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Enzymatic regulation of CoFe LDH through samarium doping for rapid ROS-induced membrane disruption and inactivation of pathogenic bacteria

  • Simin Khataee
  • , Alireza Khataee*
  • , Gholamreza Dehghan
  • , Samaneh Rashtbari
  • , Samira Arefi-Oskoui
  • , Nurbolat Kudaibergenov
  • , Kairzhan Shalmagambetov
  • *Corresponding author for this work
  • University of Tabriz
  • Al Farabi Kazakh National University

Research output: Contribution to journalArticlepeer-review

1 Citation (Scopus)

Abstract

The prevalence of bacterial contamination in living environments causes a serious health threat, requiring effective strategies to control associated infections. Accordingly, engineered nanomaterials are regarded as promising alternatives for combating pathogenic microorganisms and antibiotic-resistant bacteria. In this work, samarium (III) cations (Sm3+)-doped CoFe ternary layered double hydroxide (Sm-CoFe LDH) was synthesized via the co-precipitation method with Sm3+ substitution (0.0–30%). The synthesized nanomaterials were characterized utilizing various techniques, suggesting the successful incorporation of Sm3+ into the CoFe LDH structure up to a maximum content of 20%. The kinetic investigations represented the enhanced-oxidase activity of 20% Sm3+ doped LDH (Sm20-CoFe LDH), thereby enabling more efficient generation of reactive oxygen species (ROS). Based on its superior oxidase-like catalytic activity, Sm20-CoFe LDH was evaluated for potential antimicrobial activity, demonstrating strong antibacterial performance with minimum bactericidal concentrations (MBCs) of 50.6 μg mL−1 and 41.4 μg mL−1 against Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus), respectively. Radical scavenging tests revealed that singlet oxygen (1O2) and superoxide anion radicals (O2) were the dominant factors responsible for the ROS-induced bacterial inactivation. Bacterial imaging and double-staining methods revealed a membrane-mediated mechanism of Sm20-CoFe LDH.

Original languageEnglish
Article number175504
JournalChemical Engineering Journal
Volume535
DOIs
Publication statusPublished - 1 May 2026

Bibliographical note

Publisher Copyright:
© 2026 Elsevier B.V.

Keywords

  • Antibacterial activity
  • Membrane damage
  • Nanozymes
  • Oxidase-mimicking
  • Ternary layered double hydroxide

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