DNA Origami as an In Vivo Drug Delivery Vehicle for Cancer Therapy

DNA折纸 体内 阿霉素 药物输送 纳米技术 生物相容性 DNA 癌症 癌症研究 材料科学 基因传递 化学 医学 遗传增强 纳米结构 生物 化疗 生物化学 基因 内科学 生物技术 冶金
作者
Qian Zhang,Qiao Jiang,Na Li,Luru Dai,Qing Liu,Linlin Song,Jin‐Ye Wang,Yaqian Li,Jie Tian,Baoquan Ding,Yang Du
出处
期刊:ACS Nano [American Chemical Society]
卷期号:8 (7): 6633-6643 被引量:562
标识
DOI:10.1021/nn502058j
摘要

Many chemotherapeutics used for cancer treatments encounter issues during delivery to tumors in vivo and may have high levels of systemic toxicity due to their nonspecific distribution. Various materials have been explored to fabricate nanoparticles as drug carriers to improve delivery efficiency. However, most of these materials suffer from multiple drawbacks, such as limited biocompatibility and inability to engineer spatially addressable surfaces that can be utilized for multifunctional activity. Here, we demonstrate that DNA origami possessed enhanced tumor passive targeting and long-lasting properties at the tumor region. Particularly, the triangle-shaped DNA origami exhibits optimal tumor passive targeting accumulation. The delivery of the known anticancer drug doxorubicin into tumors by self-assembled DNA origami nanostructures was performed, and this approach showed prominent therapeutic efficacy in vivo. The DNA origami carriers were prepared through the self-assembly of M13mp18 phage DNA and hundreds of complementary DNA helper strands; the doxorubicin was subsequently noncovalently intercalated into these nanostructures. After conducting fluorescence imaging and safety evaluation, the doxorubicin-containing DNA origami exhibited remarkable antitumor efficacy without observable systemic toxicity in nude mice bearing orthotopic breast tumors labeled with green fluorescent protein. Our results demonstrated the potential of DNA origami nanostructures as innovative platforms for the efficient and safe drug delivery of cancer therapeutics in vivo.
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