A niche-mimicking polymer hydrogel-based approach to identify molecular targets for tackling human pancreatic cancer stem cells.

Yoshitaka Murota, Mariko Nagane, Mei Wu, Mithun Santra, Seshasailam Venkateswaran, Shinji Tanaka, Mark Bradley, Tetsuya Taga, Kouichi Tabu
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引用次数: 0

Abstract

Background: Pancreatic adenocarcinoma (PAAD) is one of the most fatal human cancers, but effective therapies remain to be established. Cancer stem cells (CSCs) are highly resistant to anti-cancer drugs and a deeper understanding of their microenvironmental niche has been considered important to provide understanding and solutions to cancer eradication. However, as the CSC niche is composed of a wide variety of biological and physicochemical factors, the development of multidisciplinary tools that recapitulate their complex features is indispensable. Synthetic polymers have been studied as attractive biomaterials due to their tunable biofunctionalities, while hydrogelation technique further renders upon them a diversity of physical properties, making them an attractive tool for analysis of the CSC niche.

Methods: To develop innovative materials that recapitulate the CSC niche in pancreatic cancers, we performed polymer microarray analysis to identify niche-mimicking scaffolds that preferentially supported the growth of CSCs. The niche-mimicking activity of the identified polymers was further optimized by polyethylene glycol (PEG)-based hydrogelation. To reveal the biological mechanisms behind the activity of the optimized hydrogels towards CSCs, proteins binding onto the hydrogel were analyzed by liquid chromatography with tandem mass spectrometry (LC-MS/MS), and the potential therapeutic targets were validated by looking at gene expression and patients' outcome in the TCGA database.

Results: PA531, a heteropolymer composed of 2-methoxyethyl methacrylate (MEMA) and 2-(diethylamino)ethyl methacrylate (DEAEMA) (5.5:4.5) that specifically supports the growth and maintenance of CSCs was identified by polymer microarray screening using the human PAAD cell line KLM1. The polymer PA531 was converted into five hydrogels (PA531-HG1 to HG5) and developed to give an optimized scaffold with the highest CSC niche-mimicking activities. From this polymer that recapitulated CSC binding and control, the proteins fetuin-B and angiotensinogen were identified as candidate target molecules with clinical significance due to the correlation between gene expression levels and prognosis in PAAD patients and the proteins associated with the niche-mimicking polymer.

Conclusion: This study screened for biofunctional polymers suitable for recapitulation of the pancreatic CSC niche and one hydrogel with high niche-mimicking abilities was successfully fabricated. Two soluble factors with clinical significance were identified as potential candidates for biomarkers and therapeutic targets in pancreatic cancers. Such a biomaterial-based approach could be a new platform in drug discovery and therapy development against CSCs, via targeting of their niche.

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一种基于镍亚胺聚合物水凝胶的方法,用于识别对付人类胰腺癌症干细胞的分子靶点。
背景:胰腺癌(PAAD)是人类最致命的癌症之一,但有效的治疗方法仍有待建立。癌症干细胞(CSCs)对抗癌药物具有高度耐药性,对其微环境生态位的深入了解被认为对于提供对癌症根除的理解和解决方案至关重要。然而,由于CSC生态位由各种各样的生物和物理化学因素组成,开发概括其复杂特征的多学科工具是必不可少的。合成聚合物由于其可调的生物功能而被研究为有吸引力的生物材料,而水凝胶技术进一步赋予了它们多样的物理性质,使其成为分析CSC生态位的有吸引力的工具。方法:为了开发能够概括胰腺癌CSC小生境的创新材料,我们进行了聚合物微阵列分析,以确定优先支持CSC生长的小生境模拟支架。通过聚乙二醇(PEG)基水凝胶进一步优化了所鉴定聚合物的生态位模拟活性。为了揭示优化的水凝胶对CSCs活性背后的生物学机制,通过液相色谱-串联质谱法(LC-MS/MS)分析了与水凝胶结合的蛋白质,并通过查看TCGA数据库中的基因表达和患者结果来验证潜在的治疗靶点。结果:使用人PAAD细胞系KLM1,通过聚合物微阵列筛选,鉴定了一种由甲基丙烯酸2-甲氧基乙酯(MEMA)和甲基丙烯酸2-(二乙氨基)乙酯(DEAEMA)(5.5:4.5)组成的异聚物PA531,该异聚物特异性支持CSCs的生长和维持。将聚合物PA531转化为五种水凝胶(PA531-HG1至HG5),并开发出具有最高CSC小生境模拟活性的优化支架。从这种概括CSC结合和控制的聚合物中,由于PAAD患者的基因表达水平和预后之间的相关性,以及与模拟生态位的聚合物相关的蛋白质,蛋白胎蛋白-B和血管紧张素原被鉴定为具有临床意义的候选靶分子。结论:本研究筛选了适用于重现胰腺CSC生态位的生物功能聚合物,并成功制备了一种具有高生态位模拟能力的水凝胶。两种具有临床意义的可溶性因子被确定为胰腺癌生物标志物和治疗靶点的潜在候选者。这种基于生物材料的方法可以通过靶向CSC的小生境,成为针对CSC的药物发现和治疗开发的新平台。
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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