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1.
Biol Pharm Bull ; 47(6): 1106-1112, 2024.
Article in English | MEDLINE | ID: mdl-38839361

ABSTRACT

Ultrafine bubbles (UFBs), which are bubbles with diameters of less than 1 µm, are widely recognized for their ability to exist stably in liquid as a result of the effects of Brownian motion. In this study, we focused on hydrogen, known for its antioxidant potential, and explored the function of H2-filled UFBs, which encapsulate hydrogen, to determine their potential use as oral carriers for the delivery bioactive gases to living organisms. To this end, rats were orally administered ethanol to induce hepatic oxidative stress, and the effects of drinking H2-filled UFBs (H2 NanoGAS®) water for two weeks were evaluated to assess the reduction of oxidative stress. Continuous alcohol consumption was found to significantly increase the blood lipid peroxidation levels in the control group, confirming the induction of oxidative stress. An increase in blood lipid peroxidation was significantly inhibited by the consumption of concentrated H2 NanoGAS® (C-HN) water. Furthermore, the measurement of mitochondrial activity in the liver revealed that drinking H2 NanoGAS® water helped to maintain at a normal level and/or boosted the functional activity of the electron transport system in mitochondria affected by ethanol intake. To our knowledge, this study is the first to provide evidence for the use of orally ingested UFBs as carriers for the delivery gases to tissues, thereby exerting their physiological activity in the body. Our findings highlight the potential for the application of UFBs to various physiologically active gases and their utilization in the medical field in the future.


Subject(s)
Ethanol , Hydrogen , Lipid Peroxidation , Liver , Oxidative Stress , Animals , Oxidative Stress/drug effects , Ethanol/administration & dosage , Hydrogen/pharmacology , Hydrogen/administration & dosage , Male , Lipid Peroxidation/drug effects , Liver/metabolism , Liver/drug effects , Administration, Oral , Rats , Rats, Wistar , Water , Antioxidants/pharmacology , Antioxidants/administration & dosage
2.
Biol Pharm Bull ; 46(2): 343-347, 2023.
Article in English | MEDLINE | ID: mdl-36724963

ABSTRACT

Owing to their unique physicochemical properties and diverse biological effects, ultrafine bubbles (UFBs) have recently been expected to be utilized for industrial and biological purposes. Thus, this study investigated the biological safety of UFBs in water for living beings in drinking the water with a view to future use in health sciences. In this study, we used H2-filled UFBs (NanoGAS®) that can hold hydrogen in the aqueous phase for a long time. Mice were randomly assigned to one of three groups: those receiving NanoGAS® water, reverse osmosis water, or natural mineral water, and they ingested it ad libitum for one month or three months. As a result, subchronic drinking of NanoGAS® water does not affect either the common blood biochemical parameters or the health of the organs and mucosal membranes. Our results, for the first time, scientifically demonstrated the biological safety of H2-filled UFBs water for subchronic oral consumption.


Subject(s)
Drinking , Hydrogen , Water , Animals , Mice , Water/chemistry , Hydrogen/administration & dosage , Gases
3.
Biocontrol Sci ; 27(3): 139-142, 2022.
Article in English | MEDLINE | ID: mdl-36216565

ABSTRACT

Ultrafine bubbles (UFBs) are gaining attention in diverse industries as a new type of material with specific physical properties. Bactericidal activity has been reported as one of the unique properties of UFB water; however, the bactericidal activities of UFBs related to the gas type remain unclear. In particular, the bactericidal effect of hydrogen (H2) -filled UFB water has not been verified. Therefore, this study aimed to evaluate the bactericidal effects of H2- or ozone (O3) -filled UFB water using a bacterial suspension test. The results of this study clearly showed that H2- or O3-filled UFB water had strong bactericidal activity. Exposure of Escherichia coli for 6 h and Staphylococcus aureus for 3 h reduced the survival rate of those bacteria by >90%. This finding suggests that both O3 gas- and H2-filled UFBs are novel environmentally friendly disinfectants that can be employed to avoid the use of chemicals.


Subject(s)
Disinfectants , Ozone , Anti-Bacterial Agents/pharmacology , Disinfectants/pharmacology , Escherichia coli , Hydrogen/pharmacology , Ozone/pharmacology , Water
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