Communication between protein surfaces and their buried cores is central to protein structure and function, yet this phenomenon remains challenging to predict and control at high resolution. Changes in the protonation of surface ionizable residues communicate with the hydrophobic core, for example, in diverse pH-dependent protein functions. Hisactophilin, a histidine-rich actin- and membrane-binding protein, provides a general model for exploring such communication as it exhibits a finely tuned pH-regulated myristoyl-switching function. Upon reversible proton binding, the myristoyl group shifts between being sequestered in the hydrophobic core and more solvent accessible. In the current study we utilize experimental and computational approaches we uncover how binding of ∼1.5 net protons alters electrostatic interactions involving ionizable residues distributed across much of the protein surface. These changes are transmitted to the hydrophobic core through dynamic communities of ionizable and hydrophobic residues which substantially rearrange upon switching. The effects of mutating individual ionizable residues are weaker than those of core hydrophobic residues, and only combined mutation of multiple ionizable residues caused substantial functional change. Together, these results reveal how communication between surface ionizable residues and the hydrophobic core is mediated by extensive interaction networks that reorganize in response to changes in protonation. These results may provide general insights for understanding protein cooperativity and the coupling of surface and core residues in protein function, disease, evolution, engineering, and design. Significance Statement How changes on the protein surface, such as proton binding to ionizable amino acids, are communicated to the protein core to regulate protein stability and function remains ill-defined. Synthesis of experimental and computational analyses resolves the distributed networks of surface ionizable residue interactions coupled to the hydrophobic core that control pH-dependent myristoyl switching in hisactophilin. Small changes in protonation that create and alleviate local electrostatic repulsion give rise to protein-wide changes in fluctuating surface-core interactions. This distributed electrostatics-core coupling mechanism may help explain the often underrecognized and long-range impacts of ionizable residues in proteins and provide a framework for interpreting the effects of mutations in fundamental and applied protein science.
Iain M.H. McDonald, L. Socas, Max Walton-Raaby et al.· bioRxiv· 0 citations
Tau is an intrinsically disordered protein that binds and stabilizes the microtubules (MTs) of neurons. Abnormal phosphorylation of tau is hypothesized to cause its dissociation from MTs, leading to aggregation and fibril formation, hallmarks of neurodegenerative disorders. With 85 phosphorylation sites, it remains unclear which specific sites promotes and stabilizes fibril formation. Previous studies using techniques such as pseudo-phosphorylation and semi-synthetic strategies have yielded fibrils that often differ from structurally from those observed in patients. In this study, we used molecular dynamics simulations to investigate the effect of site-specific phosphorylation at S316, S320, S324, S341, S352, and S356 on all strands of tau paired helical filaments (PHFs), the predominant fibril form found in Alzheimer’s patients. We characterized the structural and dynamic properties of the fibrils using analyses such as root mean square deviation (RMSD), root mean square fluctuation (RMSF), solvent-accessible surface area (SASA), hydrogen bond analysis, MM/GBSA binding free energy calculations, and per-residue energy decomposition. Our analyses revealed that site-specific phosphorylation affects PHF tau fibril stability in a strongly site-dependent manner. Notably, phosphorylation at S356 and S324 preserved structural features and inter-chain interaction energies comparable to the WT fibril, whereas phosphorylation at S316, S320, S341 and S352 induced greater structural perturbations and reduced fibril stability. Compared with the corresponding all-chain phosphorylated system, single-chain phosphorylation largely preserved fibrillar architecture and favorable inter-chain interactions, suggesting that mixed phosphorylated and non-phosphorylated fibrillar assemblies may remain structurally compatible. These findings provide molecular-level insights into how the site and extent of phosphorylation modulate the structural stability of PHF tau fibrils and may influence their interactions within heterogeneous fibrillar assemblies.
Sathish Dasari, S. Kalyaanamoorthy· Journal of Computational Bio...· 0 citations