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Bi-functional oxidized dextran–based hydrogel inducing microtumors: An in vitro three-dimensional lung tumor model for drug toxicity assays

机译:双官能氧化葡聚糖基水凝胶诱导微量胶质剂:药物毒性测定的体外三维肺肿瘤模型

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摘要

Cancer is a serious death causing disease having 8.2 million deaths in 2012. In the last decade, only about 10% of chemotherapeutic compounds showed productivity in drug screening. Two-dimensional culture assays are the most common in vitro drug screening models, which do not precisely model the in vivo condition for reliable preclinical drug screening. Three-dimensional scaffold–based cell cultures perhaps mimic tumor microenvironment and recapitulate physiologically more relevant tumor. This study was carried out to develop bi-functional oxidized dextran–based cell instructive hydrogel that provides three-dimensional environment to cancer cells for inducing microtumor. Oxidized dextran was blended with thiolated chitosan to fabricate an in situ self-gelable hydrogel (modified dextran–chitosan) in a one-step process. The hydrogels characterization revealed cross-linked network structure with highly porous structure and water absorption. The modified dextran–chitosan hydrogel showed reduced hydrophobicity and has reduced protein absorption, which resulted in changing the A549 cell adhesiveness, and encouraged them to form microtumor. The cells were proliferated in clusters having spherical morphology with randomly oriented stress fiber and large nucleus. Further microtumors were studied for hypoxia where reactive oxygen species generation demonstrated 15-fold increase as compared to monolayer culture. Drug-sensitivity results showed that microtumors generated on modified dextran–chitosan hydrogel showed resistance to doxorubicin with having 33%–58% increased growth than two-dimensional monolayer model at concentrations of 25–100 µM. In summary, the modified dextran–chitosan scaffold can provide surface chemistry that induces three-dimensional microtumors with physiologically relevant properties to in vivo tumor including growth, morphology, extracellular matrix production, hypoxic phenotype, and drug response. This model can be potentially utilized for drug toxicity studies and cancer disease modeling to understand tumor phenotype and progression.
机译:癌症是2012年患有820万人死亡的严重死亡。在过去十年中,只有约10%的化学治疗化合物在药物筛查中表现出生产力。二维培养测定是最常见的体外药物筛选模型,这对可靠的临床前药物筛选不准确地模拟体内病症。基于三维支架的细胞培养物可能是模拟肿瘤微环境,并概括生理学上更相关的肿瘤。该研究进行了开发双官能氧化葡聚糖的细胞有效性水凝胶,其为癌细胞提供三维环境,用于诱导微量机器。将氧化的葡聚糖与硫醇化壳聚糖混合,以在一步法中制造原位自胶凝水凝胶(改性葡聚糖 - 壳聚糖)。水凝胶表征揭示了具有高孔结构和吸水性的交联网络结构。改性的葡聚糖 - 壳聚糖水凝胶显示出降低的疏水性,并且具有降低的蛋白质吸收,导致A549细胞粘合性改变,并鼓励它们形成MicroTumor。在具有随机取向的应激纤维和大核的球形形态的簇中增殖细胞。研究了另外的乳清剂,用于缺氧,与单层培养相比,反应性氧物种的产生15倍。药物敏感性结果表明,在改性的葡聚糖 - 壳聚糖水凝胶上产生的微型剂显示出对多柔比星的抗性,其具有比在25-100μm的浓度的二维单层模型增加的33%-58%。总之,改性的葡聚糖 - 壳聚糖支架可以提供表面化学,该表面化学诱导三维微观,在体内肿瘤中具有生理相关性质,包括生长,形态,细胞外基质生产,缺氧表型和药物反应。该模型可用于药物毒性研究和癌症疾病建模以了解肿瘤表型和进展。

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