AbstractGenetic circuits in living cells share transcriptional and translational resources that are available in limited amounts. This leads to unexpected couplings among seemingly unconnected modules, which result in poorly predictable circuit behavior. In this study, we determine these interdependencies between products of different genes by characterizing the economy of how transcriptional and translational resources are allocated to the production of proteins in genetic circuits. We discover that, when expressed from the same plasmid, the combinations of attainable protein concentrations are constrained by a linear relationship, which can be interpreted as an isocost line, a concept used in microeconomics. We created a library of circui...
Background: In order to understand and regulate complex genetic networks in living cells, it is impo...
Cells contain a finite set of resources that must be distributed across many processes to ensure sur...
The quantitative relation between transcription factor concentrations and the rate of protein produc...
AbstractGenetic circuits in living cells share transcriptional and translational resources that are ...
Genetic circuits in living cells share transcriptional and translational resources that are availabl...
Genetic circuits need a cellular environment to operate in, which naturally couples the circuit func...
Gene circuits share transcriptional and translational resources in the cell. The fact that these com...
We present a detailed dynamical model of the behavior of transcription-translation circuits in vitro...
A common approach to design genetic circuits is to compose gene expression cassettes together. While...
Without accounting for the limited availability of shared cellular resources, the standard model of ...
Synthetic biology seeks to envision living cells as a matter of engineering. However, increasing evi...
Thesis: S.M., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2018.Cata...
Synthetic biology seeks to envision living cells as a matter of engineering. However, increasing evi...
Introduction of synthetic circuits into microbes creates competition between circuit and host genes ...
The field of synthetic biology aims to engineer organisms has shown great promise for exciting appli...
Background: In order to understand and regulate complex genetic networks in living cells, it is impo...
Cells contain a finite set of resources that must be distributed across many processes to ensure sur...
The quantitative relation between transcription factor concentrations and the rate of protein produc...
AbstractGenetic circuits in living cells share transcriptional and translational resources that are ...
Genetic circuits in living cells share transcriptional and translational resources that are availabl...
Genetic circuits need a cellular environment to operate in, which naturally couples the circuit func...
Gene circuits share transcriptional and translational resources in the cell. The fact that these com...
We present a detailed dynamical model of the behavior of transcription-translation circuits in vitro...
A common approach to design genetic circuits is to compose gene expression cassettes together. While...
Without accounting for the limited availability of shared cellular resources, the standard model of ...
Synthetic biology seeks to envision living cells as a matter of engineering. However, increasing evi...
Thesis: S.M., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2018.Cata...
Synthetic biology seeks to envision living cells as a matter of engineering. However, increasing evi...
Introduction of synthetic circuits into microbes creates competition between circuit and host genes ...
The field of synthetic biology aims to engineer organisms has shown great promise for exciting appli...
Background: In order to understand and regulate complex genetic networks in living cells, it is impo...
Cells contain a finite set of resources that must be distributed across many processes to ensure sur...
The quantitative relation between transcription factor concentrations and the rate of protein produc...