首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >PEG-b-AGE polymer coated magnetic nanoparticle probes with facile functionalization and anti-fouling properties for reducing non-specific uptake and improving biomarker targeting
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PEG-b-AGE polymer coated magnetic nanoparticle probes with facile functionalization and anti-fouling properties for reducing non-specific uptake and improving biomarker targeting

机译:PEG-B级聚合物涂覆磁性纳米颗粒探针,具有体内官能化和防污性能,用于减少非特异性摄取和改善生物标志物靶向

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Non-specific surface adsorption of bio-macromolecules (e.g. proteins) on nanoparticles, known as biofouling, and the uptake of nanoparticles by the mononuclear phagocyte system (MPS) and reticuloendothelial system (RES) lead to substantial reduction in the efficiency of target-directed imaging and delivery in biomedical applications of engineered nanomaterials in vitro and in vivo. In this work, a novel copolymer consisting of blocks of poly ethylene glycol and allyl glycidyl ether (PEG-b-AGE) was developed for coating magnetic iron oxide nanoparticles (IONPs) to reduce non-specific protein adhesion that leads to formation of 'protein corona' and uptake by macrophages. The facile surface functionalization was demonstrated by using targeting ligands of a small peptide of RGD or a whole protein of transferrin (Tf). The PEG-b-AGE coated lONPs exhibited anti-biofouling properties with significantly reduced protein corona formation and nonspecific uptake by macrophages before and after the surface functionalization, thus improving targeting of RGD-conjugated PEG-b-AGE coated IONPs to integrins in U87MG glioblastoma and MDA-MB-231 breast cancer cells that overexpress α_vβ3 integrins, and Tf-conjugated PEG-b-AGE coated IONPs to transferrin receptor (TfR) in D556 and Daoy medulloblastoma cancer cells with high overexpression of transferrin receptor, compared to respective control cell lines. Magnetic resonance imaging (MRI) of cancer cells treated with targeted IONPs with or without anti-biofouling PEG-b-AGE coating polymers demonstrated the target specific MRI contrast change using anti-biofouling PEG-b-AGE coated IONP with minimal off-targeted background compared to the IONPs without anti-biofouling coating, promising the highly efficient active targeting of nanoparticle imaging probes and drug delivery systems and potential applications of imaging quantification of targeted biomarkers.
机译:在纳米颗粒上的非特异性表面吸附生物 - 大分子(例如蛋白质),称为生物污垢和单核吞噬细胞系统(MPS)和纳米颗粒的摄取和纳米颗粒的摄取导致目标导向的效率显着降低体外和体内工程纳米材料的生物医学应用成像和交付。在这项工作中,开发了一种新的共聚物,由聚乙二醇和烯丙基缩水甘油醚(PEG-B-yse)组成的共聚物用于涂覆磁性氧化铁纳米粒子(IONP)以减少导致形成'蛋白质的非特异性蛋白质粘附Corona'和巨噬细胞吸收。通过使用RGD的小肽的靶向配体或转铁蛋白(TF)的整个蛋白质的靶向配体来证明外表官能化。 PEG-B型涂覆LONPS在表面官能化之前和之后显着降低了蛋白质电晕形成和非特异性的蛋白质电晕地层和非特异性摄取,从而改善了RGD缀合的PEG-B次涂覆的IONP的靶向U87MG胶质母细胞瘤的整合蛋白与相应的对照细胞相比,将α_Vβ3整合蛋白和TF缀合的PEG-B次涂覆的IONP和TF缀合的PEG-B次涂覆的INIOP和Daoy Medulloblastoms瘤癌细胞中的转移素受体(TFR)的乳腺癌细胞染色体线条。用靶向IONPS处理的癌细胞的磁共振成像(MRI)具有或不具有抗生物磁性PEG-B龄涂层聚合物的靶特异性MRI对比变化,使用抗生物磁性PEG-B型涂层IONP具有最小的偏离目标背景与无抗生物污垢涂层的IONP相比,承诺高效的纳米粒子成像探针和药物递送系统的活性靶向以及靶向生物标志物的成像定量的潜在应用。

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