Exploring the structure, metabolism, and biochemistry of the neuronal microenvironment label-free using fast simultaneous multimodal optical microscopy.

IF 8.4 1区 物理与天体物理 Q1 OPTICS
Optica Pub Date : 2024-09-20 Epub Date: 2024-09-19 DOI:10.1364/optica.532367
Rishyashring R Iyer, Janet E Sorrells, Lingxiao Yang, Carlos A Renteria, Eric J Chaney, Kayvan F Tehrani, Darold R Spillman, Stephen A Boppart
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引用次数: 0

Abstract

The technologies to examine the neuronal microenvironment label free remain critically underexplored. There is a gap in our knowledge of underlying metabolic, biochemical, and electrophysiological mechanisms behind several neurological processes at a cellular level, which can be traced to the lack of versatile and high-throughput tools to investigate neural networks. In this paper, four label-free contrasts were explored as mechanisms to study neuronal activity, namely, scattering, birefringence, autofluorescence from metabolic cofactors and molecules, and local biochemistry. To overcome challenges of observing neuronal activity spanning three orders of magnitude in space and time, microscopes had to be developed to simultaneously capture these contrasts quickly, with high resolution, and over a large FOV. We developed versatile autofluorescence lifetime, multiharmonic generation, polarization-sensitive interferometry, and Raman imaging in epi-detection (VAMPIRE) microscopy to simultaneously observe multiple facets of neuronal structure and dynamics. The accelerated computational-imaging-driven acquisition speeds, the utilization of a single light source to evoke all contrasts, the simultaneous acquisition that provides an otherwise impossible multimodal dynamic imaging capability, and the real-time processing of the data enable VAMPIRE microscopy as a powerful imaging platform for neurophotonics and beyond.

利用快速同步多模态光学显微镜探索无标记神经元微环境的结构、代谢和生物化学。
检查神经元微环境标签自由的技术仍然严重不足。在细胞水平上,我们对几种神经过程背后的潜在代谢、生化和电生理机制的了解存在空白,这可以追溯到缺乏通用和高通量的工具来研究神经网络。本文探讨了四种无标记对比作为研究神经元活动的机制,即散射、双折射、代谢辅助因子和分子的自身荧光以及局部生物化学。为了克服在空间和时间上跨越三个数量级观察神经元活动的挑战,必须开发显微镜,以快速、高分辨率和大视场同时捕捉这些对比。我们在外延检测(VAMPIRE)显微镜中开发了多功能的自身荧光寿命、多谐波产生、偏振敏感干涉测量和拉曼成像技术,以同时观察神经元结构和动力学的多个方面。加速的计算成像驱动的采集速度,单个光源的利用唤起所有对比,同时采集提供了一个不可能的多模态动态成像能力,以及数据的实时处理,使VAMPIRE显微镜成为神经光子学和其他领域的强大成像平台。
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来源期刊
Optica
Optica OPTICS-
CiteScore
19.70
自引率
2.90%
发文量
191
审稿时长
2 months
期刊介绍: Optica is an open access, online-only journal published monthly by Optica Publishing Group. It is dedicated to the rapid dissemination of high-impact peer-reviewed research in the field of optics and photonics. The journal provides a forum for theoretical or experimental, fundamental or applied research to be swiftly accessed by the international community. Optica is abstracted and indexed in Chemical Abstracts Service, Current Contents/Physical, Chemical & Earth Sciences, and Science Citation Index Expanded.
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