| Literature DB >> 28423276 |
Yuan Ping1,2, Dawei Ding1,2, Ricardo A N S Ramos1,2, Harini Mohanram1,2, Kanagavel Deepankumar1,2, Jianqing Gao3, Guping Tang4, Ali Miserez1,2.
Abstract
Suckerin proteins, recently discovered in the sucker ring teeth of squids, represent a family of promising structural biomacromolecules that can form supramolecular networks stabilized by nanoconfined β-sheets. Exploiting this feature as well as their specific amino acid composition, we demonstrate that artificial suckerin-19 (S-19) can be engineered into nanocarriers for efficient drug delivery and gene transfection in vitro and in vivo. First, we demonstrate that S-19 self-assembles into β-sheet stabilized nanoparticles with controlled particle sizes of 100-200 nm that are able to encapsulate hydrophobic drugs for pH-dependent release in vitro, and that can effectively inhibit tumor growth in vivo. We also show that S-19 can complex and stabilize plasmid DNA, with the complexes stabilized by hydrophobic interactions of the β-sheet domains as opposed to electrostatic interactions commonly achieved with cationic polymers, thus lowering cytotoxicity. The elevated Histidine content of S-19 appears critical to trigger endosomal escape by the proton sponge effect, thereby ensuring efficient gene transfection both in vitro and in vivo. Our study demonstrates that S-19 represents a promising functional protein nanocarrier that could be used for various drug and gene delivery applications.Entities:
Keywords: chemotherapy; gene therapy; histidine-rich protein; nanomedicine; protein nanoparticle
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Year: 2017 PMID: 28423276 DOI: 10.1021/acsnano.6b08393
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881