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February 8, 2026Cell Regeneration0 citationsOpen Access

FRZB regulates the osteogenic differentiation of periodontal ligament stem cells in an inflammatory microenvironment through Wnt5a-mitochondrial axis

YSYuanmeng SuHWHoupeng WangTLTao Luo

Key Points

  • The study aims to understand how FRZB influences osteogenic differentiation of periodontal ligament stem cells in inflammatory conditions.
  • Isolated periodontal ligament stem cells from healthy teeth
  • Exposed PDLSCs to lipopolysaccharide to create an inflammatory environment
  • Evaluated Wnt signaling pathway molecules and mitochondrial function
  • Used gene transfection to create FRZB overexpression model
  • Inflammation impaired osteogenic differentiation and activated Wnt/β-catenin signaling
  • Observed mitochondrial dysfunction: reduced membrane potential and increased calcium and ROS levels
  • FRZB overexpression partially restored both mitochondrial function and osteogenic capacity of PDLSCs
  • Inflammation decreased FRZB expression, leading to impaired osteogenesis via disrupted signaling

Abstract

Abstract The Wnt signaling pathway critically regulates the osteogenic differentiation in periodontal ligament stem cells (PDLSCs). However, the functional contributions of this pathway under inflammatory conditions remain unclear. This study investigated the effect and underlying mechanisms of the FRZB–Wnt5a–mitochondrial axis on the osteogenic differentiation capacity of PDLSCs under inflammatory conditions. PDLSCs were isolated from healthy teeth and exposed to lipopolysaccharide (LPS) to mimic an inflammatory microenvironment. The Wnt pathway-related molecules were assessed, and the osteogenic differentiation capacity and mitochondrial function of PDLSCs were evaluated. To elucidate its regulatory role, we employed gene transfection to establish an FRZB (Frizzled-Related Protein) overexpression model. Results showed that inflammation significantly impaired osteogenic differentiation and activated Wnt/β-catenin signaling. Mitochondrial dysfunction was also observed, including reduced membrane potential, increased calcium and reactive oxygen species (ROS) levels, suppressed autophagic flux, and altered mitochondrial morphology. Notably, FRZB overexpression partially restored mitochondrial function and the osteogenic differentiation capacity of PDLSCs. These results demonstrated that FRZB serves as a pivotal regulator of osteogenic differentiation in PDLSCs. We found that inflammation downregulates FRZB expression, thereby activating Wnt/β-catenin signaling, which leads to mitochondrial dysfunction and ultimately impairs osteogenesis. These findings reveal a mechanism by which inflammation suppresses osteogenesis in PDLSCs and highlight FRZB as a promising therapeutic target for periodontitis.

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Cite This Study

Su et al. (2026) studied this question.

synapsesocial.com/papers/698828010fc35cd7a884728fhttps://doi.org/10.1186/s13619-026-00283-z
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