脂肪促进三阴性乳腺癌三维微流控肿瘤模型的生长和侵袭。

IF 4.1 3区 医学 Q1 ENGINEERING, BIOMEDICAL
APL Bioengineering Pub Date : 2026-03-03 eCollection Date: 2026-03-01 DOI:10.1063/5.0291646
Maryam Kohram, Carolina Trenado-Yuste, Molly C Brennan-Smith, Evelyn S Navarro Salazar, Pengfei Zhang, Jasmine E Hao, Xincheng Xu, Bharvi Chavre, William Oh, Sherry X Zhang, Susan E Leggett, Rolf-Peter Ryseck, Joshua D Rabinowitz, Celeste M Nelson
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引用次数: 0

摘要

饮食影响血浆和间质液中循环的小分子水平,改变肿瘤微环境(TME)的生化组成。这些循环营养物质与肿瘤的生长和对治疗的反应有关,但分析它们对癌细胞的直接影响仍然很困难。在这里,我们将三维(3D)微流控肿瘤模型与生理学相关的培养基结合起来,研究循环营养物质浓度如何影响肿瘤生长、癌细胞侵袭和整体肿瘤代谢。在模拟五种不同饮食状态的培养基条件下,在二维培养基中培养的人三阴性乳腺癌细胞在增殖或形态上没有明显差异。然而,那些暴露于高脂肪环境的人表现出增加的代谢活动和上调与运动和细胞外基质重塑相关的基因。在三维微流控模型中,高脂肪条件加速肿瘤的生长和侵袭,并诱导空洞的形成。令人惊讶的是,这些空腔的存在与细胞凋亡或铁下垂的增加无关。相反,rna测序分析显示,高脂肪条件会诱导MMP1的表达,这与通过细胞侵袭产生的空化一致。因此,模拟TME内营养物质的间质流动可以用来识别代谢状态和肿瘤表型之间的新联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fat promotes growth and invasion in a 3D microfluidic tumor model of triple-negative breast cancer.

Fat promotes growth and invasion in a 3D microfluidic tumor model of triple-negative breast cancer.

Fat promotes growth and invasion in a 3D microfluidic tumor model of triple-negative breast cancer.

Fat promotes growth and invasion in a 3D microfluidic tumor model of triple-negative breast cancer.

Diet influences the levels of small molecules that circulate in plasma and interstitial fluid, altering the biochemical composition of the tumor microenvironment (TME). These circulating nutrients have been associated with how tumors grow and respond to treatment, but it remains difficult to parse their direct effects on cancer cells. Here, we combine a three-dimensional (3D) microfluidic tumor model with physiologically relevant culture media to investigate how concentrations of circulating nutrients influence tumor growth, cancer cell invasion, and overall tumor metabolism. Human triple-negative breast cancer cells cultured in 2D under media conditions mimicking five different dietary states show no observable differences in proliferation or morphology. Nonetheless, those exposed to high-fat conditions exhibit increased metabolic activity and upregulate genes associated with motility and extracellular matrix remodeling. In the 3D microfluidic model, high-fat conditions accelerate tumor growth and invasion and induce the formation of hollow cavities. Surprisingly, the presence of these cavities does not correlate with an increase in apoptosis or ferroptosis. Instead, RNA-sequencing analysis revealed that high-fat conditions induce the expression of MMP1, consistent with cavitation via cell invasion. Mimicking the interstitial flow of nutrients within the TME can thus be used to identify novel connections between metabolic states and tumor phenotype.

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来源期刊
APL Bioengineering
APL Bioengineering ENGINEERING, BIOMEDICAL-
CiteScore
9.30
自引率
6.70%
发文量
39
审稿时长
19 weeks
期刊介绍: APL Bioengineering is devoted to research at the intersection of biology, physics, and engineering. The journal publishes high-impact manuscripts specific to the understanding and advancement of physics and engineering of biological systems. APL Bioengineering is the new home for the bioengineering and biomedical research communities. APL Bioengineering publishes original research articles, reviews, and perspectives. Topical coverage includes: -Biofabrication and Bioprinting -Biomedical Materials, Sensors, and Imaging -Engineered Living Systems -Cell and Tissue Engineering -Regenerative Medicine -Molecular, Cell, and Tissue Biomechanics -Systems Biology and Computational Biology
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