Data from: Hydrogel delivery of demineralized bone matrix augmented with ROS-triggered biomineralization and Trb3 activation for enhanced bone regeneration
Data files
Aug 07, 2026 version files 66.72 KB
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Figure_1.xlsx
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Figure_2.xlsx
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Figure_3.xlsx
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Figure_4.xlsx
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Figure_5.xlsx
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Figure_6.xlsx
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README.md
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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.
Dataset DOI: 10.5061/dryad.prr4xgz1w
Description of the data and file structure
This dataset includes raw measurements of physical, chemical, and osteogenic properties of BP-based hydrogels incorporating DBM.
Files and variables
File: Figure_1.xlsx
Description: Physical and chemical properties of BP-based hydrogels. D) Compressive modulus of BP hydrogels with different BP/branched NLS ratios. K) Dose-dependent ROS-scavenging performance of BP-based hydrogels. L) ROS-triggered mineralization of BP hydrogels assessed by Alizarin Red S (ARS) staining.
File: Figure_2.xlsx
Description: Antioxidant activity of BP hydrogels. B) Evaluation of BP hydrogel cytoprotective effects under oxidative stress. D) Quantitative analysis of DCF-DA fluorescence demonstrates the potent cellular-level antioxidant activity of BP hydrogels. H) Quantitative analysis of ARS staining illustrates the enhanced mineralization by BP hydrogels.
File: Figure_3.xlsx
Description: Gene delivery and osteoinductive efficiency of BP hydrogels. B) Quantification of nuclear pDNA-Cy3 fluorescence intensity in BMSCs. D) BMSC proliferation in hydrogels containing different BP concentrations over 1, 4, and 7 days. Quantitative polymerase chain reaction (qPCR) analysis of osteogenic genes: F) alkaline phosphatase (ALP), G) runt-related transcription factor 2 (Runx2), and H) osteocalcin (OCN) in BMSCs encapsulated in hydrogels containing varying concentrations of BP.
File: Figure_4.xlsx
Description: Mechanical properties of BP/DBM hydrogels. D) Compressive modulus of BP/DBM hydrogels containing varying concentrations of DBM.
File: Figure_5.xlsx
Description: BP hydrogels loaded with DBM and Trb3 pDNA for the promotion of osteogenic differentiation. Osteogenic genes of B) ALP, C) Runx2, D) OCN, E) Trb3, and F) BMP-2 expressed in BMSCs were evaluated. Quantification of H) ALP activity and I) calcium mineral deposition. L) Western blot quantitative results demonstrate elevated Trb3 expression along with increased levels of pSmad1/5.
File: Figure_6.xlsx
Description: Osteogenic effects of BP multifunctional hydrogels in vivo. Quantification of B) relative new bone area, C) bone volume fraction (BV/TV), D) trabecular number, and E) bone mineral density.
