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Umeno, D.

Publications and source records attributed to Umeno, D..

2 recordsLinked to original sources

Fabrication, evolution, and mutual conversion of D-fucose-activatable and -repressible acetyltransferase upon mutations

The fusion of different proteins can result in the linkage-dependent emergence of molecular switches. In cases where allosteric regulation is designed between the input and output modules of fusion proteins, it is hard to predict whether on-switching or off-switching will occur. However, binding-induced folding, a non-allosteric molecular switch mechanism, has the potential to quickly establish a mutually regulatory relationship between the two fused proteins, in the way whether on-switching or off-switching will occur would be predictable. We inserted chloramphenicol acetyltransferase (CAT) from E. coli into a loop of a D-fucose-responsive mutant of transcription factor AraC, using linker libraries with various lengths. We found that on-switches tend to emerge when two proteins are fused with a small pitch gap at the junction, while fusion designs with a large pitch gap result in the frequent emergence of off-switches. Both types of switches rapidly evolved their switching efficiency upon mutations, establishing the D-fucose-on and -off regulation of CAT activity without disrupting the D-fucose-inducible logic of AraC function. To our surprise, both one-input/two-output split gates thus obtained could be easily inter-converted upon mutations. Through mutations, proteins not only frequently acquire properties as binding-induced folders, but also rapidly establish and evolve a mutual regulatory relationship with unrelated fusion partners, as well as transform their regulatory logic.

synthetic biology↗

Mutational destabilisation accelerates the evolution of novel sensory and network functions

Binding-induced folding1-4 (BIF) is a promising mechanism that can be used to rapidly convert binders into sensors/regulators without allosteric design. Here we showed that allosteric regulatory proteins AraC can acquire BIF mechanism without compromising their inherent allosteric mechanisms, with high frequency upon mutations. This opened an opportunity to compare the evolutionary capacity of the allosteric and non-allosteric modes of a specific sensory protein. We found that AraC evolved novel sensory function far more rapidly in BIF mode than in allosteric mode. This newly acquired (non-allosteric) sensory function is distinguishable both in its response logic and in sensitivity from original (allosteric) one, and they can be operated simultaneously, independently, and cooperatively, allowing the construction of complex regulatory networks behaviours such as a selective NIMPLY/OR converter and width-tuneable band-pass filter. Together with its high frequency of emergence, BIF can be an overlooked evolutionary driver of the invention of novel biosensors and complex regulatory networks in nature and laboratory.

synthetic biology↗