Luo Xin, Lu Zhi, Jin Manchang, Chen Shuai, Yang Jingyu
School of Electrical and Information Engineering, Tianjin University, Tianjin, China.
Department of Automation, Tsinghua University, Beijing, China.
Biomed Opt Express. 2024 May 20;15(6):3831-3847. doi: 10.1364/BOE.523312. eCollection 2024 Jun 1.
Optical microscopy has witnessed notable advancements but has also become more costly and complex. Conventional wide field microscopy (WFM) has low resolution and shallow depth-of-field (DOF), which limits its applications in practical biological experiments. Recently, confocal and light sheet microscopy become major workhorses for biology that incorporate high-precision scanning to perform imaging within an extended DOF but at the sacrifice of expense, complexity, and imaging speed. Here, we propose deep focus microscopy, an efficient framework optimized both in hardware and algorithm to address the tradeoff between resolution and DOF. Our deep focus microscopy achieves large-DOF and high-resolution projection imaging by integrating a deep focus network (DFnet) into light field microscopy (LFM) setups. Based on our constructed dataset, deep focus microscopy features a significantly enhanced spatial resolution of ∼260 nm, an extended DOF of over 30 µm, and broad generalization across diverse sample structures. It also reduces the computational costs by four orders of magnitude compared to conventional LFM technologies. We demonstrate the excellent performance of deep focus microscopy , including long-term observations of cell division and migrasome formation in zebrafish embryos and mouse livers at high resolution without background contamination.
光学显微镜技术取得了显著进展,但成本也更高且更复杂。传统的宽场显微镜(WFM)分辨率低、景深(DOF)浅,这限制了其在实际生物学实验中的应用。最近,共聚焦显微镜和光片显微镜成为生物学领域的主要工具,它们采用高精度扫描在扩展的景深范围内进行成像,但代价是成本高、复杂度高和成像速度慢。在此,我们提出了深聚焦显微镜技术,这是一种在硬件和算法上都经过优化的有效框架,以解决分辨率和景深之间的权衡问题。我们的深聚焦显微镜技术通过将深聚焦网络(DFnet)集成到光场显微镜(LFM)装置中,实现了大景深和高分辨率投影成像。基于我们构建数据集,深聚焦显微镜技术具有显著提高的空间分辨率,约为260纳米,扩展景深超过30微米,并且能广泛适用于各种不同的样本结构。与传统的LFM技术相比,它还将计算成本降低了四个数量级。我们展示了深聚焦显微镜技术的卓越性能,包括在高分辨率下对斑马鱼胚胎和小鼠肝脏中的细胞分裂和迁移体形成进行长期观察且无背景污染。