Sono-triggered nanoamplifier mediates ferroptosis-immune regulation against bacterial pneumonia

Zhen-Zhen Wang1, Ruan-Ting Bei2, Hao-Hang Xu2

  • 1Academy of Chinese Medical Sciences, Henan University of Chinese Medicine, Henan Province, Zhengzhou 450046, China; Collaborative Innovation Center of Prevention and Treatment of Major Diseases by Chinese and Western Medicine, Henan Province, Zhengzhou 450046, China; Collaborative Innovation Center of Research and Development on the Whole Industry Chain of Yu-Yao, Henan Province, Zhengzhou 450046, China.

Insights

This study repurposed tirapazamine (TPZ) and purpurin 18 (P18) into a redox metabolic regulation therapy (RMRT) nanoamplifier. This novel approach effectively combats multidrug-resistant bacterial pneumonia by inducing ferroptosis and activating immune responses.

Area of Science:

  • Biochemistry
  • Nanotechnology
  • Immunology

Background:

  • Multidrug-resistant (MDR) bacterial pneumonia poses a critical global health threat, evading conventional antibiotics.
  • Redox metabolic regulation therapy (RMRT) offers a promising antibiotic-free strategy targeting pathological cells via reactive oxygen species (ROS).

Purpose of the Study:

  • To explore the repurposing potential of tirapazamine (TPZ) for treating bacterial pneumonia.
  • To engineer a novel RMRT amplifier for enhanced pulmonary delivery and therapeutic efficacy.

Main Methods:

  • Supramolecular co-assembly of repurposed TPZ with the natural sonosensitizer purpurin 18 (P18) to create an RMRT nanoamplifier.
  • Ultrasound triggering of P18 to generate ROS and exacerbate hypoxia, activating TPZ for ferroptosis induction.
  • Investigating the dual mechanisms of TPZ-induced ferroptosis: ROS overproduction and enhanced Fe2+ influx.

Main Results:

  • TPZ demonstrated potent bacterial ferroptosis-inducing capability via multimodal metabolic interference.
  • The engineered RMRT nanoamplifier synergistically combined ROS generation and hypoxia exacerbation.
  • Ferroptotic bacteria acted as endogenous immunostimulants, initiating favorable immunological responses.

Conclusions:

  • The RMRT nanoamplifier presents a safe, efficient, and accessible strategy for combating MDR bacterial pneumonia.
  • This approach synergizes ferroptosis-associated metabolic regulation and immune activation.
  • The study highlights the potential of repurposed drugs and nanotechnology in addressing antibiotic resistance.

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