Literature DB >> 22373056

Anti-diabetes effect of water containing hydrogen molecule and Pt nanoparticles.

Sanetaka Shirahata1, Takeki Hamasaki2, Keisuke Haramaki3, Takuro Nakamura2, Masumi Abe2, Hanxu Yan3, Tomoya Kinjo3, Noboru Nakamichi4, Shigeru Kabayama4, Kiichiro Teruya1.   

Abstract

Entities:  

Year:  2011        PMID: 22373056      PMCID: PMC3284969          DOI: 10.1186/1753-6561-5-S8-P18

Source DB:  PubMed          Journal:  BMC Proc        ISSN: 1753-6561


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Background

Electrochemically reduced water (ERW) contains a lot of hydrogen molecule (H2) and scavenges reactive oxygen species (ROS) to protect DNA from oxidative damage [1]. ERW also contains small amounts of Pt nanoparticles (NPs) and elongates the lifespan of C. elegans [2]. Pt NPs are newly recognized multi-functional ROS scavengers [3]. ERW exhibits anti-diabetes effects in vitro and in vivo [4-6][7]. We proposed mineral nanoparticle active hydrogen reduced water hypothesis to explain the activation mechanism of H2 to hydrogen atom (H)[4]. Recently, H2 has been reported to scavenge ROS and suppress a variety of oxidative stress-related diseases [8], however, the action mechanism of H2 has not been clarified thoroughly. Here, we examined anti-diabetes effects of H2 and Pt NPs.

Materials and methods

Pt NPs of 2-3 nm sizes were synthesized from H2PtCl6 by the citrate reduction method. L6 rat myoblast cells (1.2 x 105 cells) were inoculated into a 35 mm culture dish and a day later, the cells were treated with or without 25mM N-acetylcystein in the presence of BES-H2O2, a H2O2-specific detection reagent in DMEM for 2 h. After washing the cells, molecular hydrogen treatment was performed in a dark condition by cultivating cells in a fresh DMEM medium in a mixed gas incubator under an atmosphere of 75%N2/20%O2/5%CO2 or 75%(H2 and N2 mixed gas)/20%O2/5%CO2 for 1.5 h, followed by flowcytometric analysis. In this condition, culture medium contained maximum 0.4-0.5 ppm of dissolved hydrogen. Glucose uptake of differentiated myotube L6 cells was examined after treating the cells with 3H-2-deoxyglucose for 10 min. Gene expression of catalase (CAT), glutathione peroxidase (GPx) and hemoxoigenase (HO-1) was examined using RT-PCR method. Three weeks old type 2 diabetes model mice (KK-A) were fed H2 and/or Pt Nps-containing water ad lib for 6 weeks.

Results

H2 stimulated glucose uptake into L6 cells. Pt NPs catalyzed the activation of H2 to hydrogen atom (H) to scavenge DPPH radical in vitro. The combined use of molecular hydrogen and Pt NPs resulted in extremely stimulated glucose uptake into L6 cells, suggesting that H produced from H2 by catalyst action of Pt NPs regulated glucose uptake signal transduction. As oppose to the paper by Ohsawa et al.[8], H2 of 25 to 75% concentration in the mixed gas significantly scavenged intracellular H2O2 in rat fibroblast L6 cells (Figure 1) and induced the gene expression of antioxidative enzymes such as CAT, GPx and HO-1 via activation of Nrf2 (Figure 2). H2, Pt NPs and their combination significantly suppressed the levels of fasting blood glucose and improved the impaired sugar tolerance abilities of obese insulin-resistant type 2 diabetic KK-A mice.
Figure 1

The scavenging effect of hydrogen molecule on intracellular hydrogen peroxide in rat myotube L6 cells. ***, p<0.001.

Figure 2

Induced gene expression of anitoxidative enzymes by hydrogen molecule. L6 myoblast cells were cultivated under an atmosphere of 75%N2 or H2/20%O2/5%CO2 for 2 h and gene expression was analyzed by RT-PCR. *, P<0.05

The scavenging effect of hydrogen molecule on intracellular hydrogen peroxide in rat myotube L6 cells. ***, p<0.001. Induced gene expression of anitoxidative enzymes by hydrogen molecule. L6 myoblast cells were cultivated under an atmosphere of 75%N2 or H2/20%O2/5%CO2 for 2 h and gene expression was analyzed by RT-PCR. *, P<0.05

Conclusion

H2, Pt NPs, and their combined use resulted in activation of glucose uptake signal transduction pathways and stimulation of glucose uptake into L6 myotubes. In the groups of H2, Pt NPs and their combined use groups, blood sugar levels and impaired sugar tolerance of type 2 diabetes model mouse (KK-A) were significantly improved, suggesting that H2, Pt NPs and H are redox regulation factors in animal cells.
  7 in total

1.  Anti-diabetic effects of electrolyzed reduced water in streptozotocin-induced and genetic diabetic mice.

Authors:  Mi-Ja Kim; Hye Kyung Kim
Journal:  Life Sci       Date:  2006-08-02       Impact factor: 5.037

2.  Electrolyzed-reduced water scavenges active oxygen species and protects DNA from oxidative damage.

Authors:  S Shirahata; S Kabayama; M Nakano; T Miura; K Kusumoto; M Gotoh; H Hayashi; K Otsubo; S Morisawa; Y Katakura
Journal:  Biochem Biophys Res Commun       Date:  1997-05-08       Impact factor: 3.575

3.  Extension of the lifespan of Caenorhabditis elegans by the use of electrolyzed reduced water.

Authors:  Hanxu Yan; Huaize Tian; Tomoya Kinjo; Takeki Hamasaki; Kosuke Tomimatsu; Noboru Nakamichi; Kiichiro Teruya; Shigeru Kabayama; Sanetaka Shirahata
Journal:  Biosci Biotechnol Biochem       Date:  2010-10-07       Impact factor: 2.043

4.  Suppressive effects of electrolyzed reduced water on alloxan-induced apoptosis and type 1 diabetes mellitus.

Authors:  Yupin Li; Takeki Hamasaki; Noboru Nakamichi; Taichi Kashiwagi; Takaaki Komatsu; Jun Ye; Kiichiro Teruya; Masumi Abe; Hanxu Yan; Tomoya Kinjo; Shigeru Kabayama; Munenori Kawamura; Sanetaka Shirahata
Journal:  Cytotechnology       Date:  2010-11-10       Impact factor: 2.058

5.  Hydrogen acts as a therapeutic antioxidant by selectively reducing cytotoxic oxygen radicals.

Authors:  Ikuroh Ohsawa; Masahiro Ishikawa; Kumiko Takahashi; Megumi Watanabe; Kiyomi Nishimaki; Kumi Yamagata; Ken-Ichiro Katsura; Yasuo Katayama; Sadamitsu Asoh; Shigeo Ohta
Journal:  Nat Med       Date:  2007-05-07       Impact factor: 53.440

6.  Kinetic analysis of superoxide anion radical-scavenging and hydroxyl radical-scavenging activities of platinum nanoparticles.

Authors:  Takeki Hamasaki; Taichi Kashiwagi; Toshifumi Imada; Noboru Nakamichi; Shinsuke Aramaki; Kazuko Toh; Shinkatsu Morisawa; Hisashi Shimakoshi; Yoshio Hisaeda; Sanetaka Shirahata
Journal:  Langmuir       Date:  2008-06-14       Impact factor: 3.882

7.  Protective mechanism of reduced water against alloxan-induced pancreatic beta-cell damage: Scavenging effect against reactive oxygen species.

Authors:  Yuping Li; Tomohiro Nishimura; Kiichiro Teruya; Tei Maki; Takaaki Komatsu; Takeki Hamasaki; Taichi Kashiwagi; Shigeru Kabayama; Sun-Yup Shim; Yoshinori Katakura; Kazuhiro Osada; Takeshi Kawahara; Kazumichi Otsubo; Shinkatsu Morisawa; Yoshitoki Ishii; Zbigniew Gadek; Sanetaka Shirahata
Journal:  Cytotechnology       Date:  2002-11       Impact factor: 2.058

  7 in total
  6 in total

Review 1.  Anti-inflammatory and antitumor action of hydrogen via reactive oxygen species.

Authors:  Ye Yang; Yaping Zhu; Xiaowei Xi
Journal:  Oncol Lett       Date:  2018-06-26       Impact factor: 2.967

2.  Suppressive effects of electrochemically reduced water on matrix metalloproteinase-2 activities and in vitro invasion of human fibrosarcoma HT1080 cells.

Authors:  Tomoya Kinjo; Jun Ye; Hanxu Yan; Takeki Hamasaki; Hidekazu Nakanishi; Kazuko Toh; Noboru Nakamichi; Shigeru Kabayama; Kiichiro Teruya; Sanetaka Shirahata
Journal:  Cytotechnology       Date:  2012-06-14       Impact factor: 2.058

3.  Electrochemically reduced water protects neural cells from oxidative damage.

Authors:  Taichi Kashiwagi; Hanxu Yan; Takeki Hamasaki; Tomoya Kinjo; Noboru Nakamichi; Kiichiro Teruya; Shigeru Kabayama; Sanetaka Shirahata
Journal:  Oxid Med Cell Longev       Date:  2014-10-14       Impact factor: 6.543

4.  Subcutaneous injection of hydrogen gas is a novel effective treatment for type 2 diabetes.

Authors:  Xiaolong Zhang; Jiaming Liu; Keke Jin; Haifeng Xu; Chuang Wang; Zhuang Zhang; Mimi Kong; Zhengzheng Zhang; Qingyi Wang; Fangyan Wang
Journal:  J Diabetes Investig       Date:  2017-05-18       Impact factor: 4.232

5.  Hydrogen exerts neuroprotective effects by inhibiting oxidative stress in experimental diabetic peripheral neuropathy rats.

Authors:  Xiao-Chen Han; Zhou-Heng Ye; Hui-Jun Hu; Qiang Sun; Dan-Feng Fan
Journal:  Med Gas Res       Date:  2023 Apr-Jun

6.  Molecular hydrogen reduces LPS-induced neuroinflammation and promotes recovery from sickness behaviour in mice.

Authors:  Stefan Spulber; Karin Edoff; Lie Hong; Shinkatsu Morisawa; Sanetaka Shirahata; Sandra Ceccatelli
Journal:  PLoS One       Date:  2012-07-31       Impact factor: 3.240

  6 in total

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