Toehold-mediated DNA strand displacement (TMSD) is a powerful tool for controlling DNA-based molecular reactions and devices. However, the slow kinetics of TMSD reactions often limit their efficiency and practical applications. Inspired by the chemical structures of natural DNA-operating enzymes (e.g., helicase), we designed lysine-rich peptides to self-assemble with DNA-based systems. Our approach allows for accelerating the TMSD reactions, even during multiple displacement events, enhancing their overall efficiency and utility. We found that the acceleration is dependent on the peptide’s sequence, length, and concentration as well as the length of the DNA toehold domain. Molecular dynamics simulations revealed that the peptides promote to...
Dynamic DNA assemblies, including catalytic DNA circuits, DNA nanomachines, molecular translators, a...
Here we show a general approach to achieve dissipative control over toehold-mediated strand-displace...
Synthetic DNA has emerged as a powerful selfassembled material for the engineering of nanoscale supr...
Raw data, results, and Matlab scripts used for this publication. See README for more information. T...
Toehold-mediated strand displacement has proven extremely powerful in programming enzyme-free DNA ci...
Dynamic DNA nanotechnology, a subfield of DNA nanotechnology, is concerned with the study and applic...
The ability to finely tune reaction rates and binding energies between components has made DNA stran...
Most of the dynamic DNA devices are rationally constructed by utilizing toehold-mediated DNA strand ...
DNA provides an ideal substrate for nanoscale construction and programmable dynamic mechanisms. DNA ...
Most of the dynamic DNA devices are rationally constructed by utilizing toehold-mediated DNA strand ...
Hybridization of DNA strands can be used to build molecular devices, and control of the kinetics of ...
ABSTRACT: Dynamic DNA assemblies, including cata-lytic DNA circuits, DNA nanomachines, molecular tra...
The use of templates is a well-established method for the production of sequence-controlled assembli...
Deoxyribonucleic acid or DNA is an essential component in cells and organisms for genetic informatio...
Thesis (Ed.D.)--University of Washington, 2020At the nanoscale, the ability to control spatio-tempor...
Dynamic DNA assemblies, including catalytic DNA circuits, DNA nanomachines, molecular translators, a...
Here we show a general approach to achieve dissipative control over toehold-mediated strand-displace...
Synthetic DNA has emerged as a powerful selfassembled material for the engineering of nanoscale supr...
Raw data, results, and Matlab scripts used for this publication. See README for more information. T...
Toehold-mediated strand displacement has proven extremely powerful in programming enzyme-free DNA ci...
Dynamic DNA nanotechnology, a subfield of DNA nanotechnology, is concerned with the study and applic...
The ability to finely tune reaction rates and binding energies between components has made DNA stran...
Most of the dynamic DNA devices are rationally constructed by utilizing toehold-mediated DNA strand ...
DNA provides an ideal substrate for nanoscale construction and programmable dynamic mechanisms. DNA ...
Most of the dynamic DNA devices are rationally constructed by utilizing toehold-mediated DNA strand ...
Hybridization of DNA strands can be used to build molecular devices, and control of the kinetics of ...
ABSTRACT: Dynamic DNA assemblies, including cata-lytic DNA circuits, DNA nanomachines, molecular tra...
The use of templates is a well-established method for the production of sequence-controlled assembli...
Deoxyribonucleic acid or DNA is an essential component in cells and organisms for genetic informatio...
Thesis (Ed.D.)--University of Washington, 2020At the nanoscale, the ability to control spatio-tempor...
Dynamic DNA assemblies, including catalytic DNA circuits, DNA nanomachines, molecular translators, a...
Here we show a general approach to achieve dissipative control over toehold-mediated strand-displace...
Synthetic DNA has emerged as a powerful selfassembled material for the engineering of nanoscale supr...