Synthetic gene circuits allow the behavior of living cells to be reprogrammed, and non-coding small RNAs (sRNAs) are increasingly being used as programmable regulators of gene expression. However, sRNAs (natural or synthetic) are generally used to regulate single target genes, while complex dynamic behaviors would require networks of sRNAs regulating each other. Here, we report a strategy for implementing such networks that exploits hybridization reactions carried out exclusively by multifaceted sRNAs that are both targets of and triggers for other sRNAs. These networks are ultimately coupled to the control of gene expression. We relied on a thermodynamic model of the different stable conformational states underlying this system at the nucl...
Organisms have different circuitries that allow converting signal molecule levels to changes in gene...
Cells use genetic regulatory networks (GRNs) composed of interconnected genes that regulate one anot...
Harnessing global regulatory networks is a central goal in metabolic engineering for the production ...
A major goal of synthetic biology is to reliably engineer microorganisms to perform a variety of fun...
Our ability to efficiently and predictably program cells is central to the fields of bioengineering ...
A grand challenge in synthetic biology is to use our current knowledge of RNA science to perform the...
Regulation of gene expression triggered by conformational changes in RNA molecules is widely observe...
The main goal of synthetic biology is to harness the power of biological genetic expression in order...
A central tenent of synthetic biology is the ability to predictably engineer complex patterns of gen...
Small non-coding RNAs (sRNA) are a key bacterial regulatory mechanism that has yet to be fully explo...
Information processing using biochemical circuits is essential for survival and reproduction of natu...
RNA molecules lie at the heart of living organisms where they are associated with most of the cellul...
AbstractThe regulation of gene expression, triggered by conformational changes in RNA molecules, is ...
RNA devices provide synthetic biologists with tools for manipulating post-transcriptional regulation...
RNA is involved in a wide-range of important molecular processes in the cell, serving diverse functi...
Organisms have different circuitries that allow converting signal molecule levels to changes in gene...
Cells use genetic regulatory networks (GRNs) composed of interconnected genes that regulate one anot...
Harnessing global regulatory networks is a central goal in metabolic engineering for the production ...
A major goal of synthetic biology is to reliably engineer microorganisms to perform a variety of fun...
Our ability to efficiently and predictably program cells is central to the fields of bioengineering ...
A grand challenge in synthetic biology is to use our current knowledge of RNA science to perform the...
Regulation of gene expression triggered by conformational changes in RNA molecules is widely observe...
The main goal of synthetic biology is to harness the power of biological genetic expression in order...
A central tenent of synthetic biology is the ability to predictably engineer complex patterns of gen...
Small non-coding RNAs (sRNA) are a key bacterial regulatory mechanism that has yet to be fully explo...
Information processing using biochemical circuits is essential for survival and reproduction of natu...
RNA molecules lie at the heart of living organisms where they are associated with most of the cellul...
AbstractThe regulation of gene expression, triggered by conformational changes in RNA molecules, is ...
RNA devices provide synthetic biologists with tools for manipulating post-transcriptional regulation...
RNA is involved in a wide-range of important molecular processes in the cell, serving diverse functi...
Organisms have different circuitries that allow converting signal molecule levels to changes in gene...
Cells use genetic regulatory networks (GRNs) composed of interconnected genes that regulate one anot...
Harnessing global regulatory networks is a central goal in metabolic engineering for the production ...