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Biology subjects

Taylor, R. E.

Publications and source records attributed to Taylor, R. E..

2 recordsLinked to original sources

Capacitance measurements for assessing DNA origami nanostructures

Nanostructures fabricated with DNA are emerging as a practical approach for applications ranging from advanced manufacturing to therapeutics. To support the strides made in improving accessibility and facilitating commercialization of DNA nanostructure applications, we identify the need for a rapid characterization approach that aids nanostructure production. In our work, we introduce a low-fidelity characterization approach that provides an interdependent assessment of DNA origami formation, concentration and morphology using capacitance sensing. Change in charge is one of the transduction methods to determine capacitive loading on a substrate. It is known that cations in the solution stabilize DNA origami nanostructures. So, we hypothesized that the presence of cations and nanostructures in a buffer solution can induce capacitance change that is distinctive of the nanostructure present. In this study we were able to detect a change in the capacitance when the nanostructure solution was deposited on our capacitance sensor, and we could distinguish between pre-annealed and annealed structures at concentrations less than 15 nM. The capacitance measurements were affected by the concentration of Mg2+ ions in the solution, the staple-to-scaffold stoichiometric ratio of the nanostructure and the nanostructure morphology. Maintaining a 12.5 mM Mg2+ concentration in the nanostructure buffer, we discover a linear relationship between the relative capacitance change and the nanostructure concentration from 5 nM to 20 nM, which we call the characteristic curve. We find distinct characteristic curves for our three nanostructures with distinct morphologies but similar molecular weight - a rectangular plate, a sphere and a rod. Given that we can distinguish nanostructure formation, concentration and morphology, we expect that capacitance measurement will emerge as an affordable and rapid approach for quality control for nanostructure production.

bioengineering↗

Synthetic cell armor made of DNA origami

Therapeutic and bioengineering applications of cells, such as cell printing and cell delivery, are directly limited by cell damage and death due to harsh mechanical conditions. Improved cellular robustness thus motivates investigations into cell encapsulation that provides essential protection. Here we target the cell-surface glycocalyx and crosslink two layers of DNA origami nanorods on the cellular plasma membrane to form a nanoscale protective shell. This modular and programmable approach enables fine control over the layering and composition of membrane-deposited nanorods. We show that the DNA origami nanoshell modulates the biophysical properties of cell membranes by enhancing membrane stiffness and lowering lipid fluidity. Moreover, the nanoshell serves as armor, protecting cells, limiting swelling and ultimately improving their viability against mechanical stress from osmotic imbalance and centrifugal forces. Our results demonstrate the potential of the nanoshell, not only as a cellular protection strategy, but also as a platform for manipulating and studying plasma membrane mechanics.

bioengineering↗