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Multi-MHz laser-scanning single-cell fluorescence microscopy by spatiotemporally encoded virtual source array

机译:时空编码虚拟源阵列的多MHz激光扫描单细胞荧光显微镜

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摘要

Apart from the spatial resolution enhancement, scaling of temporal resolution, equivalently the imaging throughput, of fluorescence microscopy is of equal importance in advancing cell biology and clinical diagnostics. Yet, this attribute has mostly been overlooked because of the inherent speed limitation of existing imaging strategies. To address the challenge, we employ an all-optical laser-scanning mechanism, enabled by an array of reconfigurable spatiotemporally-encoded virtual sources, to demonstrate ultrafast fluorescence microscopy at line-scan rate as high as 8 MHz. We show that this technique enables high-throughput single-cell microfluidic fluorescence imaging at 75,000 cells/second and high-speed cellular 2D dynamical imaging at 3,000 frames per second, outperforming the state-of-the-art high-speed cameras and the gold-standard laser scanning strategies. Together with its wide compatibility to the existing imaging modalities, this technology could empower new forms of high-throughput and high-speed biological fluorescence microscopy that was once challenged.
机译:除了提高空间分辨率外,荧光显微镜的时间分辨率的缩放,等效的成像通量在推进细胞生物学和临床诊断中也同样重要。然而,由于现有成像策略固有的速度限制,该属性大部分被忽略了。为了解决这一挑战,我们采用了一种全光学激光扫描机制,并通过一系列可重新配置的时空编码虚拟源启用了这种机制,以显示高达8 MHz的线扫描速率的超快速荧光显微镜。我们证明了这项技术可实现每秒75,000个细胞的高通量单细胞微流体荧光成像和每秒3,000帧的高速细胞2D动态成像,其性能优于最先进的高速相机和金-标准的激光扫描策略。加上与现有成像方式的广泛兼容性,该技术可以使曾经面临挑战的新型高通量和高速生物荧光显微镜成为可能。

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