Encapsulating Active Pharmaceutical Ingredients in Self-Assembling Adamantanes with Short DNA Zippers

ChemMedChem. 2017 Nov 8;12(21):1759-1767. doi: 10.1002/cmdc.201700466. Epub 2017 Oct 9.

Abstract

Formulating pharmaceutically active ingredients for drug delivery is a challenge. There is a need for new drug delivery systems that take up therapeutic molecules and release them into biological systems. We propose a novel mode of encapsulation that involves matrices formed through co-assembly of drugs with adamantane hybrids that feature four CG dimers as sticky ends. Such adamantanes are accessible via inexpensive solution-phase syntheses, and the resulting materials show attractive properties for controlled release. This is demonstrated for two different hybrids and a series of drugs, including anticancer drugs, antibiotics, and cyclosporin. Up to 20 molar equivalents of active pharmaceutical ingredients (APIs) are encapsulated in hybrid materials. Encapsulation is demonstrated for DNA-binding and several non-DNA binding compounds. Nanoparticles were detected that range in size from 114-835 nm average diameter, and ζ potentials were found to be between -29 and +28 mV. Release of doxorubicin into serum at near-constant rates for 10 days was shown, demonstrating the potential for slow release. The encapsulation and release in self-assembling matrices of dinucleotide-bearing adamantanes appears to be broadly applicable and may thus lead to new drug delivery systems for APIs.

Keywords: DNA hybrids; adamantane; anthracyclines; controlled release; formulation.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adamantane / chemistry*
  • Cyclosporine / chemistry*
  • Cyclosporine / metabolism
  • DNA / chemistry*
  • Doxorubicin / chemistry*
  • Doxorubicin / metabolism
  • Drug Carriers / chemistry*
  • Drug Compounding
  • Drug Liberation
  • Imatinib Mesylate / chemistry*
  • Imatinib Mesylate / metabolism

Substances

  • Drug Carriers
  • Doxorubicin
  • Cyclosporine
  • Imatinib Mesylate
  • DNA
  • Adamantane