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Laboratory evolution of one disulfide isomerase to resemble another
Author(s) -
Annie Hiniker,
Guoping Ren,
Begoña Heras,
Ying Zheng,
Stephanie Laurinec,
Richard W. Jobson,
Jeanne A. Stuckey,
Jennifer L. Martin,
James C.A. Bardwell
Publication year - 2007
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.0704692104
Subject(s) - protein disulfide isomerase , isomerase , biology , protein folding , peptide sequence , directed evolution , cis trans isomerases , molecular evolution , escherichia coli , genetics , sequence alignment , biochemistry , mutant , peptidylprolyl isomerase , phylogenetics , disulfide bond , enzyme , gene
It is often difficult to determine which of the sequence and structural differences between divergent members of multigene families are functionally important. Here we use a laboratory evolution approach to determine functionally important structural differences between two distantly related disulfide isomerases, DsbC and DsbG from Escherichia coli. Surprisingly, we found single amino acid substitutions in DsbG that were able to complement dsbC in vivo and have more DsbC-like isomerase activity in vitro. Crystal structures of the three strongest point mutants, DsbG K113E, DsbG V216M, and DsbG T200M, reveal changes in highly surface-exposed regions that cause DsbG to more closely resemble the distantly related DsbC. In this case, laboratory evolution appears to have taken a direct route to allow one protein family member to complement another, with single substitutions apparently bypassing much of the need for multiple changes that took place over approximately 0.5 billion years of evolution. Our findings suggest that, for these two proteins at least, regions important in determining functional differences may represent only a tiny fraction of the overall protein structure.

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