Atomic resolution protein allostery from the multi-state structure of a PDZ domain

Author:

Ashkinadze Dzmitry,Kadavath Harindranath,Pokharna Aditya,Chi Celestine N.,Friedmann Michael,Strotz Dean,Kumari Pratibha,Minges Martina,Cadalbert Riccardo,Königl Stefan,Güntert PeterORCID,Vögeli BeatORCID,Riek RolandORCID

Abstract

AbstractRecent methodological advances in solution NMR allow the determination of multi-state protein structures and provide insights into structurally and dynamically correlated protein sites at atomic resolution. This is demonstrated in the present work for the well-studied PDZ2 domain of protein human tyrosine phosphatase 1E for which protein allostery had been predicted. Two-state protein structures were calculated for both the free form and in complex with the RA-GEF2 peptide using the exact nuclear Overhauser effect (eNOE) method. In the apo protein, an allosteric conformational selection step comprising almost 60% of the domain was detected with an “open” ligand welcoming state and a “closed” state that obstructs the binding site by changing the distance between the β-sheet 2, α-helix 2, and sidechains of residues Lys38 and Lys72. The observed induced fit-type apo-holo structural rearrangements are in line with the previously published evolution-based analysis covering ~25% of the domain with only a partial overlap with the protein allostery of the open form. These presented structural studies highlight the presence of a dedicated highly optimized and complex dynamic interplay of the PDZ2 domain owed by the structure-dynamics landscape.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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1. Allosteric communication and signal transduction in proteins;Current Opinion in Structural Biology;2024-02

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3. Nuclear spin relaxation;Nuclear Magnetic Resonance;2023-11-29

4. Functional Protein Dynamics in a Crystal;2023-07-07

5. MDiGest: A Python package for describing allostery from molecular dynamics simulations;The Journal of Chemical Physics;2023-06-05

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