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3D Systems公司将对肿瘤血管生成以及与基质细胞的相互作用进行建模。

3D Systems to Model Tumor Angiogenesis and Interactions With Stromal Cells.

作者信息

Brassard-Jollive Noémie, Monnot Catherine, Muller Laurent, Germain Stéphane

机构信息

Center for Interdisciplinary Research in Biology, College de France, CNRS UMR 7241, INSERM U1050, PSL Research University, Paris, France.

Sorbonne Université, Collège Doctoral, Paris, France.

出版信息

Front Cell Dev Biol. 2020 Nov 5;8:594903. doi: 10.3389/fcell.2020.594903. eCollection 2020.

Abstract

3D culture systems provide promising tools for screening novel therapies and understanding drug resistance mechanisms in cancer because they are adapted for high throughput analysis. One of the main current challenges is to reproducibly culture patient samples containing cancer and stromal cells to faithfully recapitulate tumor microenvironment and move toward efficient personalized medicine. Tumors are composed of heterogeneous cell populations and characterized by chaotic vascularization in a remodeled microenvironment. Indeed, tumor angiogenesis occurs in a complex stroma containing immune cells and cancer-associated fibroblasts that secrete important amounts of cytokines, growth factors, extracellular vesicles, and extracellular matrix (ECM). This process leads to the formation of inflated, tortuous, and permeable capillaries that display deficient basement membrane (BM) and perivascular coverage. These abnormal capillaries affect responses to anti-cancer therapies such as anti-angiogenic, radio-, and immunotherapies. Current pre-clinical models are limited for investigating interactions between tumor cells and vascularization during tumor progression as well as mechanisms that lead to drug resistance. approaches developed for vascularization are either the result of engineered cell lining or based on physiological processes including vasculogenesis and sprouting angiogenesis. They allow investigation of paracrine and direct interactions between endothelial and tumor and/or stromal cells, as well as impact of biochemical and biophysical cues of the microenvironment, using either natural matrix components or functionalized synthetic hydrogels. In addition, microfluidic devices provide access to modeling the impact of shear stress and interstitial flow and growth factor gradients. In this review, we will describe the state of the art co-culture models of vascularized micro-tumors in order to study tumor progression and metastatic dissemination including intravasation and/or extravasation processes.

摘要

3D培养系统为筛选新型疗法和理解癌症耐药机制提供了有前景的工具,因为它们适用于高通量分析。当前的主要挑战之一是可重复地培养包含癌细胞和基质细胞的患者样本,以忠实地重现肿瘤微环境并迈向高效的个性化医疗。肿瘤由异质性细胞群体组成,其特征是在重塑的微环境中血管生成紊乱。实际上,肿瘤血管生成发生在一个复杂的基质中,该基质包含免疫细胞和癌症相关成纤维细胞,它们分泌大量的细胞因子、生长因子、细胞外囊泡和细胞外基质(ECM)。这个过程导致形成膨胀、曲折且可渗透的毛细血管,这些毛细血管显示出基底膜(BM)和血管周围覆盖不足。这些异常毛细血管会影响对抗癌疗法的反应,如抗血管生成、放射和免疫疗法。当前的临床前模型在研究肿瘤进展过程中肿瘤细胞与血管生成之间的相互作用以及导致耐药的机制方面存在局限性。为血管生成开发的方法要么是工程化细胞内衬的结果,要么基于包括血管发生和芽生血管生成在内的生理过程。它们允许使用天然基质成分或功能化合成水凝胶来研究内皮细胞与肿瘤和/或基质细胞之间的旁分泌和直接相互作用,以及微环境的生化和生物物理线索的影响。此外,微流控装置提供了模拟剪切应力、间质流和生长因子梯度影响的途径。在这篇综述中,我们将描述血管化微肿瘤的最新共培养模型,以研究肿瘤进展和转移扩散,包括内渗和/或外渗过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/18a6/7674638/f92413a28296/fcell-08-594903-g001.jpg

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