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February 16, 2026Advanced Science2 citationsOpen Access

Dual‐Strategy Design of Heterojunction‐Enhanced Piezoelectric Hydrogels for Periodontitis Treatment

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QZQ Z ZhouSFShaojun FangCLChangyi Li

Key Points

  • The aim is to develop a multifunctional hydrogel that enhances bone regeneration under inflammatory conditions related to periodontitis.
  • Constructed a piezoelectric hydrogel with ZnO/ZnS heterojunctions and dual-salt integration.
  • Evaluated ionic conductivity and mechanical properties of the hydrogel.
  • Tested osteogenic differentiation of human periodontal ligament stem cells in vitro.
  • Conducted in vivo experiments using a rat model to assess bone repair and immune modulation.
  • Hydrogel generated stable voltage of approximately 150 mV under ultrasound activation.
  • Observed significant enhancement in the differentiation of hPDLSCs with upregulation of key osteogenesis markers.
  • Demonstrated restoration of alveolar bone architecture and reduction in osteoclast activity in a rat model.
  • Achieved polarization of macrophages towards the M2 phenotype, promoting immune remodeling.

Abstract

ABSTRACT Periodontitis is a widespread chronic inflammatory disease that threatens oral and systemic health by sustaining inflammation and accelerating alveolar bone loss. Although bioelectrical modulation can promote bone repair under inflammatory conditions, the coordinated regulation of electrical signaling, immunoregulation, and osteogenesis within an inflamed microenvironment remains a central challenge. Here, we report a multifunctional piezoelectric hydrogel system that combines heterojunction enhancement with dual‐salt synergy. In situ construction of ZnO/ZnS heterojunctions with oxygen vacancies amplifies the piezoelectric output of ZnO, while a polyvinyl alcohol (PVA) multinetwork integrated with magnesium chloride (MgCl 2 ) and trisodium citrate (Na 3 Ct) provides high ionic conductivity, mechanical robustness, and bioactivity, conferring excellent injectability and environmental adaptability. The composite hydrogel exhibited low impedance and high ionic conductivity (≈3.82 mS·cm − 1 ), generated a stable voltage of ≈150 mV under ultrasound activation, and maintained sensitive strain response under moist conditions. In vitro, the hydrogel markedly enhanced osteogenic differentiation of human periodontal ligament stem cells (hPDLSCs), with upregulation of Runx2, Col‐1, OPN, and OCN, and simultaneously drove macrophage polarization toward the M2 phenotype. A conditioned medium model further confirmed immune remodeling that alleviated the inflammatory burden of hPDLSCs. In a rat periodontitis model, the hydrogel restored alveolar bone architecture, reduced osteoclast activity, and rebalanced the M1/M2 ratio. Collectively, this piezoelectric hydrogel enhanced by heterojunctions provides a versatile platform for immunologically instructive regeneration of inflamed bone defects.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/6992b4779b75e639e9b09787https://doi.org/10.1002/advs.202600017
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