1. Academic Validation
  2. Overcoming Nanosilver Resistance: Resensitizing Bacteria and Targeting Evolutionary Mechanisms

Overcoming Nanosilver Resistance: Resensitizing Bacteria and Targeting Evolutionary Mechanisms

  • ACS Nano. 2025 Jan 14;19(1):1702-1712. doi: 10.1021/acsnano.4c15607.
Rui Sun 1 Yueting Cui 1 Yining Wu 1 Meng Gao 2 Shiyuan Xue 1 Ruibin Li 2 3 Radek Zboril 3 4 Chengdong Zhang 1
Affiliations

Affiliations

  • 1 School of Environment, Beijing Normal University, 19 Xinjiekouwai Street, Haidian District, Beijing 100875, China.
  • 2 State Key Laboratory of Radiation Medicine and Protection, School for Radiological and Interdisciplinary Sciences (RAD-X), Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions, Suzhou Medical College, Soochow University, Suzhou, Jiangsu 215123, China.
  • 3 Nanotechnology Centre, Centre for Energy and Environmental Technologies, VŠB-Technical University of Ostrava, 17. Listopadu 2172-15, Ostrava 70800, Czech Republic.
  • 4 Regional Centre of Advanced Technologies and Materials, Czech Advanced Technology and Research Institute, Palacký University, Křížkovského 511-8, Olomouc 77900, Czech Republic.
Abstract

The rapid spread of antimicrobial resistance poses a critical threat to global health and the environment. Antimicrobial nanomaterials, including silver nanoparticles (AgNPs), are being explored as innovative solutions; however, the emergence of nanoresistance challenges their effectiveness. Understanding resistance mechanisms is essential for developing antievolutionary strategies. AgNPs exhibit diverse resistance mechanisms, and our findings reveal a dynamic transition between these mechanisms: from flagellin-mediated AgNP precipitation (state I) to activation of the copper efflux pump (CusCFBA) system (state II). We designed targeted physicochemical interventions to counteract these mechanisms. Energy supply blocking was effective for state I, while for state II, neutralizing intracellular acidic pH significantly reduced resistance. These strategies reduced nanoresistance/tolerance by up to 10,000-fold. Additionally, resistance evolution can be completely halted by disrupting the energy supply using carbonyl cyanide 3-chlorophenylhydrazone and overactivating sigma E, one of the key envelope stress regulators that govern resistance transitions. Our findings provide practical strategies to overcome nanoresistance, offering a groundbreaking approach to enhance nanoantimicrobials' efficacy in medical therapies and combat resistance evolution.

Keywords

envelope stress; evolutionary transition; nanoresistance; resensitization; silver nanoparticle.

Figures
Products