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Nonlinear microscopy of collagen fibers

机译:胶原纤维的非线性显微镜

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We used intrinsic Second Harmonic Generation (SHG) by fibrillar collagen to visualize the three-dimensional architecture of collagen fibrosis at the micrometer scale using laser scanning nonlinear microscopy. We showed that SHG signals are highly specific to fibrillar collagen and provide a sensitive probe of the micrometer-scale structural organization of collagen in tissues. Moreover, recording simultaneously other nonlinear optical signals in a multimodal setup, we visualized the tissue morphology using Two-Photon Excited Fluorescence (2PEF) signals from endogenous chromophores such as NADH or elastin. We then compared different methods to determine accurate indexes of collagen fibrosis using nonlinear microscopy, given that most collagen fibrils are smaller than the microscope resolution and that second harmonic generation is a coherent process. In order to define a robust method to process our three-dimensional images, we either calculated the fraction of the images occupied by a significant SHG signal, or averaged SHG signal intensities. We showed that these scores provide an estimation of the extension of renal and pulmonary fibrosis in murine models, and that they clearly sort out the fibrotic mice.
机译:我们使用原纤维胶原蛋白固有的二次谐波生成(SHG),使用激光扫描非线性显微镜在微米级可视化胶原蛋白纤维化的三维结构。我们显示,SHG信号对原纤维胶原蛋白高度特异,并提供了组织中胶原蛋白的微米级结构组织的灵敏探针。此外,在多模式设置中同时记录其他非线性光学信号时,我们使用来自内生性发色团(例如NADH或弹性蛋白)的双光子激发荧光(2PEF)信号来可视化组织形态。然后,我们比较了使用非线性显微镜确定胶原纤维化准确指标的不同方法,因为大多数胶原纤维均小于显微镜分辨率,并且二次谐波的产生是一个连贯的过程。为了定义一种处理三维图像的可靠方法,我们要么计算了一个重要的SHG信号所占图像的比例,要么计算了平均的SHG信号强度。我们表明,这些评分可为鼠模型中肾脏和肺纤维化的扩展提供一个估计,并且它们可以清楚地区分出纤维化小鼠。

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