Beijing Key Laboratory of Function Materials for Molecule and Structure Construction, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing, 100083, P. R. China.
Harvard John A. Paulson School of Engineering and Applied Science, Harvard University, Cambridge, MA, 02138, USA.
Adv Healthc Mater. 2017 Oct;6(20). doi: 10.1002/adhm.201700664. Epub 2017 Sep 22.
DNA origami is designed by folding DNA strands at the nanoscale with arbitrary control. Due to its inherent biological nature, DNA origami is used in drug delivery for enhancement of synergism and multidrug resistance inhibition, cancer diagnosis, and many other biomedical applications, where it shows great potential. However, the inherent instability and low payload capacity of DNA origami restrict its biomedical applications. Here, this paper reports the fabrication of an advanced biocompatible nano-in-nanocomposite, which protects DNA origami from degradation and facilities drug loading. The DNA origami, gold nanorods, and molecular targeted drugs are co-incorporated into pH responsive calcium phosphate [Ca (PO ) ] nanoparticles. Subsequently, a thin layer of phospholipid is coated onto the Ca (PO ) nanoparticle to offer better biocompatibility. The fabricated nanocomposite shows high drug loading capacity, good biocompatibility, and a photothermal and pH-responsive payload release profile and it fully protects DNA origami from degradation. The codelivery of DNA origami with cancer drugs synergistically induces cancer cell apoptosis, reduces the multidrug resistance, and enhances the targeted killing efficiency toward human epidermal growth factor receptor 2 positive cells. This nanocomposite is foreseen to open new horizons for a variety of clinical and biomedical applications.
DNA 折纸术通过在纳米尺度上任意控制 DNA 链的折叠来设计。由于其固有的生物性质,DNA 折纸术被用于药物输送以增强协同作用和抑制多药耐药性、癌症诊断和许多其他生物医学应用,在这些应用中显示出巨大的潜力。然而,DNA 折纸术的固有不稳定性和低载药能力限制了其在生物医学中的应用。本文报道了一种先进的生物相容性纳米复合纳米复合材料的制备,该材料可保护 DNA 折纸术免受降解并促进药物加载。将 DNA 折纸术、金纳米棒和分子靶向药物共同掺入 pH 响应的磷酸钙[Ca(PO4)]纳米颗粒中。随后,在 Ca(PO4)纳米颗粒上涂覆一层薄的磷脂以提供更好的生物相容性。所制备的纳米复合材料具有高载药能力、良好的生物相容性、光热和 pH 响应的载药释放特性,并能完全保护 DNA 折纸术免受降解。与癌症药物共递送的 DNA 折纸术协同诱导癌细胞凋亡,降低多药耐药性,并增强对人表皮生长因子受体 2 阳性细胞的靶向杀伤效率。这种纳米复合材料有望为各种临床和生物医学应用开辟新的前景。