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Updated: Aug 10, 2026

Integrated Bone Formation Through In Vivo Endochondral Ossification Using Mesenchymal Stem Cells
Published on: July 14, 2023
Hydrogel delivery of demineralized bone matrix augmented with ROS-triggered biomineralization and Trb3 activation for
Zhi Li1, Changlu Xu1, Minjee Kang1
1Division of Oral and Systemic Health Sciences, School of Dentistry, University of California, Los Angeles, CA, 90095, USA.
Abstract:
Cranial bone defects remain a significant clinical challenge due to limited intrinsic regenerative capacity and an adverse oxidative microenvironment that impairs osteogenesis. Demineralized bone matrix (DBM), a clinically used bone graft substitute, exhibits osteoinductive potential but suffers from inconsistent performance and poor retention at defect sites. Here, we report a DBM-loaded injectable dynamic hydrogel that enhances bone regeneration through coordinated redox modulation, reactive oxygen species (ROS)-triggered biomineralization, and Tribbles homolog 3 (Trb3)-mediated osteogenic signaling. Black phosphorus (BP) nanosheets were functionalized with nuclear localization signal (NLS) peptides through a branched NLS-PEG construct formed by conjugating NLS to multi-armed PEG, followed by electrostatic assembly onto BP nanosheets and subsequent incorporation into a self-healing hydrogel network via dynamic Schiff base crosslinking. The hydrogel effectively scavenges excessive ROS and restores redox balance, while BP degradation releases phosphate to induce ROS-triggered biomineralization and promote a pro-osteogenic microenvironment. In parallel, the BP/NLS system enables gene delivery and nuclear localization of Trb3 plasmid DNA, leading to enhanced Trb3 expression and promotion of BMP/Smad-mediated osteogenic signaling. These combined effects significantly improve the osteoinductive capacity of DBM and promote enhanced bone regeneration in cranial defects. This study provides a strategy to enhance the therapeutic performance of clinically relevant bone graft materials through integrated microenvironment regulation and gene activation.
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