PO.BCS01.09 · 生物信息与计算
在芯片上模拟GBM与血管的相互作用
Modeling GBM-vasculature interaction on chip
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:胶质母细胞瘤(GBM)的肿瘤微环境(TME)高度复杂且动态,在肿瘤进展和治疗耐药中发挥关键作用。异质性TME由包括血管、免疫细胞和血脑屏障在内的多种成分构成,形成对肿瘤行为具有关键塑造作用的不同微环境。近期基于TME的分类将其划分为三种亚型——TMELow、TMEMed和TMEHigh,以不同的血管和免疫细胞组成加以区分。
方法:本研究聚焦于阐明GBM-TME界面内的血管相互作用。为此,我们通过在微流控平台上将原代人脑来源的内皮细胞和基质细胞整合到细胞外基质(ECM)中,构建了一个脑特异性三维血管网络。在建立脑血管网络模型后,纳入GBM细胞系以在三维背景下研究肿瘤-血管相互作用。GBM的整合通过两种不同策略进行:在培养开始时将其与成血管细胞共接种于ECM内,或将肿瘤细胞移植到预先建立的血管床培养物上以促进侵袭实验。
结果:所得的可灌注模型再现了脑血管的关键特征,包括黏附连接标志物CD31和VE-cadherin、紧密连接标志物Claudin-5的表达,以及基质细胞沿血管结构的策略性排列。GBM整合入血管网络模型的初步结果表明,无论采用何种接种方法,GBM细胞均优先定位于血管结构沿线,提示其对血管具有内在的趋向性。值得注意的是,GBM与血管网络的共培养表现出显著高于GBM单培养的增殖和侵袭能力,凸显了血管微环境的促肿瘤作用。
结论:该脑血管网络模型展现出生理相关性、稳健性和可扩展性,使其适用于中到高通量应用。这一多功能平台为在体外功能性地模拟和分层GBM TME亚型提供了独特机会,并有望在肿瘤生态系统的血管和免疫微环境中发现新的治疗靶点。
查看英文原文 English abstract
Background: The tumor microenvironment (TME) of glioblastoma (GBM) is highly complex and dynamic, playing a pivotal role in tumor progression and therapeutic resistance. Comprising diverse components including blood vessels, immune cells, and the blood-brain barrier, the heterogeneous TME forms distinct niches that critically shape tumor behavior. Recent TME-based classification has delineated three subtypes TMELow, TMEMed, and TMEHigh distinguished by varying vascular and immune cell compositions.
Methods: This study focuses on elucidating the vascular interactions within the GBM-TME interface. To achieve this, we developed a brain-specific 3D vascular network by integrating primary human brain-derived endothelial and stromal cells within an extracellular matrix (ECM) on a microfluidic platform. Following the establishment of the brain vascular network model, GBM cell lines were incorporated to examine tumor-vasculature interactions in a 3D context. GBM integration was performed via two distinct strategies: co-seeding with vascular-forming cells within the ECM at the start of culture, or grafting tumor cells onto a pre-established vascular bed culture to facilitate invasion assays.
Results: The resulting perfusable model recapitulates key features of the brain vasculature, including the expression of adherens junction markers CD31 and VE-cadherin, tight junction marker Claudin-5, and the strategic alignment of stromal cells along vascular structures. Preliminary results from the integration of GBM in the vascular network model indicate that, irrespective of the seeding method, GBM cells preferentially localize along vascular structures, suggesting an intrinsic tropism toward the vasculature. Notably, co-cultures of GBM with vascular networks exhibited significantly higher proliferative and invasive capacity compared to GBM monocultures, highlighting the pro-tumorigenic influence of the vascular microenvironment.
Conclusion: The brain vascular network model demonstrates physiological relevance, robustness, and scalability making it suitable for medium- to high-throughput applications. This multifaceted platform offers a unique opportunity to functionally model and stratify GBM TME subtypes in vitro, with the potential to uncover novel therapeutic targets within the vascular and immune niches of the tumor ecosystem.
利益披露 Disclosure
P. Emeh,
MIMETAS B.V ).
A. Fetah,
MIMETAS B.V Internship.
J. Admiraal,
MIMETAS B.V Employment.
M. Bokkers,
MIMETAS B.V Employment.
K. Jimenez-Cowell, None.
W. Allen,
MIMETAS B.V Employment.
N. Wevers,
MIMETAS B.V Employment.
C. M. Dirven, None.
T. Burton,
MIMETAS B.V Employment.
K. Queiroz,
MIMETAS B.V Employment.