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Bressler, S. G.

Publications and source records attributed to Bressler, S. G..

2 recordsLinked to original sources

Site-specific phosphorylation of Ser352 drives aggregation of Tau R4 under acidosis conditions

In Alzheimers disease, neurons undergo acidosis as their pH drops from [~]7.1 to [~]6.5. Here we elucidate the molecular mechanism of specific Tau aggregation only at this lower pH. We show that a specific phosphorylation event in the Tau R4 domain is coupled to this pH drop to drive a defined phase transition from condensates to fibrils. Using a combination of experimental and computational studies, our results demonstrate that site-specific phosphorylation of Ser352 is the molecular switch that induces aggregation of Tau only at the more acidic, disease-related pH. We designed and synthesized a phosphopeptide library covering all phosphorylation patterns of the Tau-R4 domain and tested its response to controlled acidification using an array of complementary biophysical methods. This revealed that only a single phosphorylation of Ser352 led to acid-driven aggregation of Tau-R4. At neutral pH, Tau-R4 with a phosphorylation on Ser352 formed liquid condensates. These condensates converted irreversibly into amyloid filaments as the pH gradually decreased towards the level associated with pathological acidosis. Using a combination of 3{superscript 1}P-and 1H - NMR, MD simulations and microscopy studies, we show that the mechanism by which the phosphorylation of Ser352 Tau R4 exerts its effects is based on the unique position of this residue within the protein structure. pSer352 is located at the inside of the tip of a {beta}-hairpin, pointing into the hydrophobic core of the amyloid fold. This buried position increases its effective pK{square}, resulting in compacting of the hairpin following pSer352 protonation upon acidification. This shortens the inter-sheet distance at this position and tightens the filament. We conclude that this single protonation event of the pSer352 phosphate is responsible for the macroscopic phase transition from condensates to aggregates. Our results provide the molecular explanation for the specific aggregation of Tau under the pathologically relevant acidic pH, which is substantially different from its behavior at neutral pH.

biochemistry↗

The role of specific phosphorylation patterns in the oligomerization of Tau-R4

Specific phosphorylation patterns control the activity of multiphosphorylated proteins. In case of the Tau protein, multiphosphorylation leads to the formation of different disease-related condensates and aggregates. Studying the role of these specific patterns at the protein level is crucial for understanding the molecular mechanisms of Tauopathies such as Alzheimers Disease. However, due to the extreme difficulty in obtaining recombinant proteins with specific phosphorylation patterns using kinase-based methods, it is practically impossible to study the connection between specific phosphorylation patterns and aggregation events at the protein level. Here we addressed this problem by reducing the system to the peptide level and studying the effect of specific phosphorylation patterns on the condensation and aggregation of a specific domain of Tau, R4 (residues 336-358). To achieve this aim, we have applied advanced methods to synthesize a library of multiphosphorylated peptides derived from R4. We showed that specific phosphorylation patterns stringently control the formation of Tau aggregates and condensates. Phosphorylation of Ser341 promoted aggregation of R4 while phosphorylation of Ser352 promoted its condensation. Interestingly, Ser356 phosphorylation inhibited both processes, which can be overridden by double-phosphorylation at Ser341/Ser352. Differences between the microenvironments of the phosphorylated residues lead to their different effects on R4 aggregation upon phosphorylation. Our results show that working at the domain level using advanced peptide synthesis methods is a highly useful and practical way to provide valuable information about the effects of post translational modifications on protein activity.

biochemistry↗