Allosteric protein switches are key controllers of information and energy processing in living organisms and are desirable engineered control tools in synthetic systems. Here we present a generally applicable strategy for construction of allosteric signaling systems with inputs and outputs of choice. We demonstrate conversion of constitutively active enzymes into peptide-operated synthetic allosteric ON switches by insertion of a calmodulin domain into rationally selected sites. Switches based on EGFP, glucose dehydrogenase, NanoLuciferase, and dehydrofolate reductase required minimal optimization and demonstrated a dynamic response ranging from 1.8-fold in the former case to over 200-fold in the latter case. The peptidic nature of the calm...
Allostery enables proteins to interconvert different biochemical signals and form complex metabolic ...
The bottom-up design of protein-based signaling networks is a key goal of synthetic biology; yet, it...
The bottom-up design of protein-based signaling networks is a key goal of synthetic biology; yet, it...
Allosteric protein switches are key controllers of information and energy processing in living organ...
The ability of proteins to interconvert unrelated biochemical inputs and outputs underlays most ener...
The ability of proteins to interconvert unrelated biochemical inputs and outputs underlays most ener...
This work describes the development of a new platform for allosteric protein engineering that takes ...
The idea that biological systems can be built from standard components is the central tenet of Synth...
Protein biosensors play increasingly important roles in cell and neurobiology and have the potential...
Enzymatic polypeptide proteolysis is a widespread and powerful biological control mechanism. Over th...
Biological information processing networks rely on allosteric protein switches that dynamically inte...
The construction of allosteric protein switches is a key goal of synthetic biology. Such switches ca...
Construction of artificial allosteric protein switches is one of the central goals of synthetic bio...
AbstractBiosensors are hybrid analytical devices that amplify signals generated from the specific in...
The population-shift mechanism can be used for rational re-engineering of structure-switching biosen...
Allostery enables proteins to interconvert different biochemical signals and form complex metabolic ...
The bottom-up design of protein-based signaling networks is a key goal of synthetic biology; yet, it...
The bottom-up design of protein-based signaling networks is a key goal of synthetic biology; yet, it...
Allosteric protein switches are key controllers of information and energy processing in living organ...
The ability of proteins to interconvert unrelated biochemical inputs and outputs underlays most ener...
The ability of proteins to interconvert unrelated biochemical inputs and outputs underlays most ener...
This work describes the development of a new platform for allosteric protein engineering that takes ...
The idea that biological systems can be built from standard components is the central tenet of Synth...
Protein biosensors play increasingly important roles in cell and neurobiology and have the potential...
Enzymatic polypeptide proteolysis is a widespread and powerful biological control mechanism. Over th...
Biological information processing networks rely on allosteric protein switches that dynamically inte...
The construction of allosteric protein switches is a key goal of synthetic biology. Such switches ca...
Construction of artificial allosteric protein switches is one of the central goals of synthetic bio...
AbstractBiosensors are hybrid analytical devices that amplify signals generated from the specific in...
The population-shift mechanism can be used for rational re-engineering of structure-switching biosen...
Allostery enables proteins to interconvert different biochemical signals and form complex metabolic ...
The bottom-up design of protein-based signaling networks is a key goal of synthetic biology; yet, it...
The bottom-up design of protein-based signaling networks is a key goal of synthetic biology; yet, it...