Streamlined Quantification of p-γ-H2AX Foci for DNA Damage Analysis in Melanoma and Melanocyte Co-cultures Exposed to FLASH Irradiation Using Automated Image Cytometry.

IF 1.1 Q3 BIOLOGY Bio-protocol Pub Date : 2025-02-20 DOI:10.21769/BioProtoc.5208
Stefana Orobeti, Ioana Dinca, Alexandra Bran, Ion Tiseanu, Felix Sima, Stefana M Petrescu, Livia E Sima
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Abstract

In response to DNA-damaging physical or chemical agents, the DNA damage repair (DDR) pathway is activated in eukaryotic cells. In the radiobiology field, it is important to assess the DNA damage effect of a certain irradiation regime on cancer cells and compare it to the effect on non-transformed cells exposed to identical conditions. The first step in the DNA repair mechanism consists of the attachment of proteins such as the phosphorylated histone γ-H2AX (p-γ-H2AX) to DNA double-strand breaks (DSB) in the nucleus, which leads to the formation of repairing foci. Therefore, imaging methods were established to evaluate the presence of foci inside the nucleus after exposure to DNA-damaging agents. This approach is superior in sensitivity to other methods, such as the comet assay or the pulsed-field gel electrophoresis (PFGE), that allow direct detection of cleaved DNA fragments. These electrophoresis-based methods require high ionizing radiation dosages and are difficult to reproduce compared to imaging-based assays. Conventionally, the number of foci is determined visually, with limited accuracy and throughput. Here, by exploring the effect of laser-plasma accelerated electrons FLASH irradiation on cancer cells, we describe an image cytometry protocol for the quantification of foci with increased throughput, upon large areas, with increased precision and sample-to-sample consistency. It consists of the automatic scanning of fluorescently labeled cells and using a gating strategy similar to flow cytometry to discriminate cells in co-culture based on nuclei elongation properties, followed by automatic quantification of foci number and statistical analysis. The protocol can be used to monitor the kinetics of DNA repair by quantification of p-γ-H2AX at different time points post-exposure or by quantification of other DNA repair proteins that form foci at the DNA DSB sites. Also, the protocol can be used for quantifying the response to chemical agents targeting DNA. This protocol can be performed on any type of cancer cells, and our gating strategy to discriminate cells in co-culture can also be used in other research applications. Key features • Analysis of DNA-damage sensitivity using model cancer cell lines and non-transformed cellular controls. • Allows comparative testing of various doses of DNA damaging radiation on cancer and non-transformed cells in co-culture, as well as in monocultures. • This protocol requires TissueFAXSiPlus model i12 or an alternative instrument that allows automatic image acquisition and stitching to benefit from enhanced analysis throughput. • For analyses of co-cultures or heterogeneous samples, TissueQuest software is required to selectively quantify different cell subpopulations; dedicated training is advisable before operating the system.

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使用自动图像细胞术对暴露于FLASH照射下的黑色素瘤和黑素细胞共培养的DNA损伤分析中的p-γ-H2AX焦点进行流线型定量分析。
真核细胞在受到物理或化学物质损伤时,DNA损伤修复(DDR)途径被激活。在放射生物学领域,评估某种照射制度对癌细胞的DNA损伤效应,并将其与暴露在相同条件下的未转化细胞的影响进行比较是很重要的。DNA修复机制的第一步是磷酸化组蛋白γ-H2AX (p-γ-H2AX)等蛋白质附着在细胞核内DNA双链断裂(DSB)上,从而形成修复病灶。因此,建立了影像学方法来评估暴露于dna损伤剂后核内灶的存在。这种方法在灵敏度上优于其他方法,如彗星测定或脉冲场凝胶电泳(PFGE),这些方法可以直接检测断裂的DNA片段。这些基于电泳的方法需要高电离辐射剂量,并且与基于成像的分析相比难以重现。传统上,焦点的数量是由视觉确定的,精度和吞吐量有限。在这里,通过探索激光等离子体加速电子闪光照射对癌细胞的影响,我们描述了一种图像细胞术方案,用于在大面积上提高通量,提高精度和样品对样品一致性的病灶定量。它包括对荧光标记的细胞进行自动扫描,并使用类似于流式细胞术的门控策略,根据细胞核伸长特性来区分共培养中的细胞,然后自动量化病灶数并进行统计分析。该方案可用于通过定量暴露后不同时间点的p-γ-H2AX或定量在DNA DSB位点形成病灶的其他DNA修复蛋白来监测DNA修复动力学。此外,该方案可用于量化对靶向DNA的化学试剂的反应。该方案可以在任何类型的癌细胞上执行,并且我们的门控策略在共培养中区分细胞也可以用于其他研究应用。使用模型癌细胞系和非转化细胞对照分析dna损伤敏感性。•允许在共培养和单培养中对癌症细胞和未转化细胞进行不同剂量的DNA损伤辐射的比较测试。•该协议需要TissueFAXSiPlus型号i12或允许自动图像采集和拼接的替代仪器,以从增强的分析吞吐量中受益。•对于共培养或异质样品的分析,需要TissueQuest软件来选择性地量化不同的细胞亚群;在操作系统之前,建议进行专门的培训。
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