Abstract
Protein-peptide interactions are vital for the cell. They mediate, inhibit or serve as structural components in nearly 40% of all
macromolecular interactions, and are often associated with diseases, making them interesting leads for protein drug design.
In recent years, large-scale technologies have enabled exhaustive studies on the peptide recognition preferences for a
number of peptide-binding domain families. Yet, the paucity of data regarding their molecular binding mechanisms
together with their inherent flexibility makes the structural prediction of protein-peptide interactions very challenging. This
leaves flexible docking as one of the few amenable computational techniques to model these complexes. We present here
an ensemble, flexible protein-peptide docking protocol that combines conformational selection and induced fit
mechanisms. Starting from an ensemble of three peptide conformations (extended, a-helix, polyproline-II), flexible docking
with HADDOCK generates 79.4% of high quality models for bound/unbound and 69.4% for unbound/unbound docking
when tested against the largest protein-peptide complexes benchmark dataset available to date. Conformational selection
at the rigid-body docking stage successfully recovers the most relevant conformation for a given protein-peptide complex
and the subsequent flexible refinement further improves the interface by up to 4.5 A°
interface RMSD. Cluster-based scoring
of the models results in a selection of near-native solutions in the top three for ,75% of the successfully predicted cases.
This unified conformational selection and induced fit approach to protein-peptide docking should open the route to the
modeling of challenging systems such as disorder-order transitions taking place upon binding, significantly expanding the
applicability limit of biomolecular interaction modeling by docking.
| Original language | English |
|---|---|
| Article number | e58769 |
| Pages (from-to) | 1-13 |
| Number of pages | 13 |
| Journal | PLoS One |
| Volume | 8 |
| Issue number | 3 |
| DOIs | |
| Publication status | Published - 2013 |
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