Structure and stimuli-responsiveness of all-DNA dendrimers: theory and experiment
Clemens Jochum, Nata\v{s}a Ad\v{z}i\'c, Emmanuel Stiakakis, Thomas L., Derrien, Dan Luo, Gerhard Kahl, Christos N. Likos

TL;DR
This study combines theory and experiments to analyze the size, structure, and salt-responsiveness of DNA dendrimers, revealing their potential for targeted self-assembly and nanotechnological applications.
Contribution
It provides a comprehensive model and experimental validation of DNA dendrimers' properties across generations, highlighting their robustness and application potential.
Findings
DNA dendrimers' size is only slightly affected by salt concentration.
Molecular Dynamics simulations agree with experimental size measurements.
High bending rigidity contributes to size stability despite electrostatic screening.
Abstract
We present a comprehensive theoretical and experimental study of the solution phase properties of DNA-based family of nanoparticles - dendrimer-like DNA molecules (DL-DNA). These charged DNA dendrimers are novel macromolecular aggregates, which hold high promise in targeted self-assembly of soft matter systems in the bulk and at interfaces. To describe the behavior of this family of dendrimers (with generations ranging from G1 to G7), we use a theoretical model in which base-pairs of a single DL-DNA molecule are modeled by charged monomers, whose interactions are chosen to mimic the equilibrium properties of DNA correctly. Experimental results on the sizes and conformations of DL-DNA are based on static and 1dynamic light scattering; at the same time, Molecular Dynamics simulations are employed to model the equilibrium properties of DL-DNA, which compare favorably with the findings from…
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Taxonomy
TopicsAdvanced biosensing and bioanalysis techniques · DNA and Nucleic Acid Chemistry · RNA Interference and Gene Delivery
