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Weng, S. L.

Publications and source records attributed to Weng, S. L..

2 recordsLinked to original sources

Molecular Origins of pH Gradients in Charge-Regulated Biomolecular Condensates

Biomolecular condensates exhibit spontaneous electrochemical microenvironments characterized by asymmetric ion distributions and pH gradients that emerge from protein-sequence-dependent charge regulation. Despite their biological importance, mechanistic understanding of these microenvironments has been constrained by the absence of computationally tractable frameworks capable of treating proton exchange, counterion partitioning, and buffer equilibria on consistent thermodynamic footing. Here, we introduce the buffered Charge-Regulation Monte Carlo (b-CR-MC) framework, which couples grand-canonical exchange of ions and buffer species with explicit charge regulation of titratable residues. By extending the CR-MC ion-merging strategy to multicomponent reservoirs and employing the Restricted Primitive Model, b-CR-MC achieves computational efficiency while maintaining thermodynamic rigor, with quantitative agreement to the more expensive generalized G-RxMC approach. Applied to full-length FUS (net positive) and PGL-3 (net negative) under physiological conditions, the framework reveals sequence-dependent pH gradients: the dense phase of FUS exhibits an alkaline shift, while PGL-3 exhibits an acidic shift, in both cases driving the condensate interior toward the proteins isoelectric point. Slab-geometry simulations further resolve the Donnan potential and continuous ion profiles across the condensate interface, confirming the direction and magnitude of these electrochemical shifts. Additionally, we identify spatially resolved buffer depletion within dense phases, establishing that dynamic charge regulation is a primary determinant rather than a secondary correction to condensate electrochemistry. By establishing a sequence-resolved, thermodynamically consistent computational platform, b-CR-MC enables quantitative prediction of how mutations and post-translational modifications reprogram condensate microenvironments across biological and pathophysiological contexts.

biophysics↗

Elucidation of the molecular interaction network underlying full-length FUS conformational transitions and its phase separation using atomistic simulations

Fused in Sarcoma (FUS), a multi-domain RNA-binding protein, orchestrates cellular functions through liquid-liquid phase separation (LLPS), which promotes the formation of biomolecular condensates in vivo. While crucial to understanding cellular processes, an atomic-level view of the interdomain interactions associated with full-length (FL) FUS LLPS remains challenging due to its low solubility in vitro. Here, using all-atom (AA) molecular dynamics (MD) simulations, we examined the conformational dynamics and interdomain interactions of FL FUS in both dilute and condensed phases. Comparing two modern force fields (FFs) - Amber ff03ws and ff99SBws-STQ, we found that monomer simulation ensembles generated by both FFs exhibited qualitatively similar intramolecular interaction profiles dominated by intrinsically disordered regions (IDRs). While the two folded domains minimally participated in interdomain interactions, their stabilities significantly influenced the chain dimension and led to discrepancies compared to experimental data for both FFs. We observed that the Amber ff99SBws-STQ coupled with bond parameters adopted from the Zinc Amber force field (ZAFF) maintained stable folded domains and improved estimates of the chain dimensions. Finally, a microsecond-timescale simulation of FL FUS condensate revealed an extensive network of electrostatic interactions which are strongly correlated with those that modulate the dilute phase chain dimensions. Overall, insights from our all-atom simulations illuminate the interplay between folded domain stability and IDR interactions in modulating protein conformation and phase separation, advancing our understanding of FUS-related pathologies at the molecular level and aiding in the development of new therapeutics.

biophysics↗