基于仿生微流控装置的肿瘤细胞与巨噬细胞相互作用研究。

IF 2.5 3区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
ELECTROPHORESIS Pub Date : 2025-08-28 DOI:10.1002/elps.70020
Shuxuan Jin, Qian Wu, Shiqi Chang, Shaojiang Zeng, Jiqiu Yin, Huipeng Ma
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引用次数: 0

摘要

肿瘤-巨噬细胞相互作用在多种生理和病理过程中发挥关键作用,如血管生成、免疫抑制和细胞外基质重塑。本研究开发了一种仿生微流控芯片,通过胶质瘤细胞和巨噬细胞在三维(3D)基质中共培养来模拟胶质瘤的免疫微环境。胶质瘤细胞在微孔阵列芯片中形成球体后,包埋在I型胶原溶液中,随后与巨噬细胞在不同通道共培养。该芯片能够实时监测巨噬细胞的形态变化、胶质瘤细胞球体的侵袭以及不同细胞类型之间的分子相互作用。两种不同的细胞类型可以在原位提取和分离,用于随后的分子生物学检测,如Western blotting或qPCR。结果表明,在巨噬细胞的存在下,胶质瘤细胞球体明显增强侵袭性。此外,在肿瘤细胞的影响下,巨噬细胞的表型从M0转变为M2(肿瘤支持型)。这一相互作用的分子机制得到了广泛的探讨。认为该三维微流控肿瘤模型可作为研究胶质瘤微环境生物学特性的有用工具。此外,可以更全面地了解胶质瘤转移的机制,特别是肿瘤炎症细胞,包括肿瘤相关巨噬细胞(TAM)如何影响侵袭过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of the Reciprocal Interaction Between Tumor Cells and Macrophages Based on the Biomimic Microfluidic Device.

Tumor-macrophage interactions play a key role in various physiological and pathological processes, such as angiogenesis, immune suppression, and extracellular matrix remodeling. In this study, a biomimetic microfluidic chip was developed to simulate the immune microenvironment of glioma through the co-culture of glioma cells and macrophages in a three-dimensional (3D) matrix. Glioma cells were embedded in collagen I solution after forming spheroids in the microwell array chip and subsequently co-cultured with macrophages in different channels. This chip enabled the real-time monitoring of morphological changes in macrophages, the invasion of glioma cell spheroids, and molecular interactions between different cell types. Two distinct cell types could be extracted and isolated in situ for subsequent molecular biological detection, such as Western blotting or qPCR. The results demonstrated that glioma cell spheroids significantly enhanced invasiveness in the presence of macrophages. Moreover, the phenotype of macrophages altered from M0 to M2 (tumor-supportive) under the influence of tumor cells. The molecular mechanism mediating this reciprocal process was extensively explored. It is believed that this 3D microfluidic tumor model could serve as a useful tool for studying the biological properties of the glioma microenvironment. In addition, a more comprehensive understanding of the mechanisms involved in glioma metastasis could be obtained, especially of how tumor inflammatory cells, including tumor-associated macrophages (TAM), affect invasion process.

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来源期刊
ELECTROPHORESIS
ELECTROPHORESIS 生物-分析化学
CiteScore
6.30
自引率
13.80%
发文量
244
审稿时长
1.9 months
期刊介绍: ELECTROPHORESIS is an international journal that publishes original manuscripts on all aspects of electrophoresis, and liquid phase separations (e.g., HPLC, micro- and nano-LC, UHPLC, micro- and nano-fluidics, liquid-phase micro-extractions, etc.). Topics include new or improved analytical and preparative methods, sample preparation, development of theory, and innovative applications of electrophoretic and liquid phase separations methods in the study of nucleic acids, proteins, carbohydrates natural products, pharmaceuticals, food analysis, environmental species and other compounds of importance to the life sciences. Papers in the areas of microfluidics and proteomics, which are not limited to electrophoresis-based methods, will also be accepted for publication. Contributions focused on hyphenated and omics techniques are also of interest. Proteomics is within the scope, if related to its fundamentals and new technical approaches. Proteomics applications are only considered in particular cases. Papers describing the application of standard electrophoretic methods will not be considered. Papers on nanoanalysis intended for publication in ELECTROPHORESIS should focus on one or more of the following topics: • Nanoscale electrokinetics and phenomena related to electric double layer and/or confinement in nano-sized geometry • Single cell and subcellular analysis • Nanosensors and ultrasensitive detection aspects (e.g., involving quantum dots, "nanoelectrodes" or nanospray MS) • Nanoscale/nanopore DNA sequencing (next generation sequencing) • Micro- and nanoscale sample preparation • Nanoparticles and cells analyses by dielectrophoresis • Separation-based analysis using nanoparticles, nanotubes and nanowires.
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