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Aug 2026

First Hydration Shell Integrity: Key to Protein Stability.

Protein stabilizers and denaturants can be used to elucidate the fundamental principles of hydration, which is crucial for biological functions and biotechnology. Despite decades of work, existing molecular models of such stabilizers and denaturants have not yet been fully validated because few experimental methods can detect water structures within the hydration shell in situ under ambient conditions. Here, we devise a molecular model guided by the application of chiral-selective vibrational sum frequency generation spectroscopy to a solvated protein. We show that urea disrupts the first hydration shell, weakening the protein's hydrogen bonds. Conversely, trimethylamine N-oxide resides outside the shell and stabilizes the protein by strengthening water hydrogen bonds within the first hydration shell. In mixtures, trimethylamine N-oxide drives urea out of the shell, neutralizing urea's destabilizing effect. We conclude that protein stability directly correlates with first hydration shell integrity. These insights have broad implications for understanding solvent effects on biocatalysis and heterogeneous cellular environments.

Zhijie Wang, Matthew Tremblay, Nicholas Hatzis-Schoch et al. · 0 citations
Jul 2026

Chain Collapse, Reduced Dielectric, and Water Release Drive Protein Phase Separation.

Biomolecular condensates represent unique microenvironments that organize intracellular biology and promote biochemical reactions. However, the biomolecular interactions driving condensate phase separation are often weak, transient, and heterogeneous. Investigating the structural biology and chemical properties of condensate interiors has therefore proven experimentally challenging, often requiring the use of perturbative probes. To overcome this challenge, we combine label-free optical scattering and vibrational spectroscopy approaches spanning ultraviolet, visible, mid-infrared, and terahertz wavelengths with deep-learning-based ensemble prediction of intrinsically disordered protein conformations. This suite of label-free approaches provides quantitative insights into protein-protein/protein-solvent interactions and the chemical properties of condensate interiors. Investigating the N-terminal domain of the RNA DEAD-box helicase 4 (DDX4), our experimental and computational results support a model of phase separation involving protein chain collapse, reduced dielectric, and water release. These molecular events are expected to enhance the strength of multivalent protein-protein interactions within condensates, creating a positive feedback loop important for condensate growth and phase separation.

Ethan A. Perets, Jacob A. Spies, Justin H. Cheong et al. · 0 citations