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March 25, 2026Advanced Materials6 citations

Osteogenic Nanozymes for Diabetic Bone Regeneration via Synergistic Antioxidant and Osteoinductive Functions

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ZMZhaoxu MengZZZhen ZengZZZhaowenbin Zhang

Key Points

  • To investigate the potential of copper-doped Prussian blue nanozymes for promoting bone regeneration in diabetic conditions.
  • Designed ion-doped Prussian blue nanozymes with osteoinductive capacity.
  • Evaluated CuPB nanozyme's ability to scavenge reactive oxygen species and suppress inflammation.
  • Tested the effectiveness of CuPB in type II diabetic rat models with periodontitis-associated alveolar bone loss and cranial defects.
  • CuPB effectively scavenges excessive reactive oxygen species and promotes osteogenic differentiation.
  • Increased bone regeneration observed in diabetic rats treated with CuPB formulations and scaffolds.
  • CuPB nanozymes show optimal performance in enhancing osteogenic potential compared to classical antioxidant PB.

Abstract

Bone regeneration under diabetic conditions remains a formidable challenge, predominantly due to persistent oxidative stress, chronic inflammation, and impaired osteogenic potential of stem cells. Nanozymes have been widely employed to modulate oxidative stress and inflammation, and are considered promising candidates for diabetic bone regeneration. However, they have a limited osteogenic capacity, which substantially hinders their direct application in bone repair. Here, a series of osteogenic ion-doped Prussian blue (PB) nanozymes was designed to endow classical antioxidant PB with osteoinductive capacity, among which copper-doped PB (CuPB) exhibits optimal performance. The screened CuPB nanozyme effectively scavenges various types of excessive reactive oxygen species, suppresses inflammation, and simultaneously promotes osteogenic differentiation via activation of the phosphoinositide 3-kinase/protein kinase B (PI3K-Akt) pathway. In type II diabetic rats, both the CuPB nanoparticulate formulation and the CuPB-functionalized three-dimensional scaffold pronouncedly enhance bone regeneration in models of periodontitis-associated alveolar bone loss and cranial defects, respectively. This study establishes an integrated "osteogenic nanozyme" platform that synergistically couples antioxidant and osteoinductive functions.

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Cite This Study

Meng et al. (2026) studied this question.

synapsesocial.com/papers/69c37adcb34aaaeb1a67cb96https://doi.org/10.1002/adma.72833
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