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Synergistic Allostery in Multiligand-Protein Interactions.
Ghode, Abhijeet; Gross, Lissy Z F; Tee, Wei-Ven; Guarnera, Enrico; Berezovsky, Igor N; Biondi, Ricardo M; Anand, Ganesh S.
Affiliation
  • Ghode A; Department of Biological Sciences, National University of Singapore, Singapore.
  • Gross LZF; Instituto de Investigación en Biomedicina de Buenos Aires - CONICET - Partner Institute of the Max Planck Society, Buenos Aires, Argentina.
  • Tee WV; Department of Biological Sciences, National University of Singapore, Singapore; Bioinformatics Institute, Agency for Science, Technology and Research, Matrix, Singapore.
  • Guarnera E; Bioinformatics Institute, Agency for Science, Technology and Research, Matrix, Singapore.
  • Berezovsky IN; Department of Biological Sciences, National University of Singapore, Singapore; Bioinformatics Institute, Agency for Science, Technology and Research, Matrix, Singapore.
  • Biondi RM; Instituto de Investigación en Biomedicina de Buenos Aires - CONICET - Partner Institute of the Max Planck Society, Buenos Aires, Argentina.
  • Anand GS; Department of Biological Sciences, National University of Singapore, Singapore. Electronic address: dbsgsa@nus.edu.sg.
Biophys J ; 119(9): 1833-1848, 2020 11 03.
Article in En | MEDLINE | ID: mdl-33086047
Amide hydrogen-deuterium exchange mass spectrometry is powerful for describing combinatorial coupling effects of a cooperative ligand pair binding at noncontiguous sites: adenosine at the ATP-pocket and a docking peptide (PIFtide) at the PIF-pocket, on a model protein kinase PDK1. Binding of two ligands to PDK1 reveal multiple hotspots of synergistic allostery with cumulative effects greater than the sum of individual effects mediated by each ligand. We quantified this synergism and ranked these hotspots using a difference in deuteration-based approach, which showed that the strongest synergistic effects were observed at three of the critical catalytic loci of kinases: the αB-αC helices, and HRD-motif loop, and DFG-motif. Additionally, we observed weaker synergistic effects at a distal GHI-subdomain locus. Synergistic changes in deuterium exchange observed at a distal site but not at the intermediate sites of the large lobe of the kinase reveals allosteric propagation in proteins to operate through two modes. Direct electrostatic interactions between polar and charged amino acids that mediate targeted relay of allosteric signals, and diffused relay of allosteric signals through soft matter-like hydrophobic core amino acids. Furthermore, we provide evidence that the conserved ß-3 strand lysine of protein kinases (Lys111 of PDK1) functions as an integrator node to coordinate allosteric coupling of the two ligand-binding sites. It maintains indirect interactions with the ATP-pocket and mediates a critical salt bridge with a glutamate (Glu130) of αC helix, which is conserved across all kinases. In summary, allosteric propagation in cooperative, dual-liganded enzyme targets is bidirectional and synergistic and offers a strategy for combinatorial drug development.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Peptides / Protein Kinases Language: En Journal: Biophys J Year: 2020 Document type: Article Affiliation country: Singapore Country of publication: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Peptides / Protein Kinases Language: En Journal: Biophys J Year: 2020 Document type: Article Affiliation country: Singapore Country of publication: United States