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Adaptive optics stochastic optical reconstruction microscopy (AO-STORM) by particle swarm optimization

机译:粒子群优化的自适应光学随机光学重建显微镜(AO-STORM)

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摘要

Stochastic optical reconstruction microscopy (STORM) can achieve resolutions of better than 20nm imaging single fluorescently labeled cells. However, when optical aberrations induced by larger biological samples degrade the point spread function (PSF), the localization accuracy and number of localizations are both reduced, destroying the resolution of STORM. Adaptive optics (AO) can be used to correct the wavefront, restoring the high resolution of STORM. A challenge for AO-STORM microscopy is the development of robust optimization algorithms which can efficiently correct the wavefront from stochastic raw STORM images. Here we present the implementation of a particle swarm optimization (PSO) approach with a Fourier metric for real-time correction of wavefront aberrations during STORM acquisition. We apply our approach to imaging boutons 100 μm deep inside the central nervous system (CNS) of Drosophila melanogaster larvae achieving a resolution of 146 nm.
机译:随机光学重建显微镜(STORM)可以实现优于20nm成像的单个荧光标记细胞的分辨率。但是,当由较大的生物样本引起的光学像差降低点扩散函数(PSF)时,定位精度和定位次数都会降低,从而破坏了STORM的分辨率。自适应光学(AO)可用于校正波前,恢复STORM的高分辨率。 AO-STORM显微镜面临的挑战是开发强大的优化算法,该算法可以有效地校正随机原始STORM图像的波前。在这里,我们介绍了采用傅立叶量度的粒子群优化(PSO)方法的实现,用于在STORM采集过程中实时校正波前像差。我们将我们的方法应用于对果蝇幼虫的中枢神经系统(CNS)内的100μm深度的按钮进行成像,以实现146 nm的分辨率。

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