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Characterization of Promiscuous Binding of Phosphor Ligands to Breast-Cancer-Gene 1 (BRCA1) C-Terminal (BRCT): Molecular Dynamics, Free Energy, Entropy and Inhibitor Design.
- Source :
-
PLoS computational biology [PLoS Comput Biol] 2016 Aug 25; Vol. 12 (8), pp. e1005057. Date of Electronic Publication: 2016 Aug 25 (Print Publication: 2016). - Publication Year :
- 2016
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Abstract
- Inhibition of the protein-protein interaction (PPI) mediated by breast-cancer-gene 1 C-terminal (BRCT) is an attractive strategy to sensitize breast and ovarian cancers to chemotherapeutic agents that induce DNA damage. Such inhibitors could also be used for studies to understand the role of this PPI in DNA damage response. However, design of BRCT inhibitors is challenging because of the inherent flexibility associated with this domain. Several studies identified short phosphopeptides as tight BRCT binders. Here we investigated the thermodynamic properties of 18 phosphopeptides or peptide with phosphate mimic and three compounds with phosphate groups binding to BRCT to understand promiscuous molecular recognition and guide inhibitor design. We performed molecular dynamics (MD) simulations to investigate the interactions between inhibitors and BRCT and their dynamic behavior in the free and bound states. MD simulations revealed the key role of loops in altering the shape and size of the binding site to fit various ligands. The mining minima (M2) method was used for calculating binding free energy to explore the driving forces and the fine balance between configuration entropy loss and enthalpy gain. We designed a rigidified ligand, which showed unfavorable experimental binding affinity due to weakened enthalpy. This was because it lacked the ability to rearrange itself upon binding. Investigation of another phosphate group containing compound, C1, suggested that the entropy loss can be reduced by preventing significant narrowing of the energy well and introducing multiple new compound conformations in the bound states. From our computations, we designed an analog of C1 that introduced new intermolecular interactions to strengthen attractions while maintaining small entropic penalty. This study shows that flexible compounds do not always encounter larger entropy penalty, compared with other more rigid binders, and highlights a new strategy for inhibitor design.<br />Competing Interests: The authors have declared that no competing interests exist.
- Subjects :
- Antineoplastic Agents analysis
Antineoplastic Agents chemistry
Antineoplastic Agents metabolism
Entropy
Humans
Ligands
Protein Binding
Thermodynamics
BRCA1 Protein antagonists & inhibitors
BRCA1 Protein chemistry
BRCA1 Protein metabolism
Molecular Dynamics Simulation
Phosphopeptides analysis
Phosphopeptides chemistry
Phosphopeptides metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 1553-7358
- Volume :
- 12
- Issue :
- 8
- Database :
- MEDLINE
- Journal :
- PLoS computational biology
- Publication Type :
- Academic Journal
- Accession number :
- 27560145
- Full Text :
- https://doi.org/10.1371/journal.pcbi.1005057