The use of abstract chemical reaction networks (CRNs) as a modelling and design framework for the implementation of computing and control circuits using enzyme-free, entropy driven DNA strand displacement (DSD) reactions is starting to garner widespread attention in the area of synthetic biology. Previous work in this area has demonstrated the theoretical plausibility of using this approach to design biomolecular feedback control systems based on classical proportional-integral (PI) controllers, which may be constructed from CRNs implementing gain, summation and integrator operators. Here, we propose an alternative design approach that utilises the abstract chemical reactions involved in cellular signalling cycles to implement a biomolecula...
Chemical reaction networks based on catalysis, degradation, and annihilation may be used as building...
Principles of feedback control have been shown to naturally arise in biological systems and successf...
Biological organisms use complex molecular networks to navigate their environment and regulate their...
A fundamental aim of synthetic biology is to achieve the capability to design and implement robust e...
Chemical reaction networks can be utilised as basic components for nucleic acid feedback control sys...
Chemical reaction networks can be utilised as basic components for nucleic acid feedback control sys...
We show how an important class of nonlinear feedback controllers can be designed using idealized abs...
We show how an important class of nonlinear feedback controllers can be designed using idealized abs...
The design of synthetic circuits for controlling molecular-scale processes is an important goal of s...
Recent advances in DNA computing have greatly facilitated the design of biomolecular circuitry based...
Recent work has shown how chemical reaction network theory may be used to design dynamical systems t...
Nucleic acid-based chemistry is a strong candidate framework for the construction of future syntheti...
Chemical Reaction Network (CRN) models based on the mass-action law play an important role in the li...
Chemical Reaction Network (CRN) models based on the mass-action law play an important role in the li...
Chemical Reaction Network (CRN) models based on the mass-action law play an important role in the li...
Chemical reaction networks based on catalysis, degradation, and annihilation may be used as building...
Principles of feedback control have been shown to naturally arise in biological systems and successf...
Biological organisms use complex molecular networks to navigate their environment and regulate their...
A fundamental aim of synthetic biology is to achieve the capability to design and implement robust e...
Chemical reaction networks can be utilised as basic components for nucleic acid feedback control sys...
Chemical reaction networks can be utilised as basic components for nucleic acid feedback control sys...
We show how an important class of nonlinear feedback controllers can be designed using idealized abs...
We show how an important class of nonlinear feedback controllers can be designed using idealized abs...
The design of synthetic circuits for controlling molecular-scale processes is an important goal of s...
Recent advances in DNA computing have greatly facilitated the design of biomolecular circuitry based...
Recent work has shown how chemical reaction network theory may be used to design dynamical systems t...
Nucleic acid-based chemistry is a strong candidate framework for the construction of future syntheti...
Chemical Reaction Network (CRN) models based on the mass-action law play an important role in the li...
Chemical Reaction Network (CRN) models based on the mass-action law play an important role in the li...
Chemical Reaction Network (CRN) models based on the mass-action law play an important role in the li...
Chemical reaction networks based on catalysis, degradation, and annihilation may be used as building...
Principles of feedback control have been shown to naturally arise in biological systems and successf...
Biological organisms use complex molecular networks to navigate their environment and regulate their...