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Kosugi, T.

Publications and source records attributed to Kosugi, T..

2 recordsLinked to original sources

Design of complicated all-α protein structures

A wide range of de novo protein structure designs have been achieved, but the complexity of naturally occurring protein structures is still far beyond these designs. To expand the diversity and complexity of de novo designed protein structures, we sought to develop a method for designing "difficult-to-describe"-helical protein structures composed of irregularly aligned -helices like globins. Backbone structure libraries consisting of a myriad of -helical structures with 5- or 6-helices were generated by combining 18 helix-loop-helix motifs and canonical -helices, and five distinct topologies were selected for de novo design. The designs were found to be monomeric with high thermal stability in solution and fold into the target topologies with atomic accuracy. This study demonstrated that complicated -helical proteins are created using typical building blocks. The method we developed would enable us to explore the universe of protein structures for designing novel functional proteins.

biophysics

De Novo Design of Allosteric Control into Rotary Motor V1-ATPase by Restoring Lost Function

Protein complexes exert various functions through allosterically controlled cooperative work. De novo design of allosteric control into protein complexes provides understanding of their working principles and potential tools for synthetic biology. Here, we hypothesized that an allosteric control can be created by restoring lost functions of pseudo-enzymes contained as subunits in protein complexes. This was demonstrated by computationally de novo designing ATP binding ability of the pseudo-enzyme subunits in a rotary molecular motor, V1-ATPase. Single molecule experiments with solved crystal structures revealed that the designed V1 is allosterically accelerated than the wild-type by the ATP binding to the created allosteric site and the rate is tunable by modulating the binding affinity. This work opened up an avenue for programming allosteric control into proteins exhibiting concerted functions.

biophysics