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宽场键选择性荧光成像:从单分子成像到超越视频速率的细胞成像

Wide-field bond-selective fluorescence imaging: from single-molecule to cellular imaging beyond video rate.

作者信息

Lee Dongkwan, Wang Haomin, Kocheril Philip A, Bi Xiaotian, Naji Noor, Wei Lu

机构信息

Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

Optica. 2025 Feb 20;12(2):148-157. doi: 10.1364/optica.545195. Epub 2025 Jan 31.

Abstract

Wide-field (WF) imaging is pivotal for observing dynamic biological events. While WF chemical microscopy offers high molecular specificity, it lacks the sensitivity for single-molecule detection. In contrast, WF fluorescence microscopy provides live-cell dynamic mapping but fails to leverage the rich chemical information necessary for functional interpretations. To address these limitations, we introduce Wide-Field Bond-selective Fluorescence-detected Infrared-Excited (WF-BonFIRE) spectro-microscopy. This technique combines rationally optimized imaging speed and field-of-view (FOV) to achieve single-molecule sensitivity with bond-selective contrast. We demonstrate WF-BonFIRE's capabilities in imaging single molecules, cells, astrocytes, and live neurons, capturing single FOVs up to 50 μm × 50 μm, with further expansion via multi-FOV mosaicking. Additionally, we have implemented a new temporal-delay modulation scheme that allows real-time kilohertz WF-BonFIRE imaging with speeds up to 1500 Hz. We showcase the millisecond temporal resolution through monitoring the random motion of live Escherichia coli. Leveraging its ability to distinguish molecules through distinct narrow-band BonFIRE signals, we further demonstrate multicolor real-time tracking. WF-BonFIRE should significantly broaden the boundary for chemical imaging, enabling high-speed observations at unparalleled sensitivity levels.

摘要

宽场(WF)成像对于观察动态生物事件至关重要。虽然宽场化学显微镜具有高分子特异性,但缺乏单分子检测的灵敏度。相比之下,宽场荧光显微镜可提供活细胞动态图谱,但无法利用功能解释所需的丰富化学信息。为了解决这些局限性,我们引入了宽场键选择性荧光检测红外激发(WF-BonFIRE)光谱显微镜。该技术合理优化了成像速度和视野(FOV),以实现具有键选择性对比度的单分子灵敏度。我们展示了WF-BonFIRE在对单分子、细胞、星形胶质细胞和活神经元成像方面的能力,可捕获高达50μm×50μm的单个视野,并通过多视野拼接进一步扩展。此外,我们实施了一种新的时间延迟调制方案,可实现高达1500Hz速度的实时千赫兹WF-BonFIRE成像。我们通过监测活大肠杆菌的随机运动展示了毫秒级时间分辨率。利用其通过独特的窄带BonFIRE信号区分分子的能力,我们进一步展示了多色实时跟踪。WF-BonFIRE应能显著拓宽化学成像的边界,实现无与伦比的灵敏度水平下的高速观察。

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