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使用量子点和反卷积的快速光稳定扩展显微镜技术

Fast photostable expansion microscopy using QDots and deconvolution.

作者信息

Gunawardhana Loku, Moree Wilna, Guo Jiaming, Artur Camille, Womack Tasha, Eriksen Jason L, Mayerich David

机构信息

University of Houston, Department of Electrical and Computer Engineering, Houston, Texas, United States of America.

SwiftFront, LLC, Houston, Texas, United States of America.

出版信息

PLoS One. 2025 Jun 13;20(6):e0325155. doi: 10.1371/journal.pone.0325155. eCollection 2025.

Abstract

Expansion microscopy (ExM) enables sub-diffraction imaging by physically expanding labeled tissue samples. This increases the tissue volume relative to the instrument point spread function (PSF), thereby improving the effective resolution by reported factors of 4 - 20X. However, this volume increase dilutes the fluorescence signal, reducing both signal-to-noise ratio (SNR) and acquisition speed. This paper proposes and validates a method for mitigating these challenges. We overcame the limitations of ExM by developing a fast photo-stable protocol to enable scalable widefield three-dimensional imaging with ExM. We combined widefield imaging with quantum dots (QDots). Widefield imaging provides a significantly faster acquisition of a single field-of-view (FOV). However, the uncontrolled incoherent illumination induces photobleaching. We mitigated this challenge using QDots, which exhibit a long fluorescence lifetime and improved photostability. First, we developed a protocol for QDot labeling. Next, we utilized widefield imaging to obtain 3D image stacks and applied deconvolution, which is feasible due to reduced scattering in ExM samples. We show that increased transparency, which is a side-effect of ExM, enables widefield deconvolution, dramatically reducing the acquisition time for three-dimensional images compared to laser scanning microscopy. The proposed QDot labeling protocol is compatible with ExM and provides enhanced photostability compared to traditional fluorescent dyes. Widefield imaging significantly improves SNR and acquisition speed compared to conventional confocal microscopy. Combining widefield imaging with QDot labeling and deconvolution has the potential to be applied to ExM for faster imaging of large three-dimensional samples with improved SNR.

摘要

扩展显微镜技术(ExM)通过对标记的组织样本进行物理扩展来实现亚衍射成像。这相对于仪器的点扩散函数(PSF)增加了组织体积,从而将有效分辨率提高了4至20倍。然而,这种体积增加会稀释荧光信号,降低信噪比(SNR)和采集速度。本文提出并验证了一种应对这些挑战的方法。我们通过开发一种快速光稳定方案克服了ExM的局限性,以实现ExM的可扩展宽场三维成像。我们将宽场成像与量子点(QDots)相结合。宽场成像能够显著更快地采集单个视场(FOV)。然而,不受控制的非相干照明会导致光漂白。我们使用具有长荧光寿命和更高光稳定性的量子点来应对这一挑战。首先,我们开发了一种量子点标记方案。接下来,我们利用宽场成像获取三维图像堆栈并应用去卷积,由于ExM样本中的散射减少,这是可行的。我们表明,ExM的一个副作用——透明度增加,使得宽场去卷积成为可能,与激光扫描显微镜相比,大大减少了三维图像的采集时间。所提出的量子点标记方案与ExM兼容,并且与传统荧光染料相比具有更高的光稳定性。与传统共聚焦显微镜相比,宽场成像显著提高了信噪比和采集速度。将宽场成像与量子点标记和去卷积相结合,有可能应用于ExM,以更快地对大型三维样本进行成像,并提高信噪比。

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