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通过发光二极管光漂白提高基于光学组织通透的三维免疫荧光显微镜检测肿瘤微环境的多重性。

Increased Multiplexity in Optical Tissue Clearing-Based Three-Dimensional Immunofluorescence Microscopy of the Tumor Microenvironment by Light-Emitting Diode Photobleaching.

机构信息

Department of Pharmaceutical Sciences, University of Illinois, Chicago, Chicago, Illinois.

Department of Pharmaceutical Sciences, University of Illinois, Chicago, Chicago, Illinois; University of Illinois Cancer Center, University of Illinois Chicago, Chicago, Illinois.

出版信息

Lab Invest. 2024 Jun;104(6):102072. doi: 10.1016/j.labinv.2024.102072. Epub 2024 Apr 26.

Abstract

Optical tissue clearing and three-dimensional (3D) immunofluorescence (IF) microscopy is transforming imaging of the complex tumor microenvironment (TME). However, current 3D IF microscopy has restricted multiplexity; only 3 or 4 cellular and noncellular TME components can be localized in cleared tumor tissue. Here we report a light-emitting diode (LED) photobleaching method and its application for 3D multiplexed optical mapping of the TME. We built a high-power LED light irradiation device and temperature-controlled chamber for completely bleaching fluorescent signals throughout optically cleared tumor tissues without compromise of tissue and protein antigen integrity. With newly developed tissue mounting and selected region-tracking methods, we established a cyclic workflow involving IF staining, tissue clearing, 3D confocal microscopy, and LED photobleaching. By registering microscope channel images generated through 3 work cycles, we produced 8-plex image data from individual 400 μm-thick tumor macrosections that visualize various vascular, immune, and cancer cells in the same TME at tissue-wide and cellular levels in 3D. Our method was also validated for quantitative 3D spatial analysis of cellular remodeling in the TME after immunotherapy. These results demonstrate that our LED photobleaching system and its workflow offer a novel approach to increase the multiplexing power of 3D IF microscopy for studying tumor heterogeneity and response to therapy.

摘要

光学组织透明化和三维(3D)免疫荧光(IF)显微镜技术正在改变复杂肿瘤微环境(TME)的成像方式。然而,目前的 3D IF 显微镜技术的多重检测能力有限;只能在清除的肿瘤组织中定位 3 或 4 种细胞和非细胞 TME 成分。在这里,我们报告了一种发光二极管(LED)光漂白方法及其在 TME 的 3D 多重光学映射中的应用。我们构建了一个高功率 LED 光辐照装置和温度控制室,可在不损害组织和蛋白质抗原完整性的情况下,对整个光学透明化的肿瘤组织中的荧光信号进行完全漂白。通过新开发的组织安装和选定的区域跟踪方法,我们建立了一个循环工作流程,包括 IF 染色、组织透明化、3D 共聚焦显微镜和 LED 光漂白。通过注册通过 3 个工作周期生成的显微镜通道图像,我们从单个 400μm 厚的肿瘤大切片中生成了 8 重图像数据,以 3D 方式在组织和细胞水平上可视化同一 TME 中的各种血管、免疫和癌细胞。我们的方法还验证了免疫治疗后 TME 中细胞重塑的定量 3D 空间分析。这些结果表明,我们的 LED 光漂白系统及其工作流程为增加 3D IF 显微镜技术研究肿瘤异质性和对治疗的反应提供了一种新方法。

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