| Literature DB >> 27936577 |
Armando Hernandez-Garcia1, Nicole A Estrich2, Marc W T Werten3, Johan R C Van Der Maarel4, Thomas H LaBean2, Frits A de Wolf3, Martien A Cohen Stuart1, Renko de Vries1.
Abstract
Emerging DNA-based nanotechnologies would benefit from the ability to modulate the properties (e.g., solubility, melting temperature, chemical stability) of diverse DNA templates (single molecules or origami nanostructures) through controlled, self-assembling coatings. We here introduce a DNA coating agent, called C8-BSso7d, which binds to and coats with high specificity and affinity, individual DNA molecules as well as folded origami nanostructures. C8-BSso7d coats and protects without condensing, collapsing or destroying the spatial structure of the underlying DNA template. C8-BSso7d combines the specific nonelectrostatic DNA binding affinity of an archeal-derived DNA binding domain (Sso7d, 7 kDa) with a long hydrophilic random coil polypeptide (C8, 73 kDa), which provides colloidal stability (solubility) through formation of polymer brushes around the DNA templates. C8-BSso7d is produced recombinantly in yeast and has a precise (but engineerable) amino acid sequence of precise length. Using electrophoresis, AFM, and fluorescence microscopy we demonstrate protein coat formation with stiffening of one-dimensional templates (linear dsDNA, supercoiled dsDNA and circular ssDNA), as well as coat formation without any structural distortion or disruption of two-dimensional DNA origami template. Combining the programmability of DNA with the nonperturbing precise coating capability of the engineered protein C8-BSso7d holds promise for future applications such as the creation of DNA-protein hybrid networks, or the efficient transfection of individual DNA nanostructures into cells.Entities:
Keywords: DNA nanotechnology; directed self-assembly; nanomaterials; protein engineering; protein polymer; single molecule
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Year: 2016 PMID: 27936577 DOI: 10.1021/acsnano.6b05938
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881