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Pegylated magnetic mesoporous silica nanoparticles decorated with AS1411 Aptamer as a targeting delivery system for cytotoxic agents

机译:用AS1411 Aptamer装饰的Pegymated磁性介孔二氧化硅纳米粒子作为细胞毒性剂的靶向输送系统

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Fulfilling the purpose of developing a NP with theragnostic capabilities, the current study describes the synthesis of an aptamer-functionalized PEG-coated SPION/mesoporous silica core-shell nanoparticle for concurrent cancer targeted therapy and magnetic resonance imaging. SPIONs were synthesized according to a thermal decomposition method and served as cores for SPION/mesoporous silica core/shell nanoparticles (MMSNs). Doxorubicin was then successfully loaded in MMSNs which were then coated with di-carboxylic acid functionalized polyethylene glycol (PEG-MMSNs). AS1411 aptamers were at the end covalently attached to NPs (APT-PEG-MMSNs). The mean diameter of synthesized NPs was about 89 nm and doxorubicin encapsulation efficacy was approximate to 67.47%. Results of MTT based cell cytotoxicity assay demonstrated a significantly higher toxicity profile for APT-PEG-MMSNs against MCF7 cells compared to non-decorated MMSNs, while no significant differences were spotted against NIH-3T3 cells. Meanwhile, formation of protein corona around APT-PEG-MMSNs in biological medium significantly attenuated observed cytotoxicity against MCF7 cell line. Examining NPs uptake by MCF7 cells using confocal laser scanning microscopy also confirmed superiority of APT-PEG-MMSNs over PEG-MMSNs. Finally, APT decorated NPs induced highest signal intensity reduction in T-2-weighted images during in vitro MRI assay. In conclusion, developed NPs may serve as promising multifunctional vehicles for simultaneous cancer targeted therapy and MRI imaging.
机译:本研究描述了开发NP的目的,目前的研究描述了用于同时癌症靶向治疗和磁共振成像的适体官能化PEG涂覆的SPION /介孔二氧化硅核 - 壳纳米粒子的合成。根据热分解方法合成酱,并用作SpiON /中孔二氧化硅核/壳纳米粒子(MMSN)的芯。然后在MMSN中成功地装载了多柔比星,然后用二羧酸官能化聚乙二醇(PEG-MMSN)涂覆。 As1411适体在共价附在NPS(APT-PEG-MMSN)的末端。合成NPS的平均直径约为89nm,多柔比蛋白包封效应近似为67.47%。与非装饰MMSN相比,MTT基细胞细胞毒性测定的结果对MCF7细胞的APT-PEG-MMSNS对MCF7细胞显着更高的毒性曲线,而对NIH-3T3细胞没有显着差异。同时,在生物培养基中围绕APT-PEG-MMSN的形成蛋白质电晕显着减弱了针对MCF7细胞系的观察到的细胞毒性。使用共聚焦激光扫描显微镜检查MCF7细胞的NPS摄取还确认了PEG-MMSN上的APT-PEG-MMSN的优越性。最后,在体外MRI测定期间,APT装饰NPS在T-2加权图像中引起的最高信号强度降低。总之,开发的NPS可以作为同时癌症靶向治疗和MRI成像的有前途的多功能车辆。

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