Related Experiment Video
Updated: Jan 20, 2026

Plasma Polishing as a New Polishing Option to Reduce the Surface Roughness of Porous Titanium Alloy for 3D Printing
Published on: April 28, 2023
Shikonin-loaded porous graphdiyne nanofilm on titanium surface for enhanced antibacterial activity and
Xiaojing Zhang1, Kexin Li1, Yingqi Liu1
1BRICS Joint Laboratory on Biomedical Materials, School of Materials and Energy, Southwest University, 400715, Chongqing, PR China.
Abstract:
Bacterial infection, peri-implant inflammation, and poor osseointegration are primary causes of failure in titanium (Ti)-based implants. Surface functionalization provides a simple and effective strategy to overcome these challenges. In this study, we developed a multifunctional coating based on porous graphdiyne (GDY) nanofilm loaded with shikonin (Skn). GDY was synthesized on Ti surfaces via a copper-catalyzed reaction to form a porous nanostructure. Following Skn loading, a composite layer of tannic acid (TA) and poly (N-isopropylacrylamide) (pNIPAM) was applied, resulting in the Ti-GDY@Skn-TP system. Upon near-infrared (NIR) irradiation, the GDY coating induced localized photothermal effects sufficient to eradicate bacteria. Concurrently, the thermo-responsive release of Skn suppressed early inflammation and promoted osseointegration by regulating macrophage polarization and inflammatory cytokine secretion. In vivo studies confirmed that Ti-GDY@Skn-TP implants effectively eliminated bacterial infections, attenuated acute inflammation, and enhanced bone tissue regeneration and implant integration. This multifunctional approach offers a promising strategy for the surface modification of Ti-based biomedical implants.
Related Concept Videos
06:12Plasma Polishing as a New Polishing Option to Reduce the Surface Roughness of Porous Titanium Alloy for 3D Printing
06:18A Novel Method to Determine the Longitudinal Antibacterial Activity of Drug-Eluting Materials
Determining the Antibacterial Efficacy of an Antibiotic-Loaded Polymeric Strip
14:31Bioelectric Analyses of an Osseointegrated Intelligent Implant Design System for Amputees
11:56Nanomechanics of Drug-target Interactions and Antibacterial Resistance Detection
13:11Using Flexible Gold-Titanium Reaction Cells to Simulate Pressure-Dependent Microbial Activity in the Context of Subsurface Biomining
