ArticleAdvanced science (Weinheim, Baden-Wurttemberg, Germany)2026
Asymmetry in Hydrophobicity Induces Electric Potential in Non-Charged Biomolecular Condensates.
Article in Advanced science (Weinheim, Baden-Wurttemberg, Germany), 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 5 papers.
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Who cites it
5 citing papers in PubMed.
- Biomolecular condensates can function as inherent catalysts.Molecular cell · 2026Article
- The emerging synergy of experimental and computational approaches for therapeutic modulation of biomolecular condensates.SLAS discovery : advancing life sciences R & D · 2026Review
- Biomolecular Condensates Act as Distinct Solvation Environments That Reshape Amino Acid pJournal of the American Chemical Society · 2026Article
- Origins of the Intrinsic Redox Activity of Biomolecular Condensates.Journal of the American Chemical Society · 2026Article
- Biomolecular Condensates Act as Distinct Solvation Environments that Reshape Amino Acid pKₐ Values.bioRxiv : the preprint server for biology · 2026Article
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Authors and funding
4 authors.
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Abstract
The capacity of biomolecular condensates to establish and modulate electrochemical equilibria is emerging as an important functioning mechanism in cellular biochemistry. However, the physical chemistry basis of the electric potentials arising from biomacromolecular phase transitions remains unclear. Here, we show that asymmetry in hydrophobicity, which is a generalizable feature in a condensate system, can directly encode an electric potential gradient between the dilute and the dense phases. We demonstrate that using a non-charged intrinsically disordered protein, ion-dependent kosmotropic effect can encode measurable pH and interphase potential gradients into condensate. All-atom molecular dynamics simulations further reveal that the distinct intrinsic transfer free energy of ions defines the ion partitioning capability of condensates via favorable interactions with protein backbones. The simulation also shows the existence of both interfacial and interphase electric potentials. These built-in potentials modulate the partitioning and reactivity of charged solutes, enabling non-enzymatic, potential-dependent chemistry within condensates. Our findings identify hydrophobic asymmetry as a simple and generalizable mechanism for charging biological matter, linking water activity and ion energetics to the emergent electrochemistry of condensates.
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