A Mucosa‐Inspired Dynamic Biointerface Engineering a Biofilm‐Preventive Niche Against Pathogenic Microbiome Dysbiosis

W Woojin Choi (Department of Chemical and Biomolecular Engineering College of Engineering Yonsei University Seoul Republic of Korea) U Utkarsh Mangal J Jae‐Kook Cha (Department of Periodontology Research Institute for Periodontal Regeneration Yonsei University College of Dentistry Seoul Republic of Korea) H Heesu Cho (Department of Chemical and Biomolecular Engineering College of Engineering Yonsei University Seoul Republic of Korea) J Jeong‐Hyun Ryu (Department of Orthodontics Institute of Craniofacial Deformity Yonsei University College of Dentistry Seoul Republic of Korea) J Ji‑Yeong Kim (Department of Orthodontics Institute of Craniofacial Deformity Yonsei University College of Dentistry Seoul Republic of Korea) W Won‐Gun Koh (Department of Chemical and Biomolecular Engineering College of Engineering Yonsei University Seoul Republic of Korea) K Kee‐Joon Lee (Department of Orthodontics Institute of Craniofacial Deformity Yonsei University College of Dentistry Seoul Republic of Korea) K Ki Woo Kim S Sung‐Hwan Choi (Department of Orthodontics Institute of Craniofacial Deformity Yonsei University College of Dentistry Seoul Republic of Korea) G Giovanni Traverso J Jinkee Hong

Abstract

ABSTRACT A stable symbiosis within the microbiome‐host axis is essential for human health. However, preventing microbiome dysbiosis using biomaterials remains challenging due to their unpredictable influence on microbiome evolution. Inspired by the defensive niche of symbiotic mucosa, we have developed a biointerface that forms an engineered mucosa‐inspired dynamic niche to prevent pathogenic dysbiosis. This biointerface features a dynamic zwitterionic network that emulates the mucosa's biophysical defensive functions. Notably, by leveraging its dynamic niche, the biointerface restricts microbial attachment and aggregation, thereby preventing biofilm formation. Comprehensive metagenomic analyses reveal that microbial communities adapt to this biofilm‐preventive dynamic biointerface compositionally and functionally. In particular, Gram‐negative bacteria were relatively reduced, along with decreased abundance of pathways associated with virulence and biofilm formation. Consequently, the mucosa‐inspired biointerface intrinsically prevents the development of pathogenic dysbiosis. This study demonstrates the groundbreaking potential of material‐based niche engineering to guide the ecological shifts of microbial communities from the material scale.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 22, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

W

Woojin Choi

Department of Chemical and Biomolecular Engineering College of Engineering Yonsei University Seoul Republic of Korea

U

Utkarsh Mangal

J

Jae‐Kook Cha

Department of Periodontology Research Institute for Periodontal Regeneration Yonsei University College of Dentistry Seoul Republic of Korea

H

Heesu Cho

Department of Chemical and Biomolecular Engineering College of Engineering Yonsei University Seoul Republic of Korea

J

Jeong‐Hyun Ryu

Department of Orthodontics Institute of Craniofacial Deformity Yonsei University College of Dentistry Seoul Republic of Korea

J

Ji‑Yeong Kim

Department of Orthodontics Institute of Craniofacial Deformity Yonsei University College of Dentistry Seoul Republic of Korea

W

Won‐Gun Koh

Department of Chemical and Biomolecular Engineering College of Engineering Yonsei University Seoul Republic of Korea

K

Kee‐Joon Lee

Department of Orthodontics Institute of Craniofacial Deformity Yonsei University College of Dentistry Seoul Republic of Korea

K

Ki Woo Kim

S

Sung‐Hwan Choi

Department of Orthodontics Institute of Craniofacial Deformity Yonsei University College of Dentistry Seoul Republic of Korea

G

Giovanni Traverso

J

Jinkee Hong