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April 16, 2026Advanced Healthcare Materials0 citations

A Pathological Microenvironment–Responsive Catalytic Carbon Nanodots Release Platform Intercepting the ROS–Inflammation Cascade to Alleviate Intervertebral Disc Degeneration

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XLXiang LuoJXJiajun XieFYFlora Yan

Key Points

  • To develop a responsive delivery platform using carbon nanodots that intercepts oxidative stress and inflammation in intervertebral disc degeneration.
  • Developed a catalytic carbon nanodot delivery platform (PPOD@CeCDs) with dual cross-linking for responsiveness to pathological environments.
  • In vitro testing on nucleus pulposus cells to evaluate protective effects against oxidative injury and inflammation.
  • In vivo testing in a rat model by intradiscal injection of PPOD@CeCDs to assess effects on disc structure and matrix degradation.
  • PPOD@CeCDs protected NP cells from oxidative damage and reduced inflammation by modulating signaling pathways.
  • In vivo results showed significant mitigation of matrix degradation and promotion of structural restoration in degenerative discs.

Abstract

Localized oxidative stress and chronic inflammation driven by excessive accumulation of reactive oxygen species (ROS) represent central pathogenic forces that initiate and perpetuate the degenerative cascade underlying intervertebral disc degeneration (IVDD). Here, it is developed a pathological microenvironment-responsive catalytic carbon nanodot delivery platform (PPOD@CeCDs) featuring dual reversible covalent cross-linking mediated by phenylboronate ester and Schiff base bonds, which selectively senses the acidic and highly oxidative milieu characteristic of IVDD to enable on-demand release of cerium-doped carbon nanodots (CeCDs), thereby intercepting the ROS-driven inflammatory cascade at its oxidative origin. PPOD@CeCDs exhibits favorable injectability, controllable degradability, biocompatibility, and robust antioxidant activity, together with stable intradiscal retention and stimulus-responsive release under pathological conditions. In vitro, PPOD@CeCDs protects nucleus pulposus (NP) cells from oxidative injury, suppresses inflammation amplification by modulating the ROS-driven PI3K-Akt-NF-κB signaling axis, regulates macrophage polarization, and preserves extracellular matrix homeostasis. In a rat model of IVDD, intradiscal injection of PPOD@CeCDs mitigates matrix degradation and promotes structural restoration of degenerative discs. Collectively, by integrating a microenvironment-responsive hydrogel with catalytically active carbon nanodots, this strategy sustainably intercepts ROS-driven inflammatory cascades and offers a mechanistically defined, translationally promising therapeutic approach for IVDD.

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Cite This Study

Luo et al. (2026) studied this question.

synapsesocial.com/papers/69e07d8f2f7e8953b7cbe74ehttps://doi.org/10.1002/adhm.71151
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