TY - JOUR
T1 - Emerging themes in the computational design of novel enzymes and protein-protein interfaces
AU - Khare, Sagar D.
AU - Fleishman, Sarel J.
N1 - Israel Science Foundation; Human Frontier Science Program; Marie Curie Reintegration Grant; Alon fellowship; Yeda-Sela Center; Geffen Trust; Rutgers UniversityWe apologize that not all contributions to protein design could be reviewed here due to space limitations and the review's focus on the computational de novo design of function that has been corroborated by experimentally determined atomic structures. S.J.F. is supported by the Israel Science Foundation, the Human Frontier Science Program, the Marie Curie Reintegration Grant, an Alon fellowship, the Yeda-Sela Center, the Geffen Trust, and a charitable donation from Sam Switzer and family. S. D. K. is supported by a startup grant from Rutgers University.
PY - 2013/4/17
Y1 - 2013/4/17
N2 - Recent years have seen the first applications of computational protein design to generate novel catalysts, binding pairs of proteins, protein inhibitors, and large oligomeric assemblies. At their core these methods rely on a similar hybrid energy function, composed of physics-based and database-derived terms, while different sequence and conformational sampling approaches are used for each design category. Although these are first steps for the computational design of novel function, crystal structures and biochemical characterization already point out where success and failure are likely in the application of protein design. Contrasting failed and successful design attempts has been used to diagnose deficiencies in the approaches and in the underlying hybrid energy function. In this manner, design provides an inherent mechanism by which crucial information is obtained on pressing areas where focused efforts to improve methods are needed. Of the successful designs, many feature pre-organized sites that are poised to perform their intended function, and improvements often result from disfavoring alternative functionally suboptimal states. These rapid developments and fundamental insights obtained thus far promise to make computational design of novel molecular function general, robust, and routine.
AB - Recent years have seen the first applications of computational protein design to generate novel catalysts, binding pairs of proteins, protein inhibitors, and large oligomeric assemblies. At their core these methods rely on a similar hybrid energy function, composed of physics-based and database-derived terms, while different sequence and conformational sampling approaches are used for each design category. Although these are first steps for the computational design of novel function, crystal structures and biochemical characterization already point out where success and failure are likely in the application of protein design. Contrasting failed and successful design attempts has been used to diagnose deficiencies in the approaches and in the underlying hybrid energy function. In this manner, design provides an inherent mechanism by which crucial information is obtained on pressing areas where focused efforts to improve methods are needed. Of the successful designs, many feature pre-organized sites that are poised to perform their intended function, and improvements often result from disfavoring alternative functionally suboptimal states. These rapid developments and fundamental insights obtained thus far promise to make computational design of novel molecular function general, robust, and routine.
UR - https://www.scopus.com/pages/publications/84876020987
U2 - 10.1016/j.febslet.2012.12.009
DO - 10.1016/j.febslet.2012.12.009
M3 - Review article
SN - 0014-5793
VL - 587
SP - 1147
EP - 1154
JO - FEBS Letters
JF - FEBS Letters
IS - 8
ER -