Efficient Killing of Multidrug-Resistant Internalized Bacteria by AIEgens In Vivo

Ying Li, Fei Liu, Jiangjiang Zhang, Xiaoye Liu, Peihong Xiao, Haotian Bai, Shang Chen, Dong Wang, Simon H.P. Sung, Ryan T.K. Kwok, Jianzhong Shen, Kui Zhu*, Ben Zhong Tang*

*Corresponding author for this work

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Abstract

Bacteria infected cells acting as “Trojan horses” not only protect bacteria from antibiotic therapies and immune clearance, but also increase the dissemination of pathogens from the initial sites of infection. Antibiotics are hard and insufficient to treat such hidden internalized bacteria, especially multidrug-resistant (MDR) bacteria. Herein, aggregation-induced emission luminogens (AIEgens) such as N,N-diphenyl-4-(7-(pyridin-4-yl) benzo [c] [1,2,5] thiadiazol-4-yl) aniline functionalized with 1-bromoethane (TBP-1) and (3-bromopropyl) trimethylammonium bromide (TBP-2) (TBPs) show potent broad-spectrum bactericidal activity against both extracellular and internalized Gram-positive pathogens. TBPs trigger reactive oxygen species (ROS)-mediated membrane damage to kill bacteria, regardless of light irradiation. TBPs effectively kill bacteria without the development of resistance. Additionally, such AIEgens activate mitochondria dependent autophagy to eliminate internalized bacteria in host cells. Compared to the routinely used vancomycin in clinic, TBPs demonstrate comparable efficacy against methicillin-resistant Staphylococcus aureus (MRSA) in vivo. The studies suggest that AIEgens are promising new agents for the treatment of MDR bacteria associated infections.

Original languageEnglish
Article number2001750
JournalAdvanced Science
Volume8
Issue number9
DOIs
Publication statusPublished - 5 May 2021
Externally publishedYes

Keywords

  • MRSA
  • aggregation-induced emission luminogen
  • antibiotic
  • autophagy
  • internalized bacteria

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Li, Y., Liu, F., Zhang, J., Liu, X., Xiao, P., Bai, H., Chen, S., Wang, D., Sung, S. H. P., Kwok, R. T. K., Shen, J., Zhu, K., & Tang, B. Z. (2021). Efficient Killing of Multidrug-Resistant Internalized Bacteria by AIEgens In Vivo. Advanced Science, 8(9), Article 2001750. https://doi.org/10.1002/advs.202001750