Tumor spheroid-based and microtumor-based vascularized models for replicating the vascularized tumor microenvironment

Jiyoung Song, Jihoon Ko, Nakwon Choi, N. Jeon, Hongnam Kim
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Abstract

BackgroundTumor vasculature is a crucial pathway for supplying nutrients and oxygen to tumors during their progression, as well as facilitating the delivery of anticancer drugs or immunotherapeutic agents. Microfluidic technology has emerged as a powerful tool in creating microenvironments within 3D cell cultures that more closely resemble in vivo conditions, by enabling precise control of fluid flow. As a result, microfluidic devices have made significant progress in replicating both the structural and functional characteristics of the tumor microenvironment in vitro. Methods and ResultsIn this study, we present two approaches for reconstructing the tumor vasculature using tumor spheroids or microtumors, with a particular focus on in vivo functional mimicry and experimental reproducibility. Tumor spheroid-based vascular models provide an observatory window into tumor vasculature centered on tumor spheroids, enabling quantitative measurement of the degree of abnormality of blood vessels developing around the tumor spheroid and the invasiveness of metastatic tumors. Microtumor-based vascular models, on the other hand, have the potential to enhance our comprehension of advanced and metastatic cancers at the single-cell level by elucidating the proliferative and metastatic capacities of tumor cells, as well as the vascular permeability that is contingent upon the subtypes of tumor cells. ConclusionOur platforms provide valuable insights into the development of novel in vitro models for studying the tumor microenvironment and advancing our understanding of cancer biology.
基于肿瘤球体和微肿瘤的血管化模型用于复制血管化肿瘤微环境
肿瘤血管是肿瘤发展过程中向肿瘤提供营养和氧气的重要途径,也是促进抗癌药物或免疫治疗药物传递的重要途径。微流体技术已经成为一种强大的工具,通过精确控制流体流动,在3D细胞培养中创建更接近于体内条件的微环境。因此,微流控装置在体外复制肿瘤微环境的结构和功能特征方面取得了重大进展。方法和结果在本研究中,我们提出了两种利用肿瘤球体或微肿瘤重建肿瘤血管系统的方法,特别关注体内功能模仿和实验可重复性。基于肿瘤球体的血管模型为以肿瘤球体为中心的肿瘤血管系统提供了一个观察窗口,可以定量测量肿瘤球体周围血管发育的异常程度和转移性肿瘤的侵袭性。另一方面,基于微肿瘤的血管模型有可能通过阐明肿瘤细胞的增殖和转移能力,以及取决于肿瘤细胞亚型的血管通透性,在单细胞水平上增强我们对晚期和转移性癌症的理解。我们的平台为研究肿瘤微环境的新型体外模型的发展提供了宝贵的见解,并促进了我们对癌症生物学的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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