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Updated: Apr 25, 2026

Catalytic Scavenging of Plant Reactive Oxygen Species In Vivo by Anionic Cerium Oxide Nanoparticles
Published on: August 26, 2018
Electronic Structure-Engineered Vanadium Carbide MXene Nanocatalyst Enables Multimodal Reactive Species Scavenging
Huan Guo1, Zhe Hao1, Jinzheng Liu1
1Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Department of Chemistry, School of Science, State Key Laboratory of Synthetic Biology, Tianjin University, Tianjin 300072, China.
Abstract:
Efficient modulation of reactive oxygen and nitrogen species (ROS/RNS) is essential for restoring redox homeostasis and preserving stem cell functionality, yet it remains a major challenge in stem cell-based therapies. Here, we report an electronically coupled vanadium-based MXene nanocatalyst that leverages engineered platinum nanoparticles-MXene (Pt/V2C) interfacial interactions to achieve broad-spectrum ROS/RNS scavenging with markedly enhanced catalytic kinetics. The electronic modulation introduced through Pt anchoring increases active-site accessibility, accelerates electron transfer, and synergistically boosts enzyme-mimetic activities across multiple redox pathways. Pt/V2C demonstrates high catalytic stability over multiple cycles and preserves endogenous defense pathways without inducing cytotoxicity. Under oxidative stress, the nanocatalyst protects mesenchymal stem cells by suppressing reactive species-induced cell damage and restoring adhesion, proliferation, and migratory capacity while simultaneously promoting osteogenic differentiation. This study establishes a robust strategy for electronic-structure engineering of vanadium-based MXene biocatalysts and highlights their potential as high-performance platforms for stem cell protection and redox microenvironment regulation.
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