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Iron oxide nanozymes stabilize stannous fluoride for targeted biofilm killing and synergistic oral disease prevention

Author

Listed:
  • Yue Huang

    (University of Pennsylvania
    University of Pennsylvania
    University of Pennsylvania)

  • Yuan Liu

    (University of Pennsylvania
    University of Pennsylvania)

  • Nil Kanatha Pandey

    (University of Pennsylvania
    University of Pennsylvania
    University of Pennsylvania)

  • Shrey Shah

    (University of Pennsylvania
    University of Pennsylvania)

  • Aurea Simon-Soro

    (University of Pennsylvania
    University of Pennsylvania
    University of Seville)

  • Jessica C. Hsu

    (University of Pennsylvania
    University of Pennsylvania)

  • Zhi Ren

    (University of Pennsylvania
    University of Pennsylvania
    University of Pennsylvania)

  • Zhenting Xiang

    (University of Pennsylvania
    University of Pennsylvania)

  • Dongyeop Kim

    (University of Pennsylvania
    University of Pennsylvania
    Jeonbuk National University)

  • Tatsuro Ito

    (University of Pennsylvania
    University of Pennsylvania
    Nihon University School of Dentistry at Matsudo)

  • Min Jun Oh

    (University of Pennsylvania
    University of Pennsylvania
    University of Pennsylvania)

  • Christine Buckley

    (Indiana University School of Dentistry)

  • Faizan Alawi

    (University of Pennsylvania)

  • Yong Li

    (University of Pennsylvania
    University of Pennsylvania)

  • Paul J. M. Smeets

    (Northwestern University
    Northwestern University)

  • Sarah Boyer

    (Northwestern University)

  • Xingchen Zhao

    (Northwestern University)

  • Derk Joester

    (Northwestern University)

  • Domenick T. Zero

    (Indiana University School of Dentistry)

  • David P. Cormode

    (University of Pennsylvania
    University of Pennsylvania)

  • Hyun Koo

    (University of Pennsylvania
    University of Pennsylvania
    University of Pennsylvania)

Abstract

Dental caries is the most common human disease caused by oral biofilms despite the widespread use of fluoride as the primary anticaries agent. Recently, an FDA-approved iron oxide nanoparticle (ferumoxytol, Fer) has shown to kill and degrade caries-causing biofilms through catalytic activation of hydrogen peroxide. However, Fer cannot interfere with enamel acid demineralization. Here, we show notable synergy when Fer is combined with stannous fluoride (SnF2), markedly inhibiting both biofilm accumulation and enamel damage more effectively than either alone. Unexpectedly, we discover that the stability of SnF2 is enhanced when mixed with Fer in aqueous solutions while increasing catalytic activity of Fer without any additives. Notably, Fer in combination with SnF2 is exceptionally effective in controlling dental caries in vivo, even at four times lower concentrations, without adverse effects on host tissues or oral microbiome. Our results reveal a potent therapeutic synergism using approved agents while providing facile SnF2 stabilization, to prevent a widespread oral disease with reduced fluoride exposure.

Suggested Citation

  • Yue Huang & Yuan Liu & Nil Kanatha Pandey & Shrey Shah & Aurea Simon-Soro & Jessica C. Hsu & Zhi Ren & Zhenting Xiang & Dongyeop Kim & Tatsuro Ito & Min Jun Oh & Christine Buckley & Faizan Alawi & Yon, 2023. "Iron oxide nanozymes stabilize stannous fluoride for targeted biofilm killing and synergistic oral disease prevention," Nature Communications, Nature, vol. 14(1), pages 1-16, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-41687-8
    DOI: 10.1038/s41467-023-41687-8
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    References listed on IDEAS

    as
    1. Yuan Liu & Pratap C. Naha & Geelsu Hwang & Dongyeop Kim & Yue Huang & Aurea Simon-Soro & Hoi-In Jung & Zhi Ren & Yong Li & Sarah Gubara & Faizan Alawi & Domenick Zero & Anderson T. Hara & David P. Cor, 2018. "Topical ferumoxytol nanoparticles disrupt biofilms and prevent tooth decay in vivo via intrinsic catalytic activity," Nature Communications, Nature, vol. 9(1), pages 1-12, December.
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