Li Zhenmin, Casteleiro Costa Paloma, Guang Zhe, Filan Caroline, Robles Francisco E
School of Electrical and Computer Engineering, Georgia Institute of Technology, USA.
Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, USA.
Biomed Opt Express. 2024 Jul 18;15(8):4764-4774. doi: 10.1364/BOE.528968. eCollection 2024 Aug 1.
Quantitative oblique back-illumination microscopy (qOBM) is a novel imaging technology that enables epi-mode 3D quantitative phase imaging and refractive index (RI) tomography of thick scattering samples. The technology uses four oblique back illumination images captured at the same focal plane and a fast 2D deconvolution reconstruction algorithm to reconstruct 2D phase cross-sections of thick samples. Alternatively, a through-focus z-stack of oblique back illumination images can be used to recover 3D RI tomograms with improved RI quantitative fidelity at the cost of a more computationally expensive reconstruction algorithm. Here, we report on a generative adversarial network (GAN) assisted approach to reconstruct 3D RI tomograms with qOBM that achieves high fidelity and greatly reduces processing time. The proposed approach achieves high-fidelity 3D RI tomography using differential phase contrast images from three adjacent z-planes. A ∼9-fold improvement in volumetric reconstruction time is achieved. We further show that this technique provides high SNR RI tomograms with high quantitative fidelity, reduces motion artifacts, and generalizes to different tissue types. This work can lead to real-time, high-fidelity RI tomographic imaging for pre-clinical and clinical applications.
定量斜后照明显微镜(qOBM)是一种新型成像技术,可实现厚散射样本的落射模式3D定量相成像和折射率(RI)断层扫描。该技术使用在同一焦平面捕获的四张斜后照图像和一种快速二维解卷积重建算法来重建厚样本的二维相横截面。或者,可以使用斜后照图像的聚焦z轴堆栈来恢复3D RI断层图像,代价是重建算法的计算成本更高,但RI定量保真度有所提高。在此,我们报告一种基于生成对抗网络(GAN)的方法,用于通过qOBM重建3D RI断层图像,该方法实现了高保真度并大大减少了处理时间。所提出的方法使用来自三个相邻z平面的微分相衬图像实现了高保真度3D RI断层扫描。体积重建时间提高了约9倍。我们进一步表明,该技术提供了具有高定量保真度的高信噪比RI断层图像,减少了运动伪影,并适用于不同的组织类型。这项工作可以实现用于临床前和临床应用的实时、高保真RI断层成像。