AbstractRibosome display is a powerful tool for selecting and evolving protein functions through ligand-binding. Here, this in vitro system was used to perform selection based on the folding properties of proteins, independent of specific ligand-binding. The selection is based on two properties of misfolded proteins: (1) increased sensitivity to proteolysis and (2) greater exposure of hydrophobic area. By targeting these properties, we show that compactly folded and soluble proteins can be enriched over insoluble and random coil proteins. This approach may be especially useful for selection and evolution of folded proteins from random sequence libraries
AbstractDisplay technologies (e.g. phage and ribosome display) are powerful tools for selecting and ...
Isolating the properties of proteins that allow them to convert sequence into the structure is a lon...
For recombinant production of proteins for structural and functional analyses, the E. coli expressio...
AbstractRibosome display is a powerful tool for selecting and evolving protein functions through lig...
As more and more protein structures are determined, it has become clear that there is only a limited...
Ribosome display has proven to be a powerful in vitro selection and evolution method for generating ...
Artificial binding proteins derived from small protein domains attract attention as a promising alte...
AbstractStructural comparison of in vitro evolved proteins with biological proteins will help determ...
Ribosome display has proven to be a powerful in vitro selection and evolution method for generating ...
The properties of biomolecules depend both on physics and on the evolutionary process that formed th...
Understanding the sequence determinants of protein structure, stabilityand folding is critical for u...
Protein design critically tests our understanding of principles that specify the protein folded stat...
Directed molecular evolution has proven to be a very powerful concept for the generation of proteins...
AbstractThe in vitro selection and simultaneous evolution of proteins is feasible by means of riboso...
Biological proteins are known to fold into specific three-dimensional conformations. A prevailing vi...
AbstractDisplay technologies (e.g. phage and ribosome display) are powerful tools for selecting and ...
Isolating the properties of proteins that allow them to convert sequence into the structure is a lon...
For recombinant production of proteins for structural and functional analyses, the E. coli expressio...
AbstractRibosome display is a powerful tool for selecting and evolving protein functions through lig...
As more and more protein structures are determined, it has become clear that there is only a limited...
Ribosome display has proven to be a powerful in vitro selection and evolution method for generating ...
Artificial binding proteins derived from small protein domains attract attention as a promising alte...
AbstractStructural comparison of in vitro evolved proteins with biological proteins will help determ...
Ribosome display has proven to be a powerful in vitro selection and evolution method for generating ...
The properties of biomolecules depend both on physics and on the evolutionary process that formed th...
Understanding the sequence determinants of protein structure, stabilityand folding is critical for u...
Protein design critically tests our understanding of principles that specify the protein folded stat...
Directed molecular evolution has proven to be a very powerful concept for the generation of proteins...
AbstractThe in vitro selection and simultaneous evolution of proteins is feasible by means of riboso...
Biological proteins are known to fold into specific three-dimensional conformations. A prevailing vi...
AbstractDisplay technologies (e.g. phage and ribosome display) are powerful tools for selecting and ...
Isolating the properties of proteins that allow them to convert sequence into the structure is a lon...
For recombinant production of proteins for structural and functional analyses, the E. coli expressio...