Exploring Protein-Peptide Binding Specificity through Computational Peptide Screening.

PLoS Comput Biol

Department of Astronomy and Theoretical Physics, Computational Biology and Biological Physics group, Lund University, Lund, Sweden.

Published: October 2013

AI Article Synopsis

  • The binding of short, disordered peptides to globular proteins is crucial for various cellular functions, such as signaling and immune responses, but their flexible nature makes it hard to understand how they interact specifically.
  • The authors propose a Monte Carlo-based method to efficiently calculate the thermodynamics of protein-peptide binding across multiple sequences at once, examining both the sequence and conformational aspects simultaneously.
  • Their approach is tested on three different peptide-binding proteins, successfully capturing known specificity profiles and providing insights into binding behaviors, while also exploring potential new peptide-binding sites on proteins.

Article Abstract

The binding of short disordered peptide stretches to globular protein domains is important for a wide range of cellular processes, including signal transduction, protein transport, and immune response. The often promiscuous nature of these interactions and the conformational flexibility of the peptide chain, sometimes even when bound, make the binding specificity of this type of protein interaction a challenge to understand. Here we develop and test a Monte Carlo-based procedure for calculating protein-peptide binding thermodynamics for many sequences in a single run. The method explores both peptide sequence and conformational space simultaneously by simulating a joint probability distribution which, in particular, makes searching through peptide sequence space computationally efficient. To test our method, we apply it to 3 different peptide-binding protein domains and test its ability to capture the experimentally determined specificity profiles. Insight into the molecular underpinnings of the observed specificities is obtained by analyzing the peptide conformational ensembles of a large number of binding-competent sequences. We also explore the possibility of using our method to discover new peptide-binding pockets on protein structures.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3812049PMC
http://dx.doi.org/10.1371/journal.pcbi.1003277DOI Listing

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