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Dental Adhesive Peptides Nanonets as Multifunctional Therapy for Caries

  • Liang Shao
  • , Jiaqi Song
  • , Ziyi Wang
  • , Xiaoyu Shan
  • , Wei Zou
  • , Caiting Meng
  • , Yan Zhang
  • , Bin Zhu
  • , Lulu Yang
  • , Xianyi Yu
  • , Jingjing Zou
  • , Yunxuan Li
  • , Dan Su
  • , Guanying Li
  • Sichuan University
  • Xi'an Jiaotong University
  • The Second Affiliated Hospital of Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

Abstract

Dental caries poses significant therapeutic challenges due to resilient biofilms and uncontrolled demineralization. To address these challenges, by leveraging the broad antimicrobial activity and strong phosphate-binding capability of arginine peptides, we developed dental adhesive nanonets to effectively capture and kill S. mutans strain for caries management. FmocFFRRR was selected from a two-round structural screening, and was co-assembled with sodium monofluorophosphate (MFP) to construct multifunctional nanonets (F@MFP). Specifically, F@MFP nanonets adhere robustly to tooth enamel, capture S. mutans via electrostatic interactions, and kill S. mutans by disrupting bacterial membrane integrity, inducing oxidative stress, and suppressing metabolic activities. F@MFP nanonets not only inhibit biofilm formation but also effectively dismantle mature biofilms by downregulating biofilm-associated virulence genes. Furthermore, F@MFP nanonets also serve as a fluoride reservoir to inhibit demineralization and promote enamel remineralization. In vivo experiments reveal that F@MFP exhibits superior caries-inhibiting efficacy. This multifunctional platform integrates dental adhesion, a capture-and-kill antibacterial mechanism, anti-biofilm properties, and enamel repair capacity, offering a novel paradigm for targeted caries therapy.

Original languageEnglish
Article numbere03597
JournalAdvanced Healthcare Materials
Volume15
Issue number14
DOIs
StatePublished - 10 Apr 2026

Keywords

  • biofilm
  • dental caries
  • molecular assembly
  • peptide nanonets
  • remineralization

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