在生物仿真微纹理平台上进行单克隆跟踪,对髓源性抑制细胞的体内外扩散特征进行实时引导迁移分析。

4区 生物学 Q4 Biochemistry, Genetics and Molecular Biology Methods in cell biology Pub Date : 2024-01-01 Epub Date: 2024-02-21 DOI:10.1016/bs.mcb.2024.01.002
Ana Panic, Jordan Moore, Daniel Gallego-Perez
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引用次数: 0

摘要

目前削弱肿瘤微环境(TME)中髓源抑制细胞(MDSCs)有害影响的策略缺乏有效的临床解决方案,这在很大程度上是由于对易受影响的细胞和分子靶点缺乏足够的了解。我们在此介绍生物仿生微加工平台的应用,该平台旨在分析MDSCs在体外肿瘤龛中的迁移表型,从而加速治疗发现。通过模仿 TME 生理结构中存在的引导性结构线索,排列整齐的微形貌基底可以在单个克隆水平上阐明对 MDSCs 迁徙表型的潜在干预。结合细胞和分子生物学分析工具,我们的方法采用了细胞运动的实时跟踪分析,以探究MDSCs在引导迁移条件下的扩散特征。通过这些方法,我们可以根据细胞的扩散能力和抑制能力确定感兴趣的细胞亚群。通过这种方法,我们展示了应用微尺度工程工具、动态活细胞成像和生物分析方法来发现新的可利用的运动靶点,从而推动癌症疗法发现的潜力。这种方法固有的简便性和对肿瘤相关细胞迁移各种情况的扩展应用,使其广泛适用于现有的生物实验室条件和兴趣。
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Single clonal tracking on biomimetic microtextured platforms for real-time guided migration analysis of myeloid-derived suppressor cell dissemination characteristics ex vivo.

Current strategies to undermine the deleterious influence of myeloid-derived suppressor cells (MDSCs) in the tumor microenvironment (TME) are lacking effective clinical solutions, in large part, due to insufficient knowledge on susceptible cellular and molecular targets. We describe here the application of biomimetic microfabricated platforms designed to analyze migratory phenotypes of MDSCs in the tumor niche ex vivo, which may enable accelerated therapeutic discovery. By mimicking the guided structural cues present in the physiological architecture of the TME, aligned microtopography substrates can elucidate potential interventions on migratory phenotypes of MDSCs at the single clonal level. Coupled with cellular and molecular biology analysis tools, our approach employs real-time tracking analysis of cell motility to probe the dissemination characteristics of MDSCs under guided migration conditions. These methods allow us to identify cellular subpopulations of interest based on their disseminative and suppressive capabilities. By doing so, we illustrate the potential of applying microscale engineering tools, in concert with dynamic live cell imaging and bioanalysis methods to uncover novel exploitable motility targets for advancing cancer therapy discovery. The inherent simplicity and extended application to a variety of contexts in tumor-associated cell migration render this method widely accessible to existing biological laboratory conditions and interests.

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来源期刊
Methods in cell biology
Methods in cell biology 生物-细胞生物学
CiteScore
3.10
自引率
0.00%
发文量
125
审稿时长
3 months
期刊介绍: For over fifty years, Methods in Cell Biology has helped researchers answer the question "What method should I use to study this cell biology problem?" Edited by leaders in the field, each thematic volume provides proven, state-of-art techniques, along with relevant historical background and theory, to aid researchers in efficient design and effective implementation of experimental methodologies. Over its many years of publication, Methods in Cell Biology has built up a deep library of biological methods to study model developmental organisms, organelles and cell systems, as well as comprehensive coverage of microscopy and other analytical approaches.
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