Yamaguchi Kazushi, Otomo Kohei, Kozawa Yuichi, Tsutsumi Motosuke, Inose Tomoko, Hirai Kenji, Sato Shunichi, Nemoto Tomomi, Uji-I Hiroshi
Graduate School of Information Science and Technology, Hokkaido University, 060-0814 Sapporo, Hokkaido, Japan.
Research Institute for Electronic Science, Hokkaido University, 060-0814 Sapporo, Hokkaido, Japan.
ACS Omega. 2020 Nov 30;6(1):438-447. doi: 10.1021/acsomega.0c04888. eCollection 2021 Jan 12.
We developed adaptive optical (AO) two-photon excitation microscopy by introducing a spatial light modulator (SLM) in a commercially available microscopy system. For correcting optical aberrations caused by refractive index (RI) interfaces at a specimen's surface, spatial phase distributions of the incident excitation laser light were calculated using 3D coordination of the RI interface with a 3D ray-tracing method. Based on the calculation, we applied a 2D phase-shift distribution to a SLM and achieved the proper point spread function. AO two-photon microscopy improved the fluorescence image contrast in optical phantom mimicking biological specimens. Furthermore, it enhanced the fluorescence intensity from tubulin-labeling dyes in living multicellular tumor spheroids and allowed successful visualization of dendritic spines in the cortical layer V of living mouse brains in the secondary motor region with a curved surface. The AO approach is useful for observing dynamic physiological activities in deep regions of various living biological specimens with curved surfaces.
我们通过在商用显微镜系统中引入空间光调制器(SLM),开发了自适应光学(AO)双光子激发显微镜。为了校正由标本表面折射率(RI)界面引起的光学像差,使用RI界面的三维坐标和三维光线追踪方法计算入射激发激光的空间相位分布。基于该计算,我们将二维相移分布应用于SLM并实现了合适的点扩散函数。AO双光子显微镜提高了模拟生物标本的光学模型中的荧光图像对比度。此外,它增强了活的多细胞肿瘤球体中微管蛋白标记染料的荧光强度,并成功地在具有曲面的次级运动区的活小鼠脑皮层V层中可视化树突棘。AO方法对于观察各种具有曲面的活生物标本深部区域的动态生理活动很有用。