The hyperglycemic microenvironment of diabetes inevitably leads to the accumulated reactive oxygen species (ROS) and impairs the function of stem cells, thereby impeding the process of osseointegration after implant placement. In this study, a self-assembled metal-phenolic nanozyme coating is presented for alleviating diabetic oxidative stress and improving osseointegration at implant interfaces. The antioxidant-like enzyme activity is induced by phenolic ligand-metal charge transfer (LMCT) during the coordination of epigallocatechin-3-gallate (EGCG) with copper phosphate nanosheets (Cu NS). The metal-phenolic nanozyme biointerfaces exhibits scavenging activity against a range of free radicals and facilitated the adhesion, migration, and osteogenic differentiation of stem cells, thereby enhancing the osseointegration of implants in diabetic rats. Additionally, the nanozyme coating strategy inhibits bacterial invasion and supports the adhesion of soft tissue cells. This study provides a prospective approach for surface modification to safeguard and enhance the osseointegration of implants in diabetic subjects.

Download full-text PDF

Source
http://dx.doi.org/10.1002/adhm.202404804DOI Listing

Publication Analysis

Top Keywords

metal-phenolic nanozyme
12
stem cells
12
nanozyme biointerfaces
8
osseointegration implant
8
nanozyme coating
8
osseointegration implants
8
implants diabetic
8
osseointegration
5
situ assembled
4
assembled metal-phenolic
4

Similar Publications

Conventional wound dressings for infected diabetic wounds (IDWs) typically target only the wound surface, often neglecting the need for multifunctional therapies that address deeper tissue layers, resulting in less effective treatment outcomes. Emerging research suggests that a comprehensive approach to IDW therapy should involve the transdermal delivery of therapeutic agents capable of staged bacterial eradication, reactive oxygen species (ROS) scavenging, and angiogenesis. This study introduces a novel metal-phenolic nanozyme, CuTA@MnO nanoflake, designed for transdermal delivery in IDW therapy.

View Article and Find Full Text PDF

The hyperglycemic microenvironment of diabetes inevitably leads to the accumulated reactive oxygen species (ROS) and impairs the function of stem cells, thereby impeding the process of osseointegration after implant placement. In this study, a self-assembled metal-phenolic nanozyme coating is presented for alleviating diabetic oxidative stress and improving osseointegration at implant interfaces. The antioxidant-like enzyme activity is induced by phenolic ligand-metal charge transfer (LMCT) during the coordination of epigallocatechin-3-gallate (EGCG) with copper phosphate nanosheets (Cu NS).

View Article and Find Full Text PDF

Fe-coordinated carbon dots with single atom nanozyme catalytic activity for synergistic catalytic/chemo-therapy in breast cancer.

Int J Biol Macromol

December 2024

Clinical Medical College of Guilin Medical University, Guilin, Guangxi 541199, No.1 Zhiyuan Road, China; Department of Radiology, Liuzhou People's Hospital Affiliated to Guangxi Medical University, Liuzhou, Guangxi 545006, No.8 Wenchang Road, China. Electronic address:

Single atom nanozyme (SAzyme) based on carbon dots (CDs) has showed great potential in oncotherapy via ultrasmall size-reinforced atomically dispersed catalytic sites. However, its curative effect is still unsatisfactory due to complex tumor microenvironment and intrinsic resistance. Herein, a coordinated carbon dots (CCDs)-integrated ZIF-8 nanoassembly (Ru/CCDs-PTX@ZIF) was constructed by loading paclitaxel and coating with rutin for synergistic catalytic/chemotherapy.

View Article and Find Full Text PDF
Article Synopsis
  • Ulcerative colitis (UC) causes inflammation in the gastrointestinal tract, but current treatments struggle to effectively manage oxidative stress, inflammation, and gut health.
  • A new metal-phenolic nanozyme (Cur-Fe) has been created, demonstrating significant anti-inflammatory and antioxidant effects in a lab setting, which could help maintain cellular balance.
  • By incorporating Cur-Fe into a biomimetic form (CF@EM) modeled after a beneficial gut bacteria, this new treatment showed promise in restoring gut health and reducing inflammation in animal models without major toxic effects.
View Article and Find Full Text PDF

Biomolecules play vital roles in many biological processes and diseases, making their identification crucial. Herein, we present a colorimetric sensing method for detecting biomolecules like cysteine (Cys), homocysteine (Hcy), and glutathione (GSH). This approach is based on a reaction system whereby colorless 3,3',5,5'-tetramethylbenzidine (TMB) undergoes catalytic oxidation to form blue-colored oxidized TMB (ox-TMB) in the presence of hydrogen peroxide (HO), utilizing the peroxidase and catalase-mimicking activities of metal-phenolic coordination frameworks (MPNs) of Cu-TA, Co-TA, and Fe-TA nanospheres.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!