PO.TB02.02 · 肿瘤生物学
利用一种新型无需加热的抗体洗脱试剂,通过开放式多重IHC/IF推进空间肿瘤学研究
Advancing spatial oncology research with open-panel multiplex IHC/IF using a novel heat-free antibody stripping reagent
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
目的:空间分辨的多重免疫组织化学(IHC)和免疫荧光(IF)检测对于分析肿瘤微环境和识别预测癌症免疫治疗应答的生物标志物至关重要,然而许多平台依赖专有的封闭式抗体组合以及严苛的、基于加热的洗脱方法,这些方法会损伤FFPE组织并降低抗原性,限制了靶点选择和新标志物的快速采用。我们开发了一种无需加热的洗脱试剂,可在染色循环之间去除一抗、二抗及其他非共价结合的检测试剂,同时保持组织结构和抗原完整性。本摘要总结了其在多重IHC、IF和基于酪胺的工作流程中的性能,以及其与常见自动染色仪的兼容性。
实验步骤:使用顺序多重IHC、IF和TSA工作流程,在手动和自动染色中对FFPE肿瘤和正常组织进行染色,所用组合靶向免疫、基质和肿瘤标志物。每轮染色后,切片在下一循环前用无需加热的试剂处理。通过在洗脱后对先前使用的通道成像以及通过追踪实验检测先前施加的抗体,评估残留信号。通过比较同一靶点在早期和晚期循环中的染色强度和分布来评估抗原保存情况,并通过H&E评估形态学。
新数据摘要:该洗脱试剂持续去除结合的抗体及相关检测试剂,在先前使用的通道中无可检测的残留信号。在多个顺序循环中,关键肿瘤和免疫标志物保持预期的表达模式和亚细胞定位,抗原可检测性无明显丧失。反复的染色-洗脱循环后组织形态学保持完整。该试剂在显色IHC、IF和TSA多重工作流程中表现稳健,可在单张切片上实现多标志物组合而无交叉反应或信号残留。方案易于适配自动染色仪,可整合到转化和生物标志物流程中。
结论:这种无需加热的洗脱试剂能够在FFPE组织上实现稳健的多重IHC、IF和TSA染色,同时在多个顺序循环中保持形态学和抗原性,并易于适配自动染色仪。它简化了肿瘤学研究中多重组合的采用,节约临床标本,并能够对肿瘤免疫微环境和精准肿瘤学生物标志物进行更深入的表征。与封闭式多重平台不同,它与研究者自选的抗体和检测试剂兼容,支持能够跟上不断演进的肿瘤学靶点的灵活组合。
查看英文原文 English abstract
Purpose: Spatially resolved multiplex immunohistochemistry (IHC) and immunofluorescence (IF) assays are essential for profiling the tumor microenvironment and identifying biomarkers that predict response to cancer immunotherapies, yet many platforms rely on proprietary closed antibody panels and harsh, heat-based stripping that damage FFPE tissue and reduce antigenicity, limiting target choice and rapid adoption of new markers. We developed a heat-free stripping reagent that removes primary and secondary antibodies and other non-covalently bound detection reagents between staining cycles while preserving tissue architecture and antigen integrity. This abstract summarizes its performance in multiplex IHC, IF, and tyramide-based workflows and its compatibility with common autostainers.
Experimental Procedures: FFPE tumor and normal tissues were stained using sequential multiplex IHC, IF and TSA workflows in both manual and automated staining, with panels targeting immune, stromal, and tumor markers. After each staining round, slides were treated with the heat-free reagent before the next cycle. Residual signal was assessed by imaging previously used channels after stripping and by chase experiments to detect previously applied antibodies. Antigen preservation was evaluated by comparing staining intensity and distribution for the same targets across early and late cycles, and morphology by H&E.
Summary of New Data: The stripping reagent consistently removed bound antibodies and associated detection reagents, with no detectable residual signal in previously used channels. Across multiple sequential rounds, key tumor and immune markers maintained expected expression patterns and subcellular localization, with no appreciable loss of antigen detectability. Tissue morphology remained intact after repeated stain-strip cycles. The reagent performed robustly in chromogenic IHC, IF, and TSA multiplex workflows, enabling multi-marker panels on a single section without cross-reactivity or signal carryover. Protocols were easily adapted to autostainers, integrating into translational and biomarker pipelines.
Conclusions: This heat-free stripping reagent enables robust multiplex IHC, IF, and TSA staining on FFPE tissue while preserving morphology and antigenicity across multiple sequential cycles and is readily adaptable to autostainers. It simplifies adoption of multiplex panels in oncology research, conserves clinical specimens, and enables deeper characterization of the tumor immune microenvironment and biomarkers for precision oncology. Unlike closed multiplex platforms, it is compatible with investigator-selected antibodies and detection reagents, supporting flexible panels that keep pace with evolving oncology targets.
利益披露 Disclosure
S. Chen, None..
E. Leonard, None..
S. Roy, None.