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深度学习实现了无参考各向同性超分辨率容积荧光显微镜。

Deep learning enables reference-free isotropic super-resolution for volumetric fluorescence microscopy.

机构信息

Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology, Daejeon, South Korea.

Department of Physiology and Biomedical Sciences, Seoul National University College of Medicine, Seoul, South Korea.

出版信息

Nat Commun. 2022 Jun 8;13(1):3297. doi: 10.1038/s41467-022-30949-6.

Abstract

Volumetric imaging by fluorescence microscopy is often limited by anisotropic spatial resolution, in which the axial resolution is inferior to the lateral resolution. To address this problem, we present a deep-learning-enabled unsupervised super-resolution technique that enhances anisotropic images in volumetric fluorescence microscopy. In contrast to the existing deep learning approaches that require matched high-resolution target images, our method greatly reduces the effort to be put into practice as the training of a network requires only a single 3D image stack, without a priori knowledge of the image formation process, registration of training data, or separate acquisition of target data. This is achieved based on the optimal transport-driven cycle-consistent generative adversarial network that learns from an unpaired matching between high-resolution 2D images in the lateral image plane and low-resolution 2D images in other planes. Using fluorescence confocal microscopy and light-sheet microscopy, we demonstrate that the trained network not only enhances axial resolution but also restores suppressed visual details between the imaging planes and removes imaging artifacts.

摘要

荧光显微镜的体积成像是有限的各向异性空间分辨率,其中轴向分辨率低于侧向分辨率。为了解决这个问题,我们提出了一种基于深度学习的无监督超分辨率技术,用于增强体积荧光显微镜中的各向异性图像。与现有的需要匹配高分辨率目标图像的深度学习方法不同,我们的方法大大减少了实际应用的工作量,因为网络的训练只需要一个 3D 图像堆栈,而不需要图像形成过程、训练数据的配准或单独获取目标数据的先验知识。这是基于最优传输驱动的循环一致性生成对抗网络实现的,该网络通过在侧向图像平面中的高分辨率 2D 图像和其他平面中的低分辨率 2D 图像之间进行无配对匹配来学习。使用荧光共聚焦显微镜和光片显微镜,我们证明训练后的网络不仅可以提高轴向分辨率,还可以恢复成像平面之间被抑制的视觉细节,并去除成像伪影。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca54/9178036/9dca6e38c1e4/41467_2022_30949_Fig1_HTML.jpg

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