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February 13, 2026Nature Communications0 citationsOpen Access

Oxygen depletion in biomolecular condensates is dominated by macromolecular density

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AGAnkush GargCBChristopher BrasnettSMSiewert J. Marrink

Key Points

  • This research examines how oxygen interacts with biomolecular condensates formed by proteins.
  • Utilized microelectrodes for oxygen measurement
  • Employed phosphorescence lifetime imaging microscopy
  • Conducted molecular dynamics simulations
  • Varied sequences of intrinsically disordered repeat proteins
  • Oxygen is partially excluded from protein-based condensates
  • Oxygen concentration is inversely related to condensate protein density
  • Partitioning of oxygen does not correlate with hydrophobicity of the condensate
  • Findings suggest need to revise current understanding of small-molecule partitioning in condensates

Abstract

Biomolecular condensates are dynamic cellular compartments formed by the self-assembly of proteins and nucleic acids. Many metabolites partition into condensates based on their interactions with the macromolecular constituents; yet, whether gases behave similarly remains unknown. Here, we show that oxygen partitions into protein-based condensates formed by intrinsically disordered repeat proteins with systematically varied sequences. Using microelectrodes, phosphorescence lifetime imaging microscopy, and molecular dynamics simulations, we find that oxygen is partially excluded from the condensate, and its partitioning does not correlate with the condensate hydrophobicity. Instead, oxygen concentration is inversely related to condensate protein density. These results suggest that the prevailing theory of small-molecule partitioning into condensates has to be augmented to consider the concentration of macromolecules as a dominant factor in the absence of interactions between the metabolite and the condensate. Our results suggest that biomolecular condensates can generate a nanoscale oxygen gradient, potentially modulating the local availability of oxygen for biochemical reactions within the cell.

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Cite This Study

Garg et al. (2026) studied this question.

synapsesocial.com/papers/698ebedd85a1ff6a93016275https://doi.org/10.1038/s41467-026-69376-2
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