Biomimetic Surface Nanoengineering of Biodegradable Zn‐Based Membranes Enables Phase‐Specific Metal Ion Delivery for Synergistic Anti‐Infection and Bone Regeneration

K Kai Chen A Anqi Tao (Department of Periodontology Peking University School and Hospital of Stomatology National Center of Stomatology National Clinical Research Center for Oral Diseases National Engineering Laboratory for Digital and Material Technology of Stomatology Beijing Key Laboratory of Digital Stomatology Beijing China) J Jiale Dong X Xuenan Gu (Key Laboratory of Biomechanics and Mechanobiology (Beihang University) Ministry of Education Beijing Advanced Innovation Center for Biomedical Engineering School of Biological Science and Medical Engineering Beihang University Beijing China) L Li Zhao C Chenyang Huang Y Yu Qin J Jiahui Shi (Department of Medicinal Chemistry, School of Pharmacy) L Lingtong Kong (Key Laboratory of Colloid and Interface Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, State Key Laboratory of Crystal Material, Shandong University, Jinan 250100, China) W Wenjie Hu Y Yufeng Zheng

Abstract

ABSTRACT Guided bone regeneration (GBR) membranes that provide sound osteogenic activity while also providing effective bacteriostatic characteristics are an unmet therapeutic need for alveolar ridge enhancement. While biodegradable zinc (Zn)‐based metals have tremendous potential as barrier membrane materials, their concentration‐dependent duality of Zn 2+ actions poses a crucial therapeutic problem. At low levels, Zn 2+ shows constrained osteoinductive capabilities; at high levels, it has strong antibacterial effects but may reduce cell viability. To resolve this therapeutic paradox, we engineered a biomimetic polydopamine (PDA)‐based nanohybrid coating with precisely controlled Cu 2+ concentrations (0–0.2 m M ) on pure Zn membranes. Our findings revealed three significant functional advantages of this membrane system: Broad‐spectrum antibacterial effectiveness against bacterial microorganisms via synergistic Zn 2+ /Cu 2+ release, damaging bacterial membranes and reducing biofilm formation. Mechanical stability resists deformation‐induced microcracks while showing compatibility with the bone healing timeline. Ion release kinetics are phase‐specific and adjust dynamically to bone healing stages, with quick initial release for infection control, cumulative release during osteogenesis/angiogenesis, and sustained release for mineralization. Its wide use is due to balanced degradation and ion levels, tackling infection, durability, and bone growth. This simple one‐step method gives a practical, multifunctional solution for complex alveolar defects with easy scaling up.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 08, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

K

Kai Chen

A

Anqi Tao

Department of Periodontology Peking University School and Hospital of Stomatology National Center of Stomatology National Clinical Research Center for Oral Diseases National Engineering Laboratory for Digital and Material Technology of Stomatology Beijing Key Laboratory of Digital Stomatology Beijing China

J

Jiale Dong

X

Xuenan Gu

Key Laboratory of Biomechanics and Mechanobiology (Beihang University) Ministry of Education Beijing Advanced Innovation Center for Biomedical Engineering School of Biological Science and Medical Engineering Beihang University Beijing China

L

Li Zhao

C

Chenyang Huang

Y

Yu Qin

J

Jiahui Shi

Department of Medicinal Chemistry, School of Pharmacy

L

Lingtong Kong

Key Laboratory of Colloid and Interface Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, State Key Laboratory of Crystal Material, Shandong University, Jinan 250100, China

W

Wenjie Hu

Y

Yufeng Zheng