Hollow Mesoporous Molybdenum Single-Atom Nanozyme-Based Reactor for Enhanced Cascade Catalytic Antibacterial Therapy

Int J Nanomedicine. 2023 Dec 5:18:7209-7223. doi: 10.2147/IJN.S438278. eCollection 2023.

Abstract

Purpose: The remarkable peroxidase-like activity of single-atom nanozymes (SAzymes) allows them to catalyze the conversion of H2O2 to •OH, rendering them highly promising for antibacterial applications. However, their practical in vivo application is hindered by the near-neutral pH and insufficient H2O2 levels present in physiological systems. This study was aimed at developing a SAzyme-based nanoreactor and investigating its in vivo antibacterial activity.

Methods: We developed a hollow mesoporous molybdenum single-atom nanozyme (HMMo-SAzyme) using a controlled chemical etching approach and pyrolysis strategy. The HMMo-SAzyme not only exhibited excellent catalytic activity but also served as an effective nanocarrier. By loading glucose oxidase (GOx) with HMMo-SAzyme and encapsulating it with hyaluronic acid (HA), a nanoreactor (HMMo/GOx@HA) was constructed as glucose-triggered cascade catalyst for combating bacterial infection in vivo.

Results: Hyaluronidase (HAase) at the site of infection degraded HA, allowing GOx to convert glucose into gluconic acid and H2O2. An acid environment significantly enhanced the catalytic activity of HMMo-SAzyme to promote the further catalytic conversion of H2O2 to •OH for bacterial elimination. In vitro and in vivo experiments demonstrated that the nanoreactor had excellent antibacterial activity and negligible biological toxicity.

Conclusion: This study represents a significant advancement in developing a cascade catalytic system with high efficiency based on hollow mesoporous SAzyme, promising the advancement of biological applications of SAzyme.

Keywords: bacterial infection; glucose oxidase; nanocarrier; nanozyme; reactive oxygen species.

MeSH terms

  • Anti-Bacterial Agents / pharmacology
  • Catalysis
  • Glucose
  • Glucose Oxidase
  • Hyaluronic Acid
  • Hydrogen Peroxide*
  • Molybdenum*

Substances

  • Hydrogen Peroxide
  • Molybdenum
  • Anti-Bacterial Agents
  • Glucose
  • Glucose Oxidase
  • Hyaluronic Acid

Grants and funding

This work was supported by the National Natural Science Foundation of China (32171388 and 31771087), the Innovation Capability Support Plan of Shaanxi (2020TD-041), and the Key Research & Development Program of Shaanxi (2022ZDLSF05-17).