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Updated: Jan 9, 2026

Time-resolved ElectroSpray Ionization Hydrogen-deuterium Exchange Mass Spectrometry for Studying Protein Structure and Dynamics
Published on: April 17, 2017
Unveiling the effect of phosphorylation and phosphomimetics on the structural and aggregation properties of the
Tanguy Leyder1, Julien Mignon1, Emma Bongiovanni2
1Laboratoire de Chimie Physique des Biomolécules, UCPTS, University of Namur, 5000, Namur, Belgium; Namur Institute of Structured Matter (NISM), University of Namur, 5000, Namur, Belgium; Namur Research Institute for Life Sciences (NARILIS), University of Namur, 5000, Namur, Belgium.
Abstract:
DPF3a is a human epigenetic regulator involved in chromatin remodelling, cell division, and ciliogenesis. This protein is deregulated in various cancers and neurodegenerative diseases. In our previous work, DPF3a has been described as an amyloidogenic intrinsically disordered protein (IDP). While the casein kinase 2 (CK2) can phosphorylate DPF3a at S138 (pS138), phosphorylation of DPF3a at S348 (pS348) by CK2 has been linked to cardiac hypertrophy. However, no structural information is available on phosphorylated DPF3a. In this study, we investigated the effect of phosphorylation on DPF3a structural and aggregation properties. Two single-mutated phosphomimetics (S138E and S348E) were characterised in vitro and compared to DPF3a WT, while in silico analyses were performed on pS138 and pS348 to assess structural changes at the molecular level. Circular dichroism and fluorescence spectroscopy revealed that both phosphomimetics are hybrid IDPs, with increased turn and antiparallel β-sheet content as well as more buried aromatic residues compared to DPF3a WT, suggesting conformational rearrangements and a more folded N-terminal region. In silico characterisation supported these results, showing that phosphorylation of S138 and S348 induce extended conformation, especially the C-terminal extremity, due to electrostatic repulsion, while local folding occurs due to a proximity with arginine and lysine residues. Complementarily, MD simulations were also performed on phosphomimetics. The resulting analyses revealed trends similar to those observed for pDPF3a, confirming that phosphomimetics faithfully reproduce the structural effects of DPF3a phosphorylation. Furthermore, spectroscopic and microscopic analyses unveiled that S138E and S348E exhibit slower fibrillation kinetics compared to DPF3a WT involving distinct aggregation mechanisms.
Insights
Phosphorylation alters the structure and aggregation of DPF3a, an intrinsically disordered protein linked to disease. This study reveals how specific phosphorylation sites affect its folding and fibrillation kinetics.
Area of Science:
- Biochemistry
- Structural Biology
- Epigenetics
Background:
- DPF3a is a human epigenetic regulator implicated in chromatin remodeling, cell division, and ciliogenesis.
- Dysregulation of DPF3a is associated with cancers and neurodegenerative diseases.
- DPF3a is an amyloidogenic intrinsically disordered protein (IDP) previously characterized in our lab.
Purpose of the Study:
- To investigate the structural and aggregation consequences of DPF3a phosphorylation.
- To compare the properties of wild-type DPF3a with phosphomimetic mutants (S138E and S348E).
- To elucidate the molecular mechanisms underlying phosphorylation-induced structural changes.
Main Methods:
- In vitro characterization using circular dichroism and fluorescence spectroscopy.
- In silico analyses including molecular dynamics (MD) simulations.
- Spectroscopic and microscopic analyses of fibrillation kinetics.
Main Results:
- Phosphomimetic mutants (S138E, S348E) exhibit increased turn and antiparallel β-sheet content, indicating conformational rearrangements.
- In silico studies show phosphorylation induces extended conformations and local folding due to electrostatic interactions.
- S138E and S348E mutants display slower fibrillation kinetics and distinct aggregation mechanisms compared to wild-type DPF3a.
Conclusions:
- Phosphorylation significantly alters DPF3a's structural ensemble and aggregation propensity.
- Phosphomimetic mutants serve as reliable models for studying phosphorylation effects on DPF3a.
- Understanding these phosphorylation-dependent changes is crucial for deciphering DPF3a's role in disease pathogenesis.
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