EOFY SALE: iBOTTLE+ NOW $199 — WAS $399. Ends June 30 · 30-day risk-free trial · Free shipping

Our Services

Web Design

Your content goes here. Edit or remove this text inline.

Logo Design

Your content goes here. Edit or remove this text inline.

Web Development

Your content goes here. Edit or remove this text inline.

VIEW ALL SERVICES

Shop Our Products

Hoodies

Your content goes here. Edit or remove this text inline.

T-Shirts

Your content goes here. Edit or remove this text inline.

Jeans

Your content goes here. Edit or remove this text inline.

BROWSE ALL OUR PRODUCTS

More of us

Customer Reviews

Your content goes here. Edit or remove this text inline.

Good Stuff We do!

Your content goes here. Edit or remove this text inline.

More From Us...

Your content goes here. Edit or remove this text inline.

EXPLORE CUSTOMERS STORIES

Discussion – 

0

Discussion – 

0

Hydrogen-Rich Saline Regulates Intestinal Barrier Dysfunction, Dysbiosis, and Bacterial Translocation in a Murine Model of Sepsis


Hydrogen Water Studies

SepsisGut Microbiome

Hydrogen-Rich Saline Regulates Intestinal Barrier Dysfunction, Dysbiosis, and Bacterial Translocation in a Murine Model of Sepsis

by Shin-Ichi Hirano, Naotsugu Ichimaru, Shiro Takahara, Hiroshi Ogura, Kentaro Shimizu, Takeshi Shimazu, Daisuke Motooka, Eiji Umemoto, Kiyoshi Takeda, Mitsunori Ikeda, Shota Nakamura, Takashi Kurakawa

Abstract:

Bacterial translocation is a major cause of multiple organ dysfunction syndrome in critical illness, and its management is an important therapeutic strategy. In this study, we focused on the key factors responsible for bacterial translocation including the intestinal microbiome and investigated the impact of molecular hydrogen therapy as a countermeasure against bacterial translocation in a murine model of sepsis. The experimental protocols were divided into the sham, saline treatment (control), and hydrogen treatment (H2) groups. In the H2 group, 15 mL/kg of hydrogen-rich saline (7 ppm) was gavaged daily for 7 days following cecal ligation and puncture (CLP). In the control group, normal saline was gavaged in the same way. In the results, the 7-day survival rate was significantly improved in the H2 group versus the control group (69% vs. 31%, P < 0.05). The incidence of bacterial translocation at 24 h after CLP as assessed by cultivation of mesenteric lymph nodes and blood was significantly decreased in the H2 group versus the control group. Administration of hydrogen-rich saline also prevented the expansion of facultative anaerobic Enterobacteriaceae and ameliorated intestinal hyperpermeability at 24 h after CLP. Intestinal tissue levels of inflammatory mediators such as inducible nitric oxide synthases, tumor necrosis factor α, interleukin (IL)-1β, IL-6, and oxidative stress marker malondialdehyde at 6 h after CLP were down-regulated in the H2 group. These results suggest luminal administration of hydrogen-rich saline, which prevents intestinal dysbiosis, hyperpermeability, and bacterial translocation, could potentially be a new therapeutic strategy in critical illness.

Read more:

https://doi.org/10.1097/SHK.0000000000001098

Related Articles:

Molecular hydrogen attenuates sepsis-induced cognitive dysfunction through regulation of tau phosphorylation

Background: Sepsis-associated encephalopathy (SAE) is a cognitive dysfunction caused by sepsis. Hyperphosphorylated tau is considered to play a significant role in the progression of neurodegenerative disease and also contributes to cognitive dysfunction in septic mice. Molecular hydrogen (H2) plays an…

Year Published: 2023BrainSepsis

Hydrogen regulates mitochondrial quality to protect glial cells and alleviates sepsis-associated encephalopathy…

Background: Sepsis-associated encephalopathy (SAE) is a complication of the central nervous system in patients with sepsis. Currently, no effective treatment for sepsis is available. Hydrogen plays a protective role in different diseases; however, the detailed mechanism of hydrogen-treated disease remains…

Year Published: 2023BrainSepsis

High Concentration Hydrogen Mitigates Sepsis-Induced Acute Lung Injury in Mice by Alleviating…

Background: Multiple organ failure (MOF) is the main cause of early death in septic shock. Lungs are among the organs that are affected in MOF, resulting in acute lung injury. A large number of inflammatory factors and stress injury in…

Year Published: 2023LungSepsis

Hydrogen gas ameliorates acute alcoholic liver injury via anti-inflammatory and antioxidant effects…

Alcoholic liver disease (ALD) is a globally prevalent liver-related disorder characterized by severe oxidative stress and inflammatory liver damage, for which no effective treatment is currently available. Hydrogen gas (H2) has been demonstrated to be an efficient antioxidant in various…

Year Published: 2023LiverAlcoholic Liver Disease

APOA2: New Target for Molecular Hydrogen Therapy in Sepsis-Related Lung Injury Based…

Target biomarkers for H2 at both the protein and genome levels are still unclear. In this study, quantitative proteomics acquired from a mouse model were first analyzed. At the same time, functional pathway analysis helped identify functional pathways at the…

Year Published: 2023LungSepsis

Hydrogen alleviated cognitive impairment and blood‒brain barrier damage in sepsis-associated encephalopathy by…

Hydrogen (H2) can protect against blood‒brain barrier (BBB) damage in sepsis-associated encephalopathy (SAE), but the mechanism is still unclear. We examined whether it is related to PPARα and its regulatory targets, ABC efflux transporters. After injection with DMSO/GW6471 (a PPARα…

Year Published: 2023BrainSepsis

Sam Solomon

Research Scientist at iBottle

0 Comments

Submit a Comment

My cart
Your cart is empty.

Looks like you haven't made a choice yet.