The design of synthetic circuits for controlling molecular-scale processes is an important goal of synthetic biology, with potential applications in future in vitro and in vivo biotechnology. In this paper, we present a computational approach for designing feedback control circuits constructed from nucleic acids. Our approach relies on an existing methodology for expressing signal processing and control circuits as biomolecular reactions. We first extend the methodology so that circuits can be expressed using just two classes of reactions: catalysis and annihilation. We then propose implementations of these reactions in three distinct classes of nucleic acid circuits, which rely on DNA strand displacement, DNA enzyme and RNA enzyme mechanis...
Nucleic acid-based chemistry is a strong candidate framework for the construction of future syntheti...
We show how an important class of nonlinear feedback controllers can be designed using idealized abs...
An important goal of synthetic biology is to create biochemical control systems with the desired cha...
The design of synthetic circuits for controlling molecular-scale processes is an important goal of s...
The design of synthetic circuits for controlling molecular-scale processes is an important goal of s...
Chemical reaction networks can be utilised as basic components for nucleic acid feedback control sys...
Chemical reaction networks based on catalysis, degradation, and annihilation may be used as building...
The idea to use nucleic acid as a substrate for design of programmable biomolecular circuits was fir...
Reliable biochemical implementations of linear controllers can provide a large set of tools for the ...
Biological organisms use complex molecular networks to navigate their environment and regulate their...
Biological organisms use complex molecular networks to navigate their environment and regulate their...
Biochemical circuits made of rationally designed DNA molecules are proofs of concept for embedding c...
The use of abstract chemical reaction networks (CRNs) as a modelling and design framework for the im...
Background: Cycles of covalent modification are ubiquitous motifs in cellular signalling. Although s...
Recent advances in DNA computing have greatly facilitated the design of biomolecular circuitry based...
Nucleic acid-based chemistry is a strong candidate framework for the construction of future syntheti...
We show how an important class of nonlinear feedback controllers can be designed using idealized abs...
An important goal of synthetic biology is to create biochemical control systems with the desired cha...
The design of synthetic circuits for controlling molecular-scale processes is an important goal of s...
The design of synthetic circuits for controlling molecular-scale processes is an important goal of s...
Chemical reaction networks can be utilised as basic components for nucleic acid feedback control sys...
Chemical reaction networks based on catalysis, degradation, and annihilation may be used as building...
The idea to use nucleic acid as a substrate for design of programmable biomolecular circuits was fir...
Reliable biochemical implementations of linear controllers can provide a large set of tools for the ...
Biological organisms use complex molecular networks to navigate their environment and regulate their...
Biological organisms use complex molecular networks to navigate their environment and regulate their...
Biochemical circuits made of rationally designed DNA molecules are proofs of concept for embedding c...
The use of abstract chemical reaction networks (CRNs) as a modelling and design framework for the im...
Background: Cycles of covalent modification are ubiquitous motifs in cellular signalling. Although s...
Recent advances in DNA computing have greatly facilitated the design of biomolecular circuitry based...
Nucleic acid-based chemistry is a strong candidate framework for the construction of future syntheti...
We show how an important class of nonlinear feedback controllers can be designed using idealized abs...
An important goal of synthetic biology is to create biochemical control systems with the desired cha...