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理性化深度学习超分辨率显微镜,用于持续活细胞成像快速亚细胞过程。

Rationalized deep learning super-resolution microscopy for sustained live imaging of rapid subcellular processes.

机构信息

Department of Automation, Tsinghua University, Beijing, China.

Institute for Brain and Cognitive Sciences, Tsinghua University, Beijing, China.

出版信息

Nat Biotechnol. 2023 Mar;41(3):367-377. doi: 10.1038/s41587-022-01471-3. Epub 2022 Oct 6.

Abstract

The goal when imaging bioprocesses with optical microscopy is to acquire the most spatiotemporal information with the least invasiveness. Deep neural networks have substantially improved optical microscopy, including image super-resolution and restoration, but still have substantial potential for artifacts. In this study, we developed rationalized deep learning (rDL) for structured illumination microscopy and lattice light sheet microscopy (LLSM) by incorporating prior knowledge of illumination patterns and, thereby, rationally guiding the network to denoise raw images. Here we demonstrate that rDL structured illumination microscopy eliminates spectral bias-induced resolution degradation and reduces model uncertainty by five-fold, improving the super-resolution information by more than ten-fold over other computational approaches. Moreover, rDL applied to LLSM enables self-supervised training by using the spatial or temporal continuity of noisy data itself, yielding results similar to those of supervised methods. We demonstrate the utility of rDL by imaging the rapid kinetics of motile cilia, nucleolar protein condensation during light-sensitive mitosis and long-term interactions between membranous and membrane-less organelles.

摘要

当使用光学显微镜对生物过程进行成像时,目标是用最小的侵入性获得最多的时空信息。深度神经网络极大地改进了光学显微镜,包括图像超分辨率和恢复,但仍然存在大量的伪影。在这项研究中,我们通过整合照明模式的先验知识,为结构光照明显微镜和晶格光片显微镜(LLSM)开发了合理化深度学习(rDL),从而合理地引导网络对原始图像进行去噪。在这里,我们证明 rDL 结构光照明显微镜消除了光谱偏置引起的分辨率降低,并将模型不确定性降低了五倍,比其他计算方法提高了超分辨率信息超过十倍。此外,rDL 应用于 LLSM 可以通过使用嘈杂数据本身的空间或时间连续性来实现自我监督训练,从而产生与监督方法相似的结果。我们通过对运动纤毛的快速动力学、光敏感有丝分裂过程中核仁蛋白凝聚以及膜状和无膜细胞器之间的长期相互作用进行成像,展示了 rDL 的实用性。

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