Modeling Physiologic Microenvironments in Three-Dimensional Microtumors Maintains Brain Tumor Initiating Cells.

Journal of cancer stem cell research Pub Date : 2017-01-01 Epub Date: 2017-07-13 DOI:10.14343/JCSCR.2017.5e1004
Ashley N Gilbert, Kiera Walker, Anh Nhat Tran, Nathaniel H Boyd, G Yancey Gillespie, Raj K Singh, Anita B Hjelmeland
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Abstract

Development of effective novel anti-tumor treatments will require improved in vitro models that incorporate physiologic microenvironments and maintain intratumoral heterogeneity, including tumor initiating cells. Brain tumor initiating cells (BTIC) are a target for cancer therapy, because BTICs are highly tumorigenic and contribute to tumor angiogenesis, invasion, and therapeutic resistance. Current leading studies rely on BTIC isolation from patient-derived xenografts followed by propagation as neurospheres. As this process is expensive and time-consuming, we determined whether three-dimensional microtumors were an alternative in vitro method for modeling tumor growth via BITC maintenance and/or enrichment. Brain tumor cells were grown as neurospheres or as microtumors produced using the human-derived biomatrix HuBiogel™ and maintained with physiologically relevant microenvironments. BITC percentages were determined using cell surface marker expression, label retention, and neurosphere formation capacity. Our data demonstrate that expansion of brain tumor cells as hypoxic and nutrient-restricted microtumors significantly increased the percentage of both CD133+ and CFSEhigh cells. We further demonstrate that BTIC-marker positive cells isolated from microtumors maintained neurosphere formation capacity in the in vitro limiting dilution assay and tumorigenic potential in vivo. These data demonstrate that microtumors can be a useful three-dimensional biological model for the study of BTIC maintenance and targeting.

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三维微瘤中的生理微环境建模可维持脑肿瘤始发细胞
开发有效的新型抗肿瘤治疗方法需要改进体外模型,以结合生理微环境并保持瘤内异质性,包括肿瘤始发细胞。脑肿瘤始基细胞(BTIC)是癌症治疗的一个靶点,因为脑肿瘤始基细胞具有很强的致瘤性,能促进肿瘤血管生成、侵袭和耐药性。目前的主要研究依赖于从患者来源的异种移植物中分离出 BTIC,然后作为神经球进行繁殖。由于这一过程既昂贵又耗时,我们确定了三维微瘤是否是通过维持和/或富集 BITC 来模拟肿瘤生长的另一种体外方法。脑肿瘤细胞以神经球或使用人源生物基质 HuBiogel™ 制成的微瘤的形式生长,并在生理相关的微环境中维持。利用细胞表面标记物表达、标签保留和神经球形成能力确定 BITC 百分比。我们的数据表明,将脑肿瘤细胞扩增为缺氧和营养受限的微瘤可显著提高 CD133+ 和 CFSEhigh 细胞的比例。我们进一步证明,从微肿瘤中分离出的 BTIC 标记阳性细胞在体外极限稀释试验中保持了神经球形成能力,在体内也保持了致瘤潜能。这些数据表明,微瘤是研究 BTIC 维护和靶向的有用三维生物模型。
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