DNA strand displacement systems have transformative potential in synthetic biology. While powerful examples have been reported in DNA nanotechnology, such systems are plagued by leakage, which limits network stability, sensitivity, and scalability. An approach to mitigate leakage in DNA nanotechnology, which is applicable to synthetic biology, is to introduce mismatches to complementary fuel sequences at key locations. However, this method overlooks nuances in the secondary structure of the fuel and substrate that impact the leakage reaction kinetics in strand displacement systems. In an effort to quantify the impact of secondary structure on leakage, we introduce the concepts of availability and mutual availability and demonstrate their ut...
Dynamic DNA nanotechnology, a subfield of DNA nanotechnology, is concerned with the study and applic...
Nucleic acids are a powerful engineering material that can be used to implement a broad range of com...
With the aim of investigating how motor proteins negotiate DNA nanostructures, we produced test circ...
DNA strand displacement systems have transformative potential in synthetic biology. While powerful e...
Nucleic acids are information-dense, programmable polymers that can be engineered into primers, prob...
Because of the elegance of Watson-Crick base pairing and the programmability of toehold-mediated str...
Artificially designed molecular systems with programmable behaviors have become a valuable tool in c...
DNA-based circuits and computational tools offer great potential for advanced biomedical and technol...
While current experimental demonstrations have been limited to small computational tasks, DNA strand...
Although a number of dynamically-controlled nanostructures and programmable DNA Strand Displacement ...
Abstract. While current experimental demonstrations have been lim-ited to small computational tasks,...
permits unrestricted use, distribution, and reproduction in any medium, provided the original work i...
DNA strand displacement technique is widely used in DNA programming, DNA biosensors, and gene analys...
DNA strand displacement technique is widely used in DNA programming, DNA biosensors, and gene analys...
A central goal of biomolecular engineering is the construction of tools to manipulate nanoscale proc...
Dynamic DNA nanotechnology, a subfield of DNA nanotechnology, is concerned with the study and applic...
Nucleic acids are a powerful engineering material that can be used to implement a broad range of com...
With the aim of investigating how motor proteins negotiate DNA nanostructures, we produced test circ...
DNA strand displacement systems have transformative potential in synthetic biology. While powerful e...
Nucleic acids are information-dense, programmable polymers that can be engineered into primers, prob...
Because of the elegance of Watson-Crick base pairing and the programmability of toehold-mediated str...
Artificially designed molecular systems with programmable behaviors have become a valuable tool in c...
DNA-based circuits and computational tools offer great potential for advanced biomedical and technol...
While current experimental demonstrations have been limited to small computational tasks, DNA strand...
Although a number of dynamically-controlled nanostructures and programmable DNA Strand Displacement ...
Abstract. While current experimental demonstrations have been lim-ited to small computational tasks,...
permits unrestricted use, distribution, and reproduction in any medium, provided the original work i...
DNA strand displacement technique is widely used in DNA programming, DNA biosensors, and gene analys...
DNA strand displacement technique is widely used in DNA programming, DNA biosensors, and gene analys...
A central goal of biomolecular engineering is the construction of tools to manipulate nanoscale proc...
Dynamic DNA nanotechnology, a subfield of DNA nanotechnology, is concerned with the study and applic...
Nucleic acids are a powerful engineering material that can be used to implement a broad range of com...
With the aim of investigating how motor proteins negotiate DNA nanostructures, we produced test circ...