Skip to main navigation Skip to search Skip to main content

Wireless Electric Cues Mediate Autologous DPSC-Loaded Conductive Hydrogel Microspheres to Engineer the Immuno-Angiogenic Niche for Homologous Maxillofacial Bone Regeneration

  • Jiwei Sun
  • , Chao Xu
  • , Keqi Wo
  • , Yifan Wang
  • , Junyuan Zhang
  • , Haoqi Lei
  • , Xiaohan Wang
  • , Yunsong Shi
  • , Wenjie Fan
  • , Baoying Zhao
  • , Jinyu Wang
  • , Bin Su
  • , Cheng Yang
  • , Zhiqiang Luo
  • , Lili Chen

Research output: Contribution to journalArticlepeer-review

20 Scopus citations

Abstract

Stem cell therapy serves as an effective treatment for bone regeneration. Nevertheless, stem cells from bone marrow and peripheral blood are still lacking homologous properties. Dental pulp stem cells (DPSCs) are derived from neural crest, in coincidence with maxillofacial tissues, thus attracting great interest in in situ maxillofacial regenerative medicine. However, insufficient number and heterogenous alteration of seed cells retard further exploration of DPSC-based tissue engineering. Electric stimulation has recently attracted great interest in tissue regeneration. In this study, a novel DPSC-loaded conductive hydrogel microspheres integrated with wireless electric generator is fabricated. Application of exogenous electric cues can promote stemness maintaining and heterogeneity suppression for unpredictable differentiation of encapsulated DPSCs. Further investigations observe that electric signal fine-tunes regenerative niche by improvement on DPSC-mediated paracrine pattern, evidenced by enhanced angiogenic behavior and upregulated anti-inflammatory macrophage polarization. By wireless electric stimulation on implanted conductive hydrogel microspheres, loaded DPSCs facilitates the construction of immuno-angiogenic niche at early stage of tissue repair, and further contributes to advanced autologous mandibular bone defect regeneration. This novel strategy of DPSC-based tissue engineering exhibits promising translational and therapeutic potential for autologous maxillofacial tissue regeneration.

Original languageEnglish
Article number2303405
JournalAdvanced healthcare materials
Volume13
Issue number6
DOIs
StatePublished - 1 Mar 2024
Externally publishedYes

Keywords

  • autologous tissue engineering
  • dental pulp stem cells
  • immuno-angiogenic niches
  • wireless electric cues

Fingerprint

Dive into the research topics of 'Wireless Electric Cues Mediate Autologous DPSC-Loaded Conductive Hydrogel Microspheres to Engineer the Immuno-Angiogenic Niche for Homologous Maxillofacial Bone Regeneration'. Together they form a unique fingerprint.

Cite this