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March 13, 2026Biomedicines0 citationsOpen Access

Eupalinolide B Alleviates Oxidative Stress in LPS-Induced RAW264.7 Macrophages via Covalently Binding to PRDX4

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RZRuishen ZhugeJLJianru LiuYTYueming Tian

Key Points

  • This research aims to explore how Eupalinolide B affects oxidative stress in macrophages and its underlying mechanism.
  • Investigated the effects of Eupalinolide B on LPS-induced RAW264.7 macrophages.
  • Measured levels of reactive oxygen species, nitric oxide, malondialdehyde, and superoxide dismutase activity.
  • Used activity-based protein profiling to identify protein binding targets of EB.
  • Conducted labeling and competitive binding assays to confirm interactions with PRDX4.
  • Performed siRNA-mediated knockdown of PRDX4 to evaluate the effects on EB's antioxidant capabilities.
  • Eupalinolide B significantly reduced levels of reactive oxygen species, nitric oxide, and malondialdehyde.
  • EB enhanced superoxide dismutase activity and increased the glutathione (GSH/GSSG) ratio.
  • Identified PRDX4 as a key target with EB binding confirmed through biochemical assays.
  • Covalent binding of EB to Cys54 and Cys248 residues of PRDX4 was validated by mass spectrometry.
  • PRDX4 knockdown diminished the antioxidant effects of Eupalinolide B.

Abstract

Background/Objectives: Eupalinolide B (EB), a natural compound derived from Eupatorium lindleyanum DC, has demonstrated multiple pharmacological activities. However, its role in modulating oxidative stress remains incompletely understood. Methods: In this study, we investigated the antioxidant effect and underlying mechanism of EB in lipopolysaccharide (LPS)-induced RAW264.7 macrophages. Results: EB significantly attenuated LPS-induced oxidative stress as evidenced by reduced levels of intracellular reactive oxygen species (ROS), nitric oxide (NO), and malondialdehyde (MDA) alongside enhanced superoxide dismutase (SOD) activity and an increased reduced/oxidized glutathione (GSH/GSSG) ratio. Using activity-based protein profiling, we identified peroxiredoxin 4 (PRDX4) as a key binding target of EB. Direct interaction was confirmed through labeling and competitive binding assays with purified PRDX4 protein. High-resolution mass spectrometry revealed that EB covalently binds to Cys54 and Cys248 residues of PRDX4. Furthermore, EB treatment upregulated PRDX4 protein expression in LPS-stimulated RAW264.7 cells. siRNA-mediated knockdown of PRDX4 significantly blunted the antioxidant effects of EB, confirming the functional relevance of this target. Conclusions: Our findings demonstrate that EB alleviates LPS-induced oxidative stress in macrophages by covalently binding to and stabilizing PRDX4, thereby enhancing cellular antioxidant capacity. This study unveils a novel mechanism whereby a natural product enhances cellular antioxidant capacity by covalently stabilizing a key peroxidase, highlighting the potential of EB as a therapeutic agent and PRDX4 as a promising target for oxidative stress-related diseases.

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Cite This Study

Zhuge et al. (2026) studied this question.

synapsesocial.com/papers/69b3ab4c02a1e69014ccc079https://doi.org/10.3390/biomedicines14030629
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