水凝胶微孔阵列允许评估蛋白酶相关的癌细胞聚集和生存增强。

Daniela Loessner, Stefan Kobel, Judith A Clements, Matthias P Lutolf, Dietmar W Hutmacher
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引用次数: 12

摘要

目前的常规细胞培养技术仅不适合捕捉肿瘤微环境的生理复杂性,其中肿瘤细胞功能受到复杂的三维(3D),整合素依赖性细胞-细胞和细胞-细胞外基质(ECM)相互作用的影响。3D细胞培养可以研究癌症相关的蛋白酶,如钾化酶,因为它们会降解ECM蛋白,改变整合素信号,促进恶性细胞行为。在这里,我们采用水凝胶微孔阵列平台,利用高通量模式,通过依赖于不同微孔和聚集体大小的显微镜、定量图像、基因和蛋白质分析,探索确定大小的卵巢癌细胞聚集体是如何形成和存活的,以响应kallikreins的表达和紫杉醇的治疗。紫杉醇治疗增加了表达钾化钾素的癌细胞的聚集形成和存活,以及整合素和整合素相关因子的水平。在紫杉醇作用下,癌细胞聚集体的形成随着聚集体大小的增加而改善,从而减少细胞死亡,提高整合素的表达。因此,水凝胶微孔阵列是一种强大的工具,可以通过蛋白酶表达、整合素参与和抗癌治疗的调节来筛选癌细胞聚集体的活力,为评估恶性进展和耐药性提供了一种微尺度但高通量的技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Hydrogel Microwell Arrays Allow the Assessment of Protease-Associated Enhancement of Cancer Cell Aggregation and Survival.

Hydrogel Microwell Arrays Allow the Assessment of Protease-Associated Enhancement of Cancer Cell Aggregation and Survival.

Hydrogel Microwell Arrays Allow the Assessment of Protease-Associated Enhancement of Cancer Cell Aggregation and Survival.

Hydrogel Microwell Arrays Allow the Assessment of Protease-Associated Enhancement of Cancer Cell Aggregation and Survival.

Current routine cell culture techniques are only poorly suited to capture the physiological complexity of tumor microenvironments, wherein tumor cell function is affected by intricate three-dimensional (3D), integrin-dependent cell-cell and cell-extracellular matrix (ECM) interactions. 3D cell cultures allow the investigation of cancer-associated proteases like kallikreins as they degrade ECM proteins and alter integrin signaling, promoting malignant cell behaviors. Here, we employed a hydrogel microwell array platform to probe using a high-throughput mode how ovarian cancer cell aggregates of defined size form and survive in response to the expression of kallikreins and treatment with paclitaxel, by performing microscopic, quantitative image, gene and protein analyses dependent on the varying microwell and aggregate sizes. Paclitaxel treatment increased aggregate formation and survival of kallikrein-expressing cancer cells and levels of integrins and integrin-related factors. Cancer cell aggregate formation was improved with increasing aggregate size, thereby reducing cell death and enhancing integrin expression upon paclitaxel treatment. Therefore, hydrogel microwell arrays are a powerful tool to screen the viability of cancer cell aggregates upon modulation of protease expression, integrin engagement and anti-cancer treatment providing a micro-scaled yet high-throughput technique to assess malignant progression and drug-resistance.

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来源期刊
自引率
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0
审稿时长
11 weeks
期刊介绍: High-Throughput (formerly Microarrays, ISSN 2076-3905) is a multidisciplinary peer-reviewed scientific journal that provides an advanced forum for the publication of studies reporting high-dimensional approaches and developments in Life Sciences, Chemistry and related fields. Our aim is to encourage scientists to publish their experimental and theoretical results based on high-throughput techniques as well as computational and statistical tools for data analysis and interpretation. The full experimental or methodological details must be provided so that the results can be reproduced. There is no restriction on the length of the papers. High-Throughput invites submissions covering several topics, including, but not limited to: Microarrays, DNA Sequencing, RNA Sequencing, Protein Identification and Quantification, Cell-based Approaches, Omics Technologies, Imaging, Bioinformatics, Computational Biology/Chemistry, Statistics, Integrative Omics, Drug Discovery and Development, Microfluidics, Lab-on-a-chip, Data Mining, Databases, Multiplex Assays.
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