EventLFM: event camera integrated Fourier light field microscopy for ultrafast 3D imaging.

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy Light, science & applications Pub Date : 2024-06-26 DOI:10.1038/s41377-024-01502-5
Ruipeng Guo, Qianwan Yang, Andrew S Chang, Guorong Hu, Joseph Greene, Christopher V Gabel, Sixian You, Lei Tian
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Abstract

Ultrafast 3D imaging is indispensable for visualizing complex and dynamic biological processes. Conventional scanning-based techniques necessitate an inherent trade-off between acquisition speed and space-bandwidth product (SBP). Emerging single-shot 3D wide-field techniques offer a promising alternative but are bottlenecked by the synchronous readout constraints of conventional CMOS systems, thus restricting data throughput to maintain high SBP at limited frame rates. To address this, we introduce EventLFM, a straightforward and cost-effective system that overcomes these challenges by integrating an event camera with Fourier light field microscopy (LFM), a state-of-the-art single-shot 3D wide-field imaging technique. The event camera operates on a novel asynchronous readout architecture, thereby bypassing the frame rate limitations inherent to conventional CMOS systems. We further develop a simple and robust event-driven LFM reconstruction algorithm that can reliably reconstruct 3D dynamics from the unique spatiotemporal measurements captured by EventLFM. Experimental results demonstrate that EventLFM can robustly reconstruct fast-moving and rapidly blinking 3D fluorescent samples at kHz frame rates. Furthermore, we highlight EventLFM's capability for imaging of blinking neuronal signals in scattering mouse brain tissues and 3D tracking of GFP-labeled neurons in freely moving C. elegans. We believe that the combined ultrafast speed and large 3D SBP offered by EventLFM may open up new possibilities across many biomedical applications.

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EventLFM:用于超快三维成像的事件相机集成傅立叶光场显微镜。
超快三维成像对于观察复杂而动态的生物过程是必不可少的。传统的扫描技术必须在采集速度和空间带宽乘积(SBP)之间做出权衡。新兴的单镜头三维宽视场技术提供了一种有前途的替代方案,但却受到传统 CMOS 系统同步读出限制的瓶颈,从而限制了数据吞吐量,无法在有限的帧速率下保持较高的 SBP。为了解决这个问题,我们推出了 EventLFM,这是一种简单、经济高效的系统,通过将事件相机与傅立叶光场显微镜(LFM)(一种最先进的单镜头三维宽视场成像技术)集成,克服了这些挑战。事件相机采用新颖的异步读出架构,从而绕过了传统 CMOS 系统固有的帧速率限制。我们进一步开发了一种简单、稳健的事件驱动 LFM 重建算法,该算法可以从 EventLFM 捕捉到的独特时空测量数据中可靠地重建三维动态。实验结果表明,EventLFM 能够以 kHz 帧频稳健地重建快速移动和快速闪烁的三维荧光样本。此外,我们还重点介绍了 EventLFM 对散射小鼠脑组织中闪烁神经元信号的成像能力,以及对自由移动的秀丽隐杆线虫中 GFP 标记神经元的三维跟踪能力。我们相信,EventLFM 所提供的超快速度和大三维 SBP 的组合可能会为许多生物医学应用带来新的可能性。
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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