4XD3 image
Deposition Date 2014-12-19
Release Date 2015-12-23
Last Version Date 2023-11-15
Entry Detail
PDB ID:
4XD3
Keywords:
Title:
Phosphotriesterase variant E3
Biological Source:
Source Organism:
Host Organism:
Method Details:
Experimental Method:
Resolution:
1.57 Å
R-Value Free:
0.20
R-Value Work:
0.17
R-Value Observed:
0.17
Space Group:
P 21 21 2
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:Phosphotriesterase variant PTE-E1
Chain IDs:A, B (auth: G)
Chain Length:333
Number of Molecules:2
Biological Source:Brevundimonas diminuta
Modified Residue
Compound ID Chain ID Parent Comp ID Details 2D Image
KCX A LYS modified residue
Primary Citation
The role of protein dynamics in the evolution of new enzyme function.
Nat.Chem.Biol. 12 944 950 (2016)
PMID: 27618189 DOI: 10.1038/nchembio.2175

Abstact

Enzymes must be ordered to allow the stabilization of transition states by their active sites, yet dynamic enough to adopt alternative conformations suited to other steps in their catalytic cycles. The biophysical principles that determine how specific protein dynamics evolve and how remote mutations affect catalytic activity are poorly understood. Here we examine a 'molecular fossil record' that was recently obtained during the laboratory evolution of a phosphotriesterase from Pseudomonas diminuta to an arylesterase. Analysis of the structures and dynamics of nine protein variants along this trajectory, and three rationally designed variants, reveals cycles of structural destabilization and repair, evolutionary pressure to 'freeze out' unproductive motions and sampling of distinct conformations with specific catalytic properties in bi-functional intermediates. This work establishes that changes to the conformational landscapes of proteins are an essential aspect of molecular evolution and that change in function can be achieved through enrichment of preexisting conformational sub-states.

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Primary Citation of related structures