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Imaging of Collagen Matrix Remodeling in Three-Dimensional Space Using Second Harmonic Generation and Two Photon Excitation Fluorescence

机译:二次谐波产生和两个光子激发荧光在三维空间中胶原基质重塑的成像。

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Second harmonic generation (SHG), a nonlinear optical phenomenon, exhibits several in-common characteristics of two-photon excited fluorescence (TPEF) microscopy. These characteristics include identical equipment requirements from experiment to experiment and the intrinsic capability of generating 3-dimensional (D) high resolution images. Structural protein arrays that are highly ordered, such as collagen, produce strong SHG signals without the need for any exogenous label (stain). SHG and TPEF can be used together to provide information on structural rearrangements in 3D space of the collagen matrix associated with various physiological processes. In this study, we used SHG and TPEF to detect cell-mediated structural reorganization of the extracellular collagen matrix in 3D space triggered by dimensional changes of embedded fibroblasts. These fibroblasts were cultured in native type I collagen gels and were stimulated to contract for a period of 24 hours. The gels were stained for cell nuclei with Hoechst and for actin with phalloidin conjugated to Alexa Fluor 488. We used non-de-scanned detectors and spectral scanning mode both in the reflection geometry for generating the 3D images and for SHG spectra, respectively. We used a tunable infrared laser with 100-fs pulses at a repetition rate of 80-MHz tuned to 800-nm for Hoechst and Alexa 488 excitations. We employed a broad range of excitation wavelengths (800 to 880-nm) with a scan interval of 10 nm to detect the SHG signal. We found that spectrally clean SHG signal peaked at 414-nm with excitation wavelength of 830-nm. The SHG spectrum has a full width half maximum (FWHM) bandwidth of 6.60-nm, which is consistent with its scaling relation to FWHM bandwidth 100-fs excitation pulses. When stimulated to contract, we found the fibroblasts to be highly elongated as well as interconnected in 2D space, and the collagen matrix, in the form of a visibly clear fibril structure, accumulated around the cells. In the absence of contraction, on the other hand, the cells were predominantly round in shape and no sign of collagen accumulation around the cell was evident despite the presence of SHG signal as well as the fibrillar collagen morphology in the collagen matrix. We here conclude that SHG in conjunction with TPEF can serve as a noninvasive method to provide spatially resolved 3D structural reorganization of collagen matrices triggered by various physiological processes.
机译:二次谐波产生(SHG)是一种非线性光学现象,具有双光子激发荧光(TPEF)显微镜的几种常见特征。这些特性包括从实验到实验的相同设备要求以及生成3维(D)高分辨率图像的固有能力。高度有序的结构蛋白阵列(例如胶原蛋白)可产生强大的SHG信号,而无需任何外源标记(染色)。 SHG和TPEF可以一起使用,以提供与各种生理过程相关的胶原蛋白基质3D空间中结构重排的信息。在这项研究中,我们使用SHG和TPEF来检测由嵌入的成纤维细胞的尺寸变化触发的3D空间中细胞外胶原基质的细胞介导的结构重组。这些成纤维细胞在天然的I型胶原凝胶中培养,并刺激收缩24小时。用Hoechst对凝胶进行细胞核染色,用与Alexa Fluor 488共轭的鬼笔环肽对肌动蛋白染色。我们分别在反射几何结构中使用非去扫描检测器和光谱扫描模式分别生成3D图像和SHG光谱。对于Hoechst和Alexa 488激发,我们使用具有100 fs脉冲的可调红外激光器,其重复频率为80 MHz,调整为800 nm。我们采用了宽范围的激发波长(800至880 nm),扫描间隔为10 nm,以检测SHG信号。我们发现,光谱纯净的SHG信号在414nm处达到峰值,激发波长为830nm。 SHG频谱的半峰全宽(FWHM)带宽为6.60 nm,这与其对FWHM带宽100-fs激发脉冲的比例关系一致。当刺激收缩时,我们发现成纤维细胞高度伸长并在二维空间中相互连接,并且胶原蛋白基质以可见的清晰原纤维结构的形式聚集在细胞周围。另一方面,在没有收缩的情况下,尽管胶原蛋白基质中存在SHG信号以及原纤维胶原蛋白形态,但是细胞主要是圆形的,并且没有明显的胶原蛋白聚集在细胞周围的迹象。我们在这里得出结论,SHG与TPEF结合可以作为一种非侵入性方法,以提供由各种生理过程触发的胶原蛋白基质的空间分辨3D结构重组。

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