High-Performance Prevascularized SHED-Laden rGO@Hydrogel Achieves Optimized Diabetic Bone Defect Repair

  • Adv Sci (Weinh). 2026 May 7:e75524. doi: 10.1002/advs.75524.
Can Zhang  1 Yiyuan Kang  1  2 Shulin Lai  1 Chunyi Wang  1 Guixin He  1 Kehui Jian  1 Suhan Yin  1 Xiner Tan  1 Xinru Zhou  1 Wenjing Liu  1 Fujian Zhao  1 Jia Liu  1 Longquan Shao  1  2
Affiliations
  • 1. Stomatological Hospital, Southern Medical University, Guangzhou, China.
  • 2. Guangdong Provincial Key Laboratory of Construction and Detection in Tissue Engineering, Guangzhou, China.
Abstract

Diabetic bone defects repair is severely hindered by impaired angiogenesis and delayed osteogenesis. Conventional tissue-engineered scaffolds often fail to achieve effective vascularization due to the compromised angiogenic capacity of host endothelial cells in the hyperglycemic microenvironment. Here, we developed a prevascularized scaffold by encapsulating stem cells from human exfoliated deciduous teeth (SHED), which shared developmental origin to craniofacial bone, within a reduced graphene oxide (rGO)-integrated hydrogel. rGO significantly accelerated SHED-mediated formation of vascular networks in vitro. The scaffold's therapeutic efficacy was confirmed in a clinically relevant diabetic beagle dog mandibular defect model, which showed increased vascular density and accelerated bone regeneration. Mechanistic validation revealed that rGO activates the FAK-Src/RELA pathway to upregulate P4HA1, subsequently enhancing Collagen I synthesis and driving extracellular matrix (ECM) remodeling to create a pro-angiogenic niche. This study demonstrates that engineering the ECM with rGO is a novel strategy to accelerate prevascularization and bone repair in diabetic conditions.

Keywords
bone regeneration; diabetes; extracellular matrix; prevascularized scaffold; reduced graphene oxide; stem cells from the human exfoliated deciduous teeth.
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