Biomineralization of DNA Nanoframeworks for Intracellular Delivery, On-Demand Diagnosis, and Synergistic Cancer Treatments

Anal Chem. 2022 Dec 6;94(48):16803-16812. doi: 10.1021/acs.analchem.2c03726. Epub 2022 Nov 7.

Abstract

DNA nanoframeworks, with great biological information and controlled framework structures, exhibit great potentials in biological applications. Their applications are normally limited by unstable structures susceptible to hydrolysis, depurination, depyrimidination, oxidation, alkylation, or nuclease degradations. Herein, to ensure the mechanical and chemical stabilities of DNA nanoframeworks for intracellular applications, biomineralization of multifunctional DNA nanoframeworks with a tetrahedral skeleton is employed. Via silicification, the S-S bond is simultaneously introduced to obtain the silica-armored DNA nanoframeworks (Si-DNA nanoframeworks), mechanically and chemically stabilized for efficient intracellular deliveries. This successfully prevents degradations and leakages of reagents loaded on Si-DNA nanoframeworks, including biomolecular siRNA and small DOX drugs. Furthermore, the nucleic acid strands of the nanoframeworks are labeled with FAM and the quencher, facilitating miRNA detection upon "turn-on" signals from hybridizations. Therefore, the nanoframeworks collapse via double responses of the silica coating (silica acidic dissolution and S-S reduction by GSH) in cancer cells, realizing on-demand reagent release for miRNA detection and synergistic treatments (by siRNA and DOX). Demonstrated by both in vivo and in vitro experiments, the biomineralization has stabilized DNA nanomaterials for biological applications.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Biomineralization
  • DNA
  • Doxorubicin / chemistry
  • MicroRNAs*
  • Nanoparticles* / chemistry
  • Neoplasms* / diagnosis
  • Neoplasms* / drug therapy
  • RNA, Small Interfering
  • Silicon Dioxide / chemistry

Substances

  • Doxorubicin
  • RNA, Small Interfering
  • Silicon Dioxide
  • DNA
  • MicroRNAs