论文标题
基于纤维的Picsecond两光子显微镜的虚拟H&E组织学
Virtual H&E Histology by Fiber-Based Picosecond Two-Photon Microscopy
论文作者
论文摘要
两光子显微镜(TPM)可以在体内提供三维形态和功能对比。通过适当的染色,可以利用TPM创建虚拟的H&E等效图像,从而可以改善基于组织学应用程序的吞吐量。我们先前报道了TPM的新光源,该光源采用了紧凑且坚固的纤维扩增,直接调节的激光器。该激光器是脉冲到脉冲波长在1064 nm,1122 nm和1186 nm之间可转换,可调节脉冲持续时间从50PS到5NS,任意重复速率在KW-PEAK POWERS处最高1MHz。尽管脉冲持续时间较长,但与FS-Setup相比,它可以通过降低重复速率达到相似的CW和峰值功率水平来达到相似的平均信号水平。脉冲较长导致每个脉冲数量较大的光子,通过应用快速的4 gsamples/s数字化器,从而产生单个荧光寿命测量(FLIM)。在先前的设置中,波长限制为1064 nm和更长。在这里,我们在非线性光子晶体纤维中使用四个波混合,将波长范围扩大到940 nm。该波长高度适用于在神经科学和污渍中成像绿色荧光蛋白,例如氨字橙(AO),曙红黄色(EY)和用于组织学应用的磺胺胺101(SR101)。在更紧凑的设置中,我们还使用直接的1030 nm纤维MOPA展示了虚拟的H&E组织学成像。
Two-Photon Microscopy (TPM) can provide three-dimensional morphological and functional contrast in vivo. Through proper staining, TPM can be utilized to create virtual, H&E equivalent images and thus can improve throughput in histology-based applications. We previously reported on a new light source for TPM that employs a compact and robust fiber-amplified, directly modulated laser. This laser is pulse-to-pulse wavelength switchable between 1064 nm, 1122 nm, and 1186 nm with an adjustable pulse duration from 50ps to 5ns and arbitrary repetition rates up to 1MHz at kW-peak powers. Despite the longer pulse duration, it can achieve similar average signal levels compared to fs-setups by lowering the repetition rate to achieve similar cw and peak power levels. The longer pulses lead to a larger number of photons per pulse, which yields single shot fluorescence lifetime measurements (FLIM) by applying a fast 4 GSamples/s digitizer. In the previous setup, the wavelengths were limited to 1064 nm and longer. Here, we use four wave mixing in a non-linear photonic crystal fiber to expand the wavelength range down to 940 nm. This wavelength is highly suitable for imaging green fluorescent proteins in neurosciences and stains such as acridine orange (AO), eosin yellow (EY) and sulforhodamine 101 (SR101) used for histology applications. In a more compact setup, we also show virtual H&E histological imaging using a direct 1030 nm fiber MOPA.