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首页> 外文期刊>Journal of biomedical materials research, Part A >Nucleic acid biohybrid nanocarriers with high-therapeutic payload and controllable extended release of daunomycin for cancer therapy
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Nucleic acid biohybrid nanocarriers with high-therapeutic payload and controllable extended release of daunomycin for cancer therapy

机译:核酸生物喂养纳米载体,具有高治疗性有效载荷和可控扩展的Daunomycin用于癌症治疗

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摘要

We have developed a novel, nanosized drug carrier with high-therapeutic payload, controllable release, and the potential for active tumor targeting. It consists of a 15 nm gold nanoparticle with dense surface loading of DNA duplexes. We utilize the natural intercalating behavior of daunomycin to load the drug between DNA base pairs. We obtained a high-therapeutic payload of >1,000 drug molecules per gold nanoparticle (AuNP), one of the highest loadings reported in literature to date. We have engineered unique DNA sequences to control release of daunomycin for over 48 hr and show higher cell death compared to equivalent concentrations of free daunomycin. We have also explored cell internalization mechanisms to identify the pathways by which our gold nanoparticles enter the cell. This nanocarrier is in the ideal size range of 16-100 nm in diameter to utilize the enhanced permeability and retention effect for passive targeting to tumors. Our AuNP platform is effective as a therapeutic drug delivery device and can easily incorporate any aptamer of choice through complementary base pairing. Our work has produced an innovative nanoscale drug-delivery platform potentially leading to personalized cancer therapies through careful selection of aptamers and an adjustable drug release profile.
机译:我们已经开发了一种新型的纳米药物载体,具有高治疗有效载荷、可控释放和潜在的主动肿瘤靶向性。它由一个15nm的金纳米颗粒组成,表面有密集的DNA双链体。我们利用柔红霉素的天然插层行为在DNA碱基对之间装载药物。我们获得了每粒金纳米颗粒(AuNP)超过1000个药物分子的高治疗有效载荷,这是迄今为止文献报道的最高载荷之一。我们设计了独特的DNA序列,以控制柔红霉素的释放超过48小时,并显示出比同等浓度的游离柔红霉素更高的细胞死亡。我们还探索了细胞内化机制,以确定我们的金纳米颗粒进入细胞的途径。这种纳米载体的理想尺寸范围为直径16-100nm,可利用增强的渗透性和保留效应被动靶向肿瘤。我们的AuNP平台是一种有效的治疗性药物递送装置,可以通过互补碱基配对轻松整合任何选择的适体。我们的工作产生了一个创新的纳米级药物递送平台,通过仔细选择适体和可调节的药物释放曲线,有可能实现个性化的癌症治疗。

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