PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 20, 2026Advanced Materials3 citations

Engineering Asymmetric and Highly Exposed Fe Single‐Atom Nanozymes for siMMP13 Delivery and Ferroptosis Inhibition in Osteoarthritis Therapy

View Full Paper
JLJi LuoFYFeiying YinYLYuan Liang

Key Points

  • The aim is to develop an efficient delivery system for siMMP13 using Fe single-atom nanozymes to inhibit ferroptosis in osteoarthritis.
  • Developed a nitrogen-doped graphene-like nanomesh (NGM) loaded with asymmetric Fe single atoms.
  • Utilized a cartilage-targeting peptide (WYRGRL) to facilitate targeted delivery.
  • Conducted in vitro analysis to assess the inhibition of ferroptosis by measuring MMP13 and GPX4 levels.
  • Si-FeSA/NGM-W effectively downregulated MMP13 and upregulated GPX4 in cartilage cells.
  • Inhibition of ferroptosis led to restored mitochondrial function and reduced inflammation.
  • Mechanistically, the therapy suppressed the IL-17 pathway and enhanced glutathione metabolism.

Abstract

ABSTRACT Ferroptosis, driven by redox imbalance, plays a critical role in osteoarthritis (OA) progression. Although antioxidant nanozymes hold therapeutic potential, designing highly efficient and targeted systems to inhibit ferroptosis remains challenging. Here, we developed a 2D nitrogen‐doped graphene‐like nanomesh (NGM) loaded with asymmetric and highly exposed Fe single atoms, carried with the cartilage‐targeting WYRGRL peptide and siRNA (siMMP13) to form Fe SAzymes (si‐FeSA/NGM‐W) as ferroptosis inhibitors to alleviate OA. By mixed molten salt and Zn removal, exfoliating Zn‐ZIF into an ultrathin 2D hierarchical porous NGM with topological defects and hierarchical structure, we created a scaffold for anchoring asymmetric and highly exposed Fe single atoms. The abundant Fe‐N 4 ‐Cl coordination active sites then introduce strain and defects, which facilitate electron transfer, enhance radical adsorption, and lower reaction barriers, thereby augmenting multi‐enzyme (SOD/CAT/GPx) activities. This enables the functionalized si‐FeSA/NGM‐W to target cartilage, where it inhibits ferroptosis by downregulating MMP13, upregulating GPX4, restoring mitochondrial function, and modulating inflammation, ultimately achieving targeted OA therapy. Mechanistically, this process involves suppression of the IL‐17 pathway and enhancement of glutathione metabolism. This work presents a targeted nanozyme platform for precise OA therapy via ferroptosis inhibition.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Luo et al. (2026) studied this question.

synapsesocial.com/papers/6997fa5aad1d9b11b34537a1https://doi.org/10.1002/adma.202520951
Ask AI
Helpful
Bookmark
Share
View Full Paper