Published June 16, 2009 | Version Published
Journal Article Open

In the light of directed evolution: Pathways of adaptive protein evolution

  • 1. ROR icon California Institute of Technology

Abstract

Directed evolution is a widely-used engineering strategy for improving the stabilities or biochemical functions of proteins by repeated rounds of mutation and selection. These experiments offer empirical lessons about how proteins evolve in the face of clearly-defined laboratory selection pressures. Directed evolution has revealed that single amino acid mutations can enhance properties such as catalytic activity or stability and that adaptation can often occur through pathways consisting of sequential beneficial mutations. When there are no single mutations that improve a particular protein property experiments always find a wealth of mutations that are neutral with respect to the laboratory-defined measure of fitness. These neutral mutations can open new adaptive pathways by at least 2 different mechanisms. Functionally-neutral mutations can enhance a protein's stability, thereby increasing its tolerance for subsequent functionally beneficial but destabilizing mutations. They can also lead to changes in "promiscuous" functions that are not currently under selective pressure, but can subsequently become the starting points for the adaptive evolution of new functions. These lessons about the coupling between adaptive and neutral protein evolution in the laboratory offer insight into the evolution of proteins in nature.

Additional Information

Copyright ©2009 by the National Academy of Sciences. Author contributions: J.D.B. and F.H.A. wrote the paper. This paper results from the Arthur M. Sackler Colloquium of the National Academy of Sciences, "In the Light of Evolution III: Two Centuries of Darwin," held January 16–17, 2009, at the Arnold and Mabel Beckman Center of the National Academies of Sciences and Engineering in Irvine, CA. The complete program and audio files of most presentations are available on the NAS web site at www.nasonline.org/Sackler_Darwin. The authors declare no conflict of interest. This article is a PNAS Direct Submission. F.H.A. is supported by the U. S. Department of Energy and the U. S. Army. J.D.B. is supported by a Caltech Beckman Institute Postdoctoral Fellowship and the Irvington Institute Fellowship Program of the Cancer Research Institute.

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Identifiers

PMCID
PMC2702793
Eprint ID
15000
Resolver ID
CaltechAUTHORS:20090812-201735689

Funding

Department of Energy (DOE)
Army Research Office (ARO)
Caltech Beckman Institute
Cancer Research Institute

Dates

Created
2009-09-04
Created from EPrint's datestamp field
Updated
2021-11-08
Created from EPrint's last_modified field