在微孔阵列中处理三维肿瘤球体以进行免疫组化分析的经济高效的优化方法。

Q3 Medicine
Mircea Bogdan Matei, Carmen Letitia Marinescu, Christien Oktaviani Matei, Alex-Sebastian Pînzariu, Leon Zăgrean, Mihaela Georgeta Moisescu
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引用次数: 0

摘要

本研究针对胶质母细胞瘤(U87 MG)和乳腺腺癌(MCF-7)肿瘤模型,介绍了一种用于组织学处理和分析的球形微孔阵列的改进方法。通过从传统的二维细胞培养过渡到三维系统,这种方法克服了二维培养的局限性,更准确地复制了肿瘤微环境。该方法包括使用低粘附性琼脂糖涂层孔制作同型和异型球形体,将这些球形体嵌入琼脂糖微孔阵列,并进行免疫组化(IHC)以分析细胞和分子特征。使用 OrganoSeg 软件进行了形态学分析,IHC 染色证实了与相应肿瘤类型一致的标记物表达。研究详细介绍了从二维细胞培养到 IHC 分析的工作流程,包括琼脂糖孔涂布、球形体包埋以及 EMA、p53、Ki-67、ER、PR 和 HER2 等标记物的 IHC 染色。结果表明,U87 MG 球体和成纤维细胞稳定的 MCF-7 球体结构紧凑、呈圆形,两种类型的球体都有特定的标记表达。这种创新方法大大提高了生产和分析大量球体的效率,使其既快捷又经济。它提供了一个强大的药物筛选和癌症研究平台,即使在批量工作流程条件下也能保持球体的可追溯性。此外,这种方法还能提供比二维培养更贴近生理的模型,对通过 IHC 研究肿瘤行为和治疗反应至关重要,从而支持个性化医学的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cost-effective optimized method to process 3D tumoral spheroids in microwell arrays for immunohistochemistry analysis.

This study presents an improved method for obtaining spheroids microwell arrays for histological processing and analysis, focusing on glioblastoma (U87 MG) and breast adenocarcinoma (MCF-7) tumor models. By transitioning from traditional 2D cell cultures to 3D systems, this approach overcomes the limitations of 2D cultures by more accurately replicating the tumor microenvironment. The method consists of producing homotypic and heterotypic spheroids using low-adherence agarose-coated wells, embedding these spheroids in agarose microwell arrays, and conducting immunohistochemistry (IHC) to analyze cellular and molecular profiles. Morphological analyses were performed using OrganoSeg software, and IHC staining confirmed marker expressions consistent with respective tumor types. The study details the workflow from 2D cell culture to IHC analysis, including agarose well coating, spheroid embedding, and IHC staining for markers such as EMA, p53, Ki-67, ER, PR, and HER2. Results demonstrated compact, round U87 MG spheroids and fibroblast-stabilized MCF-7 spheroids, with both types exhibiting specific marker expressions. This innovative approach significantly enhances the efficiency of producing and analyzing large volumes of spheroids, making it both quick and cost-effective. It offers a robust drug screening and cancer research platform, maintaining spheroid traceability even in bulk workflow conditions. Furthermore, this methodology supports advances in personalized medicine by providing a more physiologically relevant model than 2D cultures, which is crucial for investigating tumor behavior and therapeutic responses through IHC.

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来源期刊
Journal of Medicine and Life
Journal of Medicine and Life Medicine-Medicine (all)
CiteScore
1.90
自引率
0.00%
发文量
202
期刊介绍: The Journal of Medicine and Life publishes peer-reviewed articles from various fields of medicine and life sciences, including original research, systematic reviews, special reports, case presentations, major medical breakthroughs and letters to the editor. The Journal focuses on current matters that lie at the intersection of biomedical science and clinical practice and strives to present this information to inform health care delivery and improve patient outcomes. Papers addressing topics such as neuroprotection, neurorehabilitation, neuroplasticity, and neuroregeneration are particularly encouraged, as part of the Journal''s continuous interest in neuroscience research. The Editorial Board of the Journal of Medicine and Life is open to consider manuscripts from all levels of research and areas of biological sciences, including fundamental, experimental or clinical research and matters of public health. As part of our pledge to promote an educational and community-building environment, our issues feature sections designated to informing our readers regarding exciting international congresses, teaching courses and relevant institutional-level events.
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