Effective degradation of various bacterial toxins using ozone ultrafine bubble water

Author:

Takizawa FumioORCID,Domon HisanoriORCID,Hirayama SatoruORCID,Isono Toshihito,Sasagawa Karin,Yonezawa DaisukeORCID,Ushida Akiomi,Tsutsuura Satomi,Miyoshi Tomohiro,Mimuro Hitomi,Yoshida Akihiro,Tabeta Koichi,Terao YutakaORCID

Abstract

Infectious and foodborne diseases pose significant global threats, with devastating consequences in low- and middle-income countries. Ozone, derived from atmospheric oxygen, exerts antimicrobial effects against various microorganisms, and degrades fungal toxins, which were initially recognized in the healthcare and food industries. However, highly concentrated ozone gas can be detrimental to human health. In addition, ozonated water is unstable and has a short half-life. Therefore, ultrafine-bubble technology is expected to overcome these issues. Ultrafine bubbles, which are nanoscale entitles that exist in water for considerable durations, have previously demonstrated bactericidal effects against various bacterial species, including antibiotic-resistant strains. This present study investigated the effects of ozone ultrafine bubble water (OUFBW) on various bacterial toxins. This study revealed that OUFBW treatment abolished the toxicity of pneumolysin, a pneumococcal pore-forming toxin, and leukotoxin, a toxin that causes leukocyte injury. Silver staining confirmed the degradation of pneumolysin, leukotoxin, and staphylococcal enterotoxin A, which are potent gastrointestinal toxins, following OUFB treatment. In addition, OUFBW treatment significantly inhibited NF-κB activation by Pam3CSK4, a synthetic triacylated lipopeptide that activates Toll-like receptor 2. Additionally, OUFBW exerted bactericidal activity against Staphylococcus aureus, including an antibiotic-resistant strain, without displaying significant toxicity toward human neutrophils or erythrocytes. These results suggest that OUFBW not only sterilizes bacteria but also degrades bacterial toxins.

Funder

Terumo Life Science Foundation

Japan Society for the Promotion of Science

Japan Science and Technology Corporation

Publisher

Public Library of Science (PLoS)

Reference52 articles.

1. Global mortality associated with 33 bacterial pathogens in 2019: a systematic analysis for the Global Burden of Disease Study 2019;KS Ikuta;Lancet,2022

2. Global burden of bacterial antimicrobial resistance in 2019: a systematic analysis;CJL Murray;Lancet,2022

3. Advances in the Study of Bacterial Toxins, Their Roles and Mechanisms in Pathogenesis.;C. Ghazaei;Malays J Med Sci.,2022

4. Staphylococcal Enterotoxins.;IV Pinchuk;Toxins (Basel).,2010

5. The European Union One Health 2018 Zoonoses Report;European Food Safety Authority, European Centre for Disease Prevention and Control;EFSA J.,2019

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