miR-130b participates in wear particle-induced inflammation and osteolysis via FOXF2/NF-κB pathway

De-Zhi Zheng1, Yan-Min Bu1, Lei Wang1

  • 1a Department of Joint Surgery , Tianjin Hospital , Tianjin , P.R. China.

Abstract

Insights

This study reveals the miR-130b/FOXF2/NF-κB pathway is involved in wear particle-induced osteolysis. Targeting this pathway offers new therapeutic strategies for periprosthetic osteolysis.

Area of Science:

  • Biomedical Engineering
  • Molecular Biology
  • Immunology

Background:

  • Periprosthetic osteolysis is a significant complication of artificial joint replacements.
  • Wear particles generated from implants trigger inflammatory responses and bone resorption.
  • Understanding the molecular mechanisms underlying particle-induced osteolysis is crucial for developing effective treatments.

Purpose of the Study:

  • To elucidate the signaling pathway mediated by microRNA-130b (miR-130b) in wear particle-induced inflammation and osteolysis.
  • To investigate the regulatory role of miR-130b on forkhead box F2 (FOXF2) and its downstream effects on the nuclear factor-kappa B (NF-κB) pathway.

Main Methods:

  • Established a particle-induced osteolysis (PIO) mouse model.
  • Quantified inflammatory cytokine levels (TNF-α, IL-1β, IL-6, IL-10) using ELISA.
  • Measured miR-130b and FOXF2 mRNA expression via qRT-PCR.
  • Assessed protein levels of FOXF2, p-p65, and p-IκB using Western blot.
  • Confirmed miR-130b regulation of FOXF2 using a luciferase reporter assay.

Main Results:

  • PIO mice exhibited elevated TNF-α, IL-1β, IL-6, miR-130b, and p-p65, with decreased IL-10 and FOXF2.
  • miR-130b inhibition reduced pro-inflammatory cytokines and increased IL-10 in vitro.
  • FOXF2 was identified as a direct target of miR-130b; FOXF2 knockdown mimicked the pro-inflammatory effects.
  • NF-κB inhibition further modulated cytokine profiles, confirming pathway involvement.

Conclusions:

  • The miR-130b/FOXF2/NF-κB signaling pathway plays a critical role in wear particle-induced osteolysis.
  • This pathway represents a novel therapeutic target for treating periprosthetic osteolysis.
  • Findings provide new insights into the molecular pathogenesis of osteolysis.

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