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Dynamic Allostery in PLCγ1 and Its Modulation by a Cancer Mutation Revealed by MD Simulation and NMR
Hans Koss1, Tom D Bunney2, Diego Esposito3
1Institute of Structural and Molecular Biology, Division of Biosciences, University College London, London, United Kingdom; The Francis Crick Institute, London, United Kingdom.
Abstract:
Phosphatidylinositol phospholipase Cγ (PLCγ) is an intracellular membrane-associated second-messenger signaling protein activated by tyrosine kinases such as fibroblast growth factor receptor 1. PLCγ contains the regulatory γ-specific array (γSA) comprising a tandem Src homology 2 (SH2) pair, an SH3 domain, and a split pleckstrin homology domain. Binding of an activated growth factor receptor to γSA leads to Tyr783 phosphorylation and consequent PLCγ activation. Several disease-relevant mutations in γSA have been identified; all lead to elevated phospholipase activity. In this work, we describe an allosteric mechanism that connects the Tyr783 phosphorylation site to the nSH2-cSH2 junction and involves dynamic interactions between the cSH2-SH3 linker and cSH2. Molecular dynamics simulations of the tandem SH2 protein suggest that Tyr783 phosphorylation is communicated to the nSH2-cSH2 junction by modulating cSH2 binding to sections of the cSH2-SH3 linker. NMR chemical shift perturbation analyses for designed tandem SH2 constructs reveal combined fast and slow dynamic processes that can be attributed to allosteric communication involving these regions of the protein, establishing an example in which complex N-site exchange can be directly inferred from 1H,15N-HSQC spectra. Furthermore, in tandem SH2 and γSA constructs, molecular dynamics and NMR results show that the Arg687Trp mutant in PLCγ1 (equivalent to the cancer mutation Arg665Trp in PLCγ2) perturbs the dynamic allosteric pathway. This combined experimental and computational study reveals a rare example of multistate kinetics involved in a dynamic allosteric process that is modulated in the context of a disease-relevant mutation. The allosteric influences and the weakened binding of the cSH2-SH3 linker to cSH2 should be taken into account in any more holistic investigation of PLCγ regulation.
Insights
Phosphatidylinositol phospholipase Cγ (PLCγ) activation involves an allosteric pathway connecting Tyr783 phosphorylation to the tandem SH2 domain. Disease mutations disrupt this pathway, impacting PLCγ regulation and phospholipase activity.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Phosphatidylinositol phospholipase Cγ (PLCγ) is a key signaling protein activated by growth factor receptors.
- PLCγ activation is regulated by phosphorylation at Tyr783 within its γ-specific array (γSA).
- Disease-associated mutations in γSA lead to elevated PLCγ activity.
Purpose of the Study:
- To elucidate the allosteric mechanism connecting Tyr783 phosphorylation to the PLCγ tandem SH2 domain.
- To investigate the role of dynamic interactions in allosteric communication within PLCγ.
- To analyze the impact of disease-relevant mutations on PLCγ's allosteric regulation.
Main Methods:
- Molecular dynamics simulations of PLCγ tandem SH2 constructs.
- NMR chemical shift perturbation (CSP) analyses using designed tandem SH2 and γSA constructs.
- Integration of computational and experimental approaches to study protein dynamics.
Main Results:
- Identified an allosteric mechanism where Tyr783 phosphorylation modulates interactions between the cSH2-SH3 linker and cSH2 domain.
- NMR data revealed complex fast and slow dynamic processes indicative of allosteric communication.
- The Arg687Trp mutation (PLCγ1) was shown to perturb the identified allosteric pathway, affecting protein dynamics.
Conclusions:
- PLCγ regulation involves a dynamic allosteric process modulated by phosphorylation and influenced by disease mutations.
- The findings highlight the importance of considering allosteric effects and linker dynamics in PLCγ regulation.
- This study provides insights into multistate kinetics in allosteric regulation within the context of disease-related mutations.
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