanding of PSHG results from both collagen fibrils and collagenous tissues. Further, the technique presented can be applied to other chiral nanoscale structures such as microtubules, nanowires, and nanoribbons.
二次谐波产生(SHG)显微镜是一种常用于研究组织内胶原蛋白组织结构的技术。然而,直径远小于大多数光学系统分辨率的单个胶原纤维尚未得到广泛研究。在这里,我们使用偏振分辨SHG(PSHG)显微镜和原子力显微镜来探测单个胶原纤维的结构。我们发现,在用线偏振光照射的高数值孔径显微镜物镜的焦斑边缘出现的纵向偏振光,会在与单个胶原纤维正交的轴向上产生可测量的PSHG信号变化。通过将数值模拟与实验数据进行比较,我们能够在不将样品倾斜出图像平面或从不同角度切割组织的情况下,估计与胶原纤维的结构和手性相关的参数,从而能够在标准PSHG显微镜上对单个纳米结构进行手性测量。预计本文给出的结果将有助于更好地理解来自胶原纤维和胶原组织的PSHG结果。此外,所提出的技术可应用于其他手性纳米级结构,如微管、纳米线和纳米带。