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March 28, 2026Journal of the American Chemical Society5 citationsOpen Access

Origins of the Intrinsic Redox Activity of Biomolecular Condensates

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WYWen YuTiangong UniversityYZYanrun ZhouWashington University in St. LouisLYLeshan YangWashington University in St. Louis

Key Points

  • This research aims to clarify how intrinsic redox activity arises in biomolecular condensates.
  • Utilized electron paramagnetic resonance to analyze redox activity.
  • Employed electrochemical potentiometry for measuring electron transfer.
  • Applied mass spectrometry for identifying reactive species.
  • Used confocal microscopy for observing microenvironment changes.
  • Discovered spontaneous tyrosine oxidation as an alternative redox pathway.
  • Identified the formation of reactive carbon and oxygen species in condensates.
  • Demonstrated proton-coupled electron transfer mechanisms impact condensate behaviors.

Abstract

How inherent redox activity arises in biomolecular condensates remains unclear. Unlike interfacial systems, such as water microdroplets, where water oxidation underpins redox chemistry, condensates comprise biomolecules that can potentially furnish alternative electron-transfer routes. Here, using electron paramagnetic resonance, electrochemical potentiometry, mass spectrometry, and confocal microscopy assays, we discovered that orthogonal to water oxidation, microenvironment-dependent spontaneous tyrosine oxidation encodes an alternative redox pathway. Through proton-coupled electron transfer, self-induced tyrosine autoxidation in condensates drives the formation of reactive carbon and oxygen species, providing a pathway in parallel to hydroxide oxidation for hydrogen peroxide formation in condensates. This self-induced redox pathway modulates nonequilibrium condensate behaviors, including responses to external chemical perturbations and evolution of the condensate interior microenvironment. By correlating condensate biomolecular composition with inherent redox activities, our work establishes a conceptual framework suggesting that condensate-dependent electron transfer can be critical to define the functions of condensates and deliver a new redox mechanism for cell biology.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/69c770f78bbfbc51511e0c8dhttps://doi.org/10.1021/jacs.6c01750
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