To perform well in biotechnology applications, synthetic genetic oscillators must be engineered to allow independent modulation of amplitude and period. This need is currently unmet. Here, we demonstrate computationally how two classic genetic oscillators, the dual-feedback oscillator and the repressilator, can be re-designed to provide independent control of amplitude and period and improve tunability—that is, a broad dynamic range of periods and amplitudes accessible through the input “dials.” Our approach decouples frequency and amplitude modulation by incorporating an orthogonal “sink module” where the key molecular species are channeled for enzymatic degradation. This sink module maintains fast oscillation cycles while alleviating the ...
An electronic analog of a synthetic genetic network known as the repressilator is proposed. The repr...
An electronic analog of a synthetic genetic network known as the repressilator is proposed. The repr...
Introduction and motivation: A wide variety of organisms have developed in-ternal biomolecular clock...
[[abstract]]In the past decade, the development of synthetic gene networks has attracted much attent...
Genetic oscillators that arrive from the dynamic interaction of molecular components have been shown...
Synthetically engineered genetic circuits can perform a wide range of tasks but generally with lower...
BACKGROUND: The use of in silico simulations as a basis for designing artificial biological systems ...
Considerable progress has been made in identifying and characterizing the component parts of genetic...
We develop a detailed theoretical framework for various types of transcription factor gene oscillato...
A cell-free approach reveals how genetic circuits can produce robust oscillations of proteins and ot...
The control of synthetic genetic regulatory networks is an emerging engineering challenge. In this s...
Biological oscillators are present in most living organisms and play major roles in their developmen...
This paper analyzes oscillatory dynamics of a class of cyclic gene regulatory networks and provides ...
Gene networks exhibiting oscillatory dynamics are widespread in biology. The minimal regulatory desi...
Synthetic biology seeks to understand and engineer biological networks that perform a quantitative d...
An electronic analog of a synthetic genetic network known as the repressilator is proposed. The repr...
An electronic analog of a synthetic genetic network known as the repressilator is proposed. The repr...
Introduction and motivation: A wide variety of organisms have developed in-ternal biomolecular clock...
[[abstract]]In the past decade, the development of synthetic gene networks has attracted much attent...
Genetic oscillators that arrive from the dynamic interaction of molecular components have been shown...
Synthetically engineered genetic circuits can perform a wide range of tasks but generally with lower...
BACKGROUND: The use of in silico simulations as a basis for designing artificial biological systems ...
Considerable progress has been made in identifying and characterizing the component parts of genetic...
We develop a detailed theoretical framework for various types of transcription factor gene oscillato...
A cell-free approach reveals how genetic circuits can produce robust oscillations of proteins and ot...
The control of synthetic genetic regulatory networks is an emerging engineering challenge. In this s...
Biological oscillators are present in most living organisms and play major roles in their developmen...
This paper analyzes oscillatory dynamics of a class of cyclic gene regulatory networks and provides ...
Gene networks exhibiting oscillatory dynamics are widespread in biology. The minimal regulatory desi...
Synthetic biology seeks to understand and engineer biological networks that perform a quantitative d...
An electronic analog of a synthetic genetic network known as the repressilator is proposed. The repr...
An electronic analog of a synthetic genetic network known as the repressilator is proposed. The repr...
Introduction and motivation: A wide variety of organisms have developed in-ternal biomolecular clock...