{"id":26631,"date":"2024-01-03T21:36:42","date_gmt":"2024-01-03T19:36:42","guid":{"rendered":"https:\/\/hho-bulgaria.com\/h2-inhalation-reduces-kidney-injury\/"},"modified":"2024-02-05T04:31:02","modified_gmt":"2024-02-05T02:31:02","slug":"h2-inhalation-reduces-kidney-injury","status":"publish","type":"post","link":"https:\/\/hho-bulgaria.com\/en\/h2-inhalation-reduces-kidney-injury\/","title":{"rendered":"H2 Inhalation Reduces Kidney Injury"},"content":{"rendered":"<section id=\"ArticleBody\">\n<h2 class=\"ejp-article-outline-heading\" data-level=\"1\" id=\"H1-8\">INTRODUCTION<\/h2>\n<p id=\"O3-8-2\">Acute kidney injury (AKI) is a heterogeneous group of conditions mainly manifested as a sudden kidney dysfunction accompanied by increase of serum creatinine and urea nitrogen due to the decrease of glomerular filtration rate.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R1-8\">1<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R2-8\">2<\/a><\/sup> Many factors contribute to the pathology of AKI including acute illness, complications of medications and medical procedures.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R1-8\">1<\/a><\/sup> Recently, a few studies have reported the association with coronavirus disease 2019 (COVID-19),<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R3-8\">3<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R4-8\">4<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R5-8\">5<\/a><\/sup> and early investigations from China indicated that 25% of patients with COVID-19 in critical care have AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R6-8\">6<\/a><\/sup> AKI is one of the most severe complications of rhabdomyolysis (RM), which can cause internal environment disorders and damages to various organs due to the leakage of toxic muscle-cell contents including myoglobin, electrolytes, and other sarcoplasmic proteins (e.g., creatinine kinase and lactate dehydrogenase) into the systemic circulation.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R7-8\">7<\/a><\/sup> RM-induced AKI accounts for 10% to 40% of all diagnosed AKI cases.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R8-8\">8<\/a><\/sup> In clinical practice, the actual incidence rate is 13% to 50%.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R9-8\">9<\/a><\/sup> The mortality rate is estimated to be 20% for patients who do not develop AKI from RM,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R10-8\">10<\/a><\/sup> however, for patients who develop AKI, the mortality rate increases to as high as 59%.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R11-8\">11<\/a><\/sup><\/p>\n<p id=\"O3-8-3\">lthough RM-induced AKI has been extensively studied over a long time, the exact pathogenesis involved has not been elucidated. Several factors including oxidative stress, inflammatory response, apoptosis, vasoconstriction, and tubular obstruction are recognized to play important roles.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R12-8\">12<\/a><\/sup> Traditionally, the initial conservative measure is usually fluid resuscitation, which is a ubiquitous intervention in critical care medicine.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R13-8\">13<\/a><\/sup> However, the treatment is ineffective in the case of severe oliguria or anuria that may lead to interstitial and pulmonary edema, secondary abdominal cavity syndrome, renal perfusion pressure reduction, or even acute respiratory distress syndrome.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R9-8\">9<\/a><\/sup> Recently, numerous studies have focused on various compounds or molecules, such as vitamin c, L-carnitine, and oleuropein, in preventing RM-induced AKI and most of them attributed the mitigating effects to their antioxidant properties.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R8-8\">8<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R14-8\">14<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R15-8\">15<\/a><\/sup> Antioxidants inhibit lipid peroxidation in proximal tubular cells and balance the redox cycles of myoglobin.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R16-8\">16<\/a><\/sup> Although several drugs can alleviate the disease, the majority of them are bio-macromolecules with poor penetrability, hence difficult to enter the reactive oxygen production site. Moreover, their long-term safety remains to be verified, hence the need to develop better antioxidants with minimal or no side effects.<\/p>\n<p id=\"O3-8-4\">Molecular hydrogen (H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>) is a small molecule with the capacity to efficiently enter the plasma membrane and other cell organelles. Numerous studies have reported the therapeutic effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> on oxidative stress and inflammation-related diseases such as ischemia and reperfusion injuries,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R17-8\">17<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R18-8\">18<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R19-8\">19<\/a><\/sup> atherosclerosis,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R20-8\">20<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R21-8\">21<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R22-8\">22<\/a><\/sup> metabolic diseases,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R23-8\">23<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R24-8\">24<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R25-8\">25<\/a><\/sup> neurodegenerative disorders,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R26-8\">26<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R27-8\">27<\/a><\/sup> and cancer.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R28-8\">28<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R29-8\">29<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R30-8\">30<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R31-8\">31<\/a><\/sup> These effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> are usually attributed to its anti-oxidative, anti-inflammatory, and anti-apoptotic capabilities. Recently, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> supplements have been tried in the treatment of COVID-19.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R32-8\">32<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R33-8\">33<\/a><\/sup> Until now, no side effects have been reported. Although some studies have investigated the protective effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>-rich saline<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R34-8\">34<\/a><\/sup> or 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R35-8\">35<\/a><\/sup> on kidney damage by inhibiting oxidative stress and inflammatory responses, the dose-effect of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> and the precise molecular mechanism need to be explored further. Meanwhile, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>-rich saline injection can only provide a limited concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> compared with H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation. And the O<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration in the latter study (33%) was higher than that in the atmosphere (21%), and it remained unclear whether hyperoxia had an additional effect.<\/p>\n<p id=\"O3-8-5\">Glycerol injection is a standard method to induce AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R36-8\">36<\/a><\/sup> It is characterized by excessive release of myoglobin, tubular necrosis, and renal vasoconstriction, which clinically best mimics the RM induced AKI in humans.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R36-8\">36<\/a><\/sup> The most important role in glycerol-induced nephrotoxicity is attributed to reactive oxygen metabolites, especially the hydroxyl radicals (\u2022OH) which causes myoglobin-induced AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R37-8\">37<\/a><\/sup>]\n<p id=\"O3-8-6\">In this study, glycerol was administered to induce the AKI model of Sprague-Dawley rats, and H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation was used to evaluate the potential renoprotective effects and possible mechanisms against RM-induced AKI. For thefirst time, low (4%) and high (67%) concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> were provided using our self-made device to investigate the dose-dependent response of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> for this model.<\/p>\n<h2 class=\"ejp-article-outline-heading\" data-level=\"1\" id=\"H2-8\">MATERIALS AND METHODS<\/h2>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H3-8\">Animals<\/h3>\n<p id=\"O4-8-2\">Forty 8-week old specific pathogen free level male Sprague-Dawley rats weighing 200\u2013230 g were purchased from Jinan Pengyue Experimental Animal Breeding Co., Ltd. (Jinan, China; licence No. SCXK (Lu) 20190003). The sex selection of rats is based on most literature reports.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R37-8\">37<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R38-8\">38<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R39-8\">39<\/a><\/sup> All rats were housed in cages under standard conditions (22 \u00b1 1\u00b0C and 50\u201360% relative humidity with a 12\/12 hours light\/dark cycle) with ad libitum access to water and food before the experiment. All experiments were approved by the Laboratory Animal Ethics Committee of ShandongFirst Medical University &amp; Shandong Academy of Medical Sciences (No. 2020-1033) on March 18, 2020. All experiments were designed and reported according to the Animal Research: Reporting of <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">In Vivo<\/em> Experiments (ARRIVE) guidelines.<\/p>\n<p id=\"O4-8-3\">After 1-week acclimation, the rats were randomly divided into four groups (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">n<\/em> = 10 per group) including: (1) control group (Con): air inhalation and saline intramuscularly (IM); (2) model group (AKI): air inhalation and glycerol IM; (3) low H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> group (AKI + LH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>): 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> + 21% O<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> + 75% N<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation and glycerol IM; and (4) high H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> group (AKI + HH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>): 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> + 21% O<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> + 12% N<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation and intramuscular injection of glycerol.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H4-8\">H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation<\/h3>\n<p id=\"O5-8-2\">Different concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (4% and 67%, vol\/vol) were prepared using a self-made device as previously reported.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R23-8\">23<\/a><\/sup> Different gases were controlled by adjusting the rotor flow meter connected to the H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> cylinder, O<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> cylinder, and air generator. The gases were mixed in a box and then pumped into the sealed animal chamber at a total rate of 3 L\/min for 2 hours once daily. Concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> and O<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (about 21%) were monitored using gas detectors XP-3140 (New Cosmos Electric Co., Ltd., Japan) and JR2000-O<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (JingRuiBo Technology Co., Ltd., Beijing, China), respectively, to confirm the stability of each gas component. The gas intervention continued throughout the entire experimental period (9 days).<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H5-8\">AKI model<\/h3>\n<p id=\"O6-8-2\">AKI model was constructed through a single intramuscular injection of 50% (vol\/vol in sterile saline) glycerol. After six days of gas inhalation (see the above \u201cAnimals\u201d part for details), the rats were dehydrated for 16 hours as in many other studies,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R38-8\">38<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R39-8\">39<\/a><\/sup> after which an 8 mL\/kg dose of glycerol (99% purity, Shanghai Aladdin Biochemical Technology Co., Ltd., Shanghai, China) was injected intramuscularly into the bilateral hindlimbs. The control group was administered with equal normal saline intramuscularly. Immediately after the saline or glycerol injection, drinking water was resumed. Meanwhile, clinical signs were recorded for all animals during the whole period of the experiment.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H6-8\">H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration monitoring in the kidney <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">in vivo<\/em><\/h3>\n<p id=\"O7-8-2\">The real-time concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> was monitored using a miniaturized Clark-type hydrogen microsensor (Unisense, Aarhus, Denmark). 4% and 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> were prepared as the \u201cH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation\u201d part mentioned above. Rats were sedated by intraperitoneal injection of 20% urethane (7 mL\/kg) mainly due to its properties including stable anesthetic effect and a long duration of anesthesia (AVMA euthanasia guidelines 2020). After losing consciousness and breathing steadily, the rat was dissected to expose the kidney and then the microsensor tip (diameter 40\u201360 \u03bcm) was inserted into the tissue at a depth about 1 mm. Initially, the pure air was administrated to get a stable baseline. Then 4% or 67% concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> was delivered continuously until the recording H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration approaching saturation point. And then, the mixed gas was replaced by the pure air and the monitoring was continued until the H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration returned to the baseline. At the end of the experiment, rats were euthanized by injecting excessive amounts of anesthetics to reduce the subsequent pain and other distress. Three rats were used for each H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H7-8\">Sampling<\/h3>\n<p id=\"O8-8-2\">All rats were weighed at the beginning and end of the experiment. The rats were anesthetized by an intraperitoneal injection of 2% pentobarbital sodium (50 mg\/kg body mass, Merck, Darmstadt, Germany) after 72 hours of intramuscular injection. Blood samples (15 mL\/kg body mass, about 270 g\/rat) were collected from the inferior vena cava, centrifuged, and stored at \u201380\u00b0C for further biochemical analysis. The left ventricle was perfused using a peristaltic pump BT100-2J (Longer Precision Pump Co., Ltd., Baoding, China) to expel residual blood from the body. Animal death was defined as mydriasis, respiratory arrest and cardiac arrest for a period of &gt; 5 minutes. Both kidneys were quickly dissected, rinsed in cold phosphate-buffered saline, and weighed to estimate the renal somatic index, which was calculated by dividing the kidney weight (g) by final body mass (g) and multiplying by 100.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R40-8\">40<\/a><\/sup> The left kidneys were photographed, and the appearance and color were recorded. Then they were bisected longitudinally, photographed, and fixed with 4% paraformaldehyde for histopathological examinations. The appearance was scored mainly according to the color of the longitudinal section of the kidney and whether the boundary between cortex and medulla was clear. The score was from 1 to 5, and the lower scores represented more severe damage. The right kidney was sliced, flash-frozen in liquid nitrogen, and then stored at \u201380\u00b0C for total RNA extraction and biochemical analysis.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H8-8\">Determination of superoxide dismutase &amp; catalase activities, glutathione content and malondialdehyde level<\/h3>\n<p id=\"O9-8-2\">The sliced kidney was homogenized in 0.1 M phosphate-buffered saline and centrifuged at 3000 \u00d7 <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">g<\/em> for 15 minutes at 4\u00b0C. The supernatant was used to determine the biochemical parameters including superoxide dismutase (SOD), glutathione (GSH) and catalase (CAT). Malondialdehyde (MDA) content was measured to determine the level of lipid peroxidation. All procedures were performed using commercially available kits according to the manufacturer\u2019s instructions (Nanjing Jiancheng Bioengineering Institute, Nanjing, China).<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H9-8\">Assessment of renal and muscle injuries<\/h3>\n<p id=\"O10-8-2\">Urea (UA), creatinine (Cr), blood urea nitrogen (BUN), lactate dehydrogenase 1, creatinine kinase (CK), and creatinine kinase isoenzyme concentrations in plasma were measured using an autoanalyzer Chemray-240 (Rayto Life and Analytical Sciences, Shenzhen, China) to determine the renal and muscular dysfunctions, respectively.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H10-8\">Histopathological observation<\/h3>\n<p id=\"O11-8-2\">The paraformaldehyde-fixed kidney was washed with running tap water for 12 hours, dehydrated in serial gradient concentrations of ethyl alcohol, and then embedded in paraffin blocks. Paraffin sections were cut at 5 \u03bcm thick, dewaxed, and rehydrated for hematoxylin and eosin staining. All the sections were observed using an Olympus BX53 light microscope (Olympus Corporation, Tokyo, Japan) and photographed at 400\u00d7 magnification. The kidney pathology score was used for evaluating the severity of the renal injury. For each group, three samples and at least three different views were analyzed. Histological slides were evaluated according to glomerular atrophy, tubular casts and shedding of tubular epithelial cells (score 5 &lt; 5%; 4 = 6\u201325%, 3 = 26\u201355%; 2 = 56\u201380%; 1 &gt; 80%).<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R15-8\">15<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R41-8\">41<\/a><\/sup>]\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H11-8\">Immunohistochemical staining<\/h3>\n<p id=\"O12-8-2\">Immunohistochemical staining was performed to evaluate the expression of oxidative stress (heme oxygenase-1 (HO-1)), inflammatory responses (tumor necrosis factor-alpha (TNF-\u03b1)) and apoptotic proteins (Bax). Paraffin-embedded sections were dewaxed and hydrated. After antigen repair in the citric acid solution, the sections were incubated in 3% hydrogen peroxide for 25 minutes to neutralize the endogenous peroxidase activity. Then sections were treated with goat serum containing 3% bovine serum albumin for 30 minutes and further incubated with primary antibodies (anti-HO-1 rabbit polyclonal antibody, dilution of 1:100, Cat# GB11104; anti-TNF-\u03b1 rabbit polyclonal antibody, dilution of 1:500, Cat# GB11188; anti-Bax rabbit polyclonal antibody, dilution of 1:100, Cat# GB11007-1; all provide by Servicebio, Wuhan, China) at 4\u00b0C overnight. This was followed by incubation with a specific secondary antibody (goat anti-rabbit, Cat# GB23303, dilution of 1:200, Servicebio) at room temperature for 50 minutes. Finally, the sections were visualized using diaminobenzidine substrate liquid and the chromogenic reaction observed under a microscope. Images were recorded at an original magnification of 400\u00d7 using an Olympus BX53 light microscope.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H12-8\">Terminal deoxynucleotidyl transferase dUTP nick end labeling staining<\/h3>\n<p id=\"O13-8-2\">Cell apoptosis in kidney tissue was detected by terminal deoxynucleotidyl transferase dUTP nick end labeling (TUNEL) assay using an in-situ apoptosis detection kit (11684817910, Roche, Mannheim, Germany) according to the manufacturer\u2019s instructions. Kidney tissue was fixed with 4% paraformaldehyde overnight, dehydrated, embedded in paraffin, cut into 5 \u03bcm-thick sections, and placed on a polylysine-coated glass slide to stain TUNEL positive cells (green), and the nuclei were stained with 4\u2032,6-diamidino-2-phenylindole (blue). All stained sections were photographed at 400* magnification.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H13-8\">Real-time quantitative polymerase chain reaction<\/h3>\n<p id=\"O14-8-2\">Total RNA was extracted from kidney samples using cold Trizol reagent according to the manufacturer\u2019s instructions (Invitrogen, Carlsbad, CA, USA). RNA quality and concentration were measured using an ultraviolet-visible spectrophotometer (DeNovix DS-11, Wilmington, DE, USA). The extracted RNA was reverse transcribed into complementary DNA using a reverse transcription kit (Cat# CW2020, CoWin Biosciences, Beijing, China). Subsequently, semiquantitative real-time quantitative polymerase chain reaction (RT-PCR) was performed using a SYBR Green I PCR kit in a total volume of 25 \u03bcL prepared according to manufacturer\u2019s instructions (Cat# CW2601, CoWin Biosciences). Expression levels of oxidation-, inflammation-, apoptosis- and kidney injury-related genes were measured, and \u03b2-actin was used as a housekeeping gene. The thermocycling reactions were performed using specific primers (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('T1-8', '01612956-202313020-00008');\">Additional Table 1<\/a> [SUPPORTING:1]) under the following conditions: Pre-denatured at 95\u00b0C for 10 minutes, followed by 40 cycles of 95\u00b0C for 10 seconds, 61\u00b0C for 32 seconds and 72\u00b0C for 30 seconds. Relative expressions of target genes were calculated using the 2<sup xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">\u2013\u0394\u0394Ct<\/sup> method upon normalizing to \u03b2-actin mRNA level.<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('T1-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.T1-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.T1-8.jpeg 2x\" srcset=\"\" alt=\"T1-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\">\n<div class=\"ejp-r-article-images__figcaption-text\">Additional Table 1 The primers used for the reverse transcription polymerase chain reaction in this study<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H14-8\">Statistical analysis<\/h3>\n<p id=\"O15-8-2\">Results are presented as mean \u00b1 standard error of the mean (SEM). Sample group data conforming to normal distribution were analyzed by one-way analysis of variance followed by least significant difference <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">post hoc<\/em> test (homogeneity of variance) or Tamhane\u2019s T2 test (heterogeneity of variance). Otherwise, Kruskal-Wallis multiple tests were performed. All statistical analyses were performed using SPSS version 26.0 (IBM, Armonk, NY, USA) and Graphpad Prism version 8.0.1 (GraphPad Prism, SanDiego, CA, USA). <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05 was considered statistically significant.<\/p>\n<h2 class=\"ejp-article-outline-heading\" data-level=\"1\" id=\"H15-8\">RESULTS<\/h2>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H16-8\">Clinical signs and general records<\/h3>\n<p id=\"O17-8-2\">After injection, rats in the control group moved freely and were able to feed and drink normally. However, rats in the AKI group appeared to have little activity and hardly drunk any water. H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation improved the mental state of rats and showed gradual recovery of activity and drinking of some water.<\/p>\n<p id=\"O17-8-3\">General records including body mass, kidney index and length of rats in the AKI group showed significant alterations compared with the control group (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05), whereas H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation had little influence on these parameters (<span><a href=\"https:\/\/links.lww.com\/MGAR\/A63))\" onclick=\"javascript:window.open('https:\/\/links.lww.com\/MGAR\/A63))');return false\" target=\"_blank\" rel=\"noopener\">https:\/\/links.lww.com\/MGAR\/A63))<\/a><\/span>.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H17-8\">H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration in the kidney after 4% and 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation<\/h3>\n<p id=\"O18-8-2\">After inhalation of different concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>, the real-time changes of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration and saturation concentration in the kidney are shown in (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F1-8', '01612956-202313020-00008');\">Figure 1<\/a>). H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration in rat kidneys increased gradually with the continuous H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> delivery and then approached saturation state (20.521 \u00b1 2.857 \u03bcM) at about 300 seconds for 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation (Figure <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F1-8', '01612956-202313020-00008');\">1A<\/a> and <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F1-8', '01612956-202313020-00008');\">C<\/a>), whereas saturation concentration (411.376 \u00b1 29.363 \u03bcM) at about 800 seconds for 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation (Figure <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F1-8', '01612956-202313020-00008');\">1B<\/a> and <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F1-8', '01612956-202313020-00008');\">C<\/a>). The ratio of saturated H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration measured (about 20 times) was similar with the ratio of inhaled H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration (about 17 times). When exogenous H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> supply was withdrawn, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration in the kidney started to decrease gradually until dropping to the baseline. It needed more time for 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> than 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (<span><a href=\"https:\/\/links.lww.com\/MGAR\/A64))\" onclick=\"javascript:window.open('https:\/\/links.lww.com\/MGAR\/A64))');return false\" target=\"_blank\" rel=\"noopener\">https:\/\/links.lww.com\/MGAR\/A64))<\/a><\/span>.<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F1-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F1-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F1-8.jpeg 2x\" srcset=\"\" alt=\"F1-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F1-8', '01612956-202313020-00008')\">Figure 1: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">Real-time curve and saturation concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> in the kidney after inhaling different concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>.Note: (A), H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration curve under 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation. (B) H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration curve under 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation. The red areas represent SEM values, and the blue line represents mean values (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">n<\/em> = 3). (C) H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> saturation concentration after different concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation. Data are expressed as mean \u00b1 SEM (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">n<\/em> = 3). H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: Hydrogen.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H18-8\">Renal histopathology<\/h3>\n<p id=\"O19-8-2\">Kidneys in the control group displayed normal morphology as well as plasma membrane with a smooth texture. The contour of the kidney was intact with distinct cortex and medulla boundaries. After glycerol administration, the surface color of the kidney turned lighter and was covered with strawberry-like spots. The longitudinal section displayed dark red brown to black color, and the boundary between the cortex and medulla was mingled (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F2-8', '01612956-202313020-00008');\">Figure 2A<\/a>). Result of scores for kidney appearance showed that for 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation, morphological lesions were alleviated in about 70% rats of this group, while for 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation, the number of improved rats was less (about 55%), but the remission effect was stronger and even some kidneys were restored to normal morphology (Figure <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F2-8', '01612956-202313020-00008');\">2A<\/a> and <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F2-8', '01612956-202313020-00008');\">B<\/a>).<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F2-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F2-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F2-8.jpeg 2x\" srcset=\"\" alt=\"F2-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F2-8', '01612956-202313020-00008')\">Figure 2: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">Effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation on renal histopathology in rats with glycerol-induced acute kidney injury.Note: (A) Morphological examination of kidney tissues in rats of different groups. Compared with the Con group, the kidney of rats after glycerol injection displayed lighter color of the surface and strawberry-like spots. Dark red brown to black color, and the blurred boundary between the cortex and medulla were observed in the longitudinal section. (B) Kidney overall appearance and pathology scores of slices by hematoxylin and eosin staining. (C) Histopathological examination of kidney tissues using hematoxylin and eosin staining (original magnification 400\u00d7). Rats in the AKI group displayed numerous red blood cell casts in the tubule lumen, marked atrophy of glomerular tufts and broken deciduous renal tubular epithelial cells, which could be alleviated by hydrogen inhalation. Red arrow: glomerular atrophy; blue arrow: tubular casts; orange arrow: shedding of tubular epithelial cells. Data are expressed as mean \u00b1 SEM (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">n<\/em> = 3). **<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01, ***<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. Con group; ###<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. AKI group (Kruskal-Wallis multiple tests for scores of HE staining; one-way analysis of variance followed by least significant difference <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">post hoc<\/em> test for scores of the kidney appearance). AKI: Acute kidney injury group; AKI+HH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; AKI+LH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; Con: control group; H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: hydrogen.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<p id=\"O19-8-4\">Hematoxylin and eosin staining showed that rat kidneys from the control group exhibited normal structures with regular renal tubular epithelial cells and without inflammatory cell infiltration in the stroma (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F2-8', '01612956-202313020-00008');\">Figure 2C<\/a>). However, kidneys in the AKI group displayed numerous red blood cell casts in the tubule lumen, marked atrophy of glomerular tufts and broken deciduous renal tubular epithelial cells. H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation significantly relieved the lesions with an obvious reduction of tubular casts and integral structures of renal tubular epithelial cells (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F2-8', '01612956-202313020-00008');\">Figure 2C<\/a>). The kidney pathology scores of slices by hematoxylin and eosin staining among groups supported the above pathological changes, in which AKI rats presented significant lower scores than the Con rats (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001), whereas H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation could better mitigate the deterioration trend by increased scores, especially for the high concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001; <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F2-8', '01612956-202313020-00008');\">Figure 2B<\/a>)).<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H19-8\">RM- and AKI-related biomarkers in plasma<\/h3>\n<p id=\"O20-8-2\">Expression levels of kidney function parameters including BUN, lactate dehydrogenase 1, Cr and UA (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001 or <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05; Figure <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F3-8', '01612956-202313020-00008');\">3A<\/a>&#8211;<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F3-8', '01612956-202313020-00008');\">D<\/a>), and RM-related parameters CK (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01; <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F3-8', '01612956-202313020-00008');\">Figure 3E<\/a>) in the AKI group were significantly increased compared with those in the control group. The expression of another biomarker for muscle injury of creatinine kinase isoenzyme was also increased, although no significant difference was found between the groups (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F3-8', '01612956-202313020-00008');\">Figure 3F<\/a>. Treatment with H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> significantly attenuated changes in these plasma indices. However, 67% hydrogen failed to further improve these parameters (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F3-8', '01612956-202313020-00008');\">Figure 3<\/a>).<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F3-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F3-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F3-8.jpeg 2x\" srcset=\"\" alt=\"F3-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F3-8', '01612956-202313020-00008')\">Figure 3: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">Effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> on plasma biomarkers related to kidney and muscle injuries in rats with glycerol-induced acute kidney injury.Note: (A\u2013F) BUN, LDH-1, Cr, UA, CK and CKMB. Data are expressed as mean \u00b1 SEM (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">n<\/em> = 6\u201310). *<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05, **<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01, ***<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. Con group; #<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> [Latin Letter Glottal Stop] 0.05, ##<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01, ###<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. AKI group (one-way analysis of variance followed by least significant difference <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">post hoc<\/em> test for LDH-1, Cr, CK, CK-MB; one-way analysis of variance followed by Tamhane&#8217;s T2 for BUN and UA). AKI: Acute kidney injury group; AKI+HH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; AKI+LH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; Con: control group. BUN: Blood urea nitrogen; CK: creatinine kinase; CKMB: creatinine kinase isoenzyme; Cr: creatinine; LDH-1: lactate dehydrogenase 1; UA: urea.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H20-8\">AKI-related biomarkers in renal tissue homogenate<\/h3>\n<p id=\"O21-8-2\">Kidney injury molecule 1 and neutrophil gelatinase-associated lipocalin (NGAL), which are emerging and early indicators for kidney injury,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R12-8\">12<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R42-8\">42<\/a><\/sup> were quantified using RT-PCR. Results displayed a significant increase (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001) in both genes in the AKI group compared to the control group. H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> administration resulted in marked downregulation for both genes, and low-H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation showed more powerful improved effects (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001; (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F4-8', '01612956-202313020-00008');\">Figure 4<\/a>).<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F4-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F4-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F4-8.jpeg 2x\" srcset=\"\" alt=\"F4-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F4-8', '01612956-202313020-00008')\">Figure 4: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">Effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> on AKI-related biomarkers KIM-1 (A) and NGAL (B) in renal tissue homogenates of rats with glycerol-induced acute kidney injury.Note: Data are expressed as mean \u00b1 SEM of at least three assays referenced to the expression of \u03b2-actin. ***<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. Con group; #<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05, ###<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. AKI group (one-way analysis of variance followed by least significant difference <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">post hoc<\/em> test). AKI: Acute kidney injury group; AKI+HH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; AKI+LH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; Con: control group; H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: hydrogen; KIM-1: kidney injury molecule 1; NGAL: neutrophil gelatinase-associated lipocalin.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H21-8\">Oxidative status<\/h3>\n<p id=\"O22-8-2\">Oxidative stress plays a significant role in the development and progression of AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R16-8\">16<\/a><\/sup> Biochemical parameters associated with oxidative stress including SOD, CAT, GSH, and MDA were measured in kidney tissue homogenate. The results showed a significant decrease in SOD, GSH, and CAT levels (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001), and a slight increase in MDA content in the AKI group compared to the control group. H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation alleviated oxidative stress induced by an imbalance between the antioxidant level and free radical production. This was evidenced by a significant reduction in MDA levels, increased SOD activity, and GSH content compared to the AKI group. CAT activity was also improved slightly after H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation though not statistically significant (Figure <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F5-8', '01612956-202313020-00008');\">5A<\/a><a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F5-8', '01612956-202313020-00008');\">B<\/a><a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F5-8', '01612956-202313020-00008');\">C<\/a><a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F5-8', '01612956-202313020-00008');\">D<\/a>).<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F5-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F5-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F5-8.jpeg 2x\" srcset=\"\" alt=\"F5-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F5-8', '01612956-202313020-00008')\">Figure 5: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">Effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> on oxidative level in renal tissue of rats with glycerol-induced acute kidney injury.Note: (A\u2013D) SOD, GSH, CAT activities and MDA production in kidney homogenate (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">n<\/em> = 6\u20139). (E) mRNA expression of HO-1 in renal tissue homogenate. Data are expressed as mean \u00b1 SEM of at least three assays referenced to the expression of \u03b2-actin. ***<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. Con group; ##<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01, ###<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. AKI group (oneway analysis of variance followed by least significant difference <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">post hoc<\/em> test). (F) Representative immunohistochemistry images showing HO-1 staining in the kidney tissue (original magnification 400\u00d7). More HO-1 positive staining was observed in the AKI group and alleviated by H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation. The red arrows indicate HO-1-positive staining. AKI: Acute kidney injury group; AKI+HH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; AKI+LH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; Con: control group; CAT: catalase; GSH: glutathione; H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: hydrogen; HO-1: heme oxygenase-1; MDA: malondialdehyde; SOD: superoxide dismutase.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<p id=\"O22-8-4\">To further gain insights into the potential molecular mechanisms underlying the anti-oxidative effect, HO-1 mRNA expressions were investigated by RT-PCR. Rats in the AKI group showed significant upregulation in mRNA expression levels compared to the control group. After H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation, HO-1 mRNA expression in the renal tissue was markedly downregulated compared to the AKI group, especially for the high H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration group (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F5-8', '01612956-202313020-00008');\">Figure 5E<\/a>).<\/p>\n<p id=\"O22-8-5\">Immunohistochemical staining provided a more direct visualization of HO-1 distribution (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F5-8', '01612956-202313020-00008');\">Figure 5F<\/a>). Kidney sections from the control group showed normal HO-1 expression. In contrast, sections from the glycerol-administered group showed numerous HO-1 positive staining, indicating overexpression of the protein. H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation significantly downregulated the expression of HO-1 and reduced the severity of the renal injury (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F5-8', '01612956-202313020-00008');\">Figure 5F<\/a>).<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H22-8\">Inflammatory responses<\/h3>\n<p id=\"O23-8-2\">Interleukin 1\u03b2 (IL-1\u03b2), TNF-\u03b1, nuclear factor kappaB (NF-\u03baB), and monocyte chemoattractant protein 1 (MCP-1) levels were quantified using RT-PCR. Compared to the control group, rats administered with glycerol exhibited high levels of these inflammatory mediators in renal tissue. However, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> treatment significantly suppressed mRNA expressions of the four inflammatory cytokines (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05) except for NF-\u03baB under low H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation (Figure <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F6-8', '01612956-202313020-00008');\">6A<\/a><a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F6-8', '01612956-202313020-00008');\">B<\/a><a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F6-8', '01612956-202313020-00008');\">C<\/a><a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F6-8', '01612956-202313020-00008');\">D<\/a>).<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F6-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F6-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F6-8.jpeg 2x\" srcset=\"\" alt=\"F6-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F6-8', '01612956-202313020-00008')\">Figure 6: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">Effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> on expression levels of inflammatory factors in renal tissue of rats with glycerol-induced acute kidney injury.Note: (A\u2013D) mRNA expression of inflammatory cytokines including IL-1\u03b2, TNF-\u03b1, NF-\u03baB and MCP-1 in renal tissue homogenate. Data are expressed as mean \u00b1 SEM of at least three assays normalized to the expression of \u03b2-actin. **<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01, ***<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. Con group; #<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05, ##<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01, ###<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. AKI group (one-way analysis of variance followed by least significant difference <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">post hoc<\/em> test). (E) Representative immunohistochemistry images showing TNF-\u03b1 staining in the kidney tissue (original magnification 400\u00d7). More TNF-\u03b1 positive staining was observed in the AKI group and alleviated by H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation. The red arrows indicate positive staining. AKI: Acute kidney injury group; AKI+HH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; AKI+LH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; Con: control group; H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: hydrogen; IL-1\u03b2: interleukin 1\u03b2; MCP-1: monocyte chemoattractant protein 1; NF-\u03baB: nuclear factor kappaB; TNF-\u03b1: tumor necrosis factor-alpha.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<p id=\"O23-8-4\">Meanwhile, expression of TNF-\u03b1 was also detected via immunohistochemistry. The result exhibited significant positive staining in the AKI group compared to the control group. Interestingly, after H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation, the distribution of renal tubular TNF-\u03b1 was significantly decreased, indicating the anti-inflammatory activity of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F6-8', '01612956-202313020-00008');\">Figure 6E<\/a>).<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"H23-8\">Apoptosis and necroptosis<\/h3>\n<p id=\"O24-8-2\">Apoptotic and necroptosis events following glycerol injection were assessed by determining the transcriptional levels and distributions of pro-apoptotic proteins including Bax and\/or Caspase-3 in the kidney tissue. RT-PCR results revealed significant upregulation in mRNA expression levels of Bax, Caspase-3, receptor-interacting serine-threonine kinase 3 (RIPK3), and mixed lineage kinase domain-like protein (MLKL) in the AKI group compared to the control group (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05). For H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>-treated rats, significant reductions of all the above genes were revealed (<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05) except for RIPK3 under low concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation, which may be associated with the within-group variance (Figure <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F7-8', '01612956-202313020-00008');\">7A<\/a>&#8211;<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F7-8', '01612956-202313020-00008');\">D<\/a>).<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F7-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F7-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F7-8.jpeg 2x\" srcset=\"\" alt=\"F7-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F7-8', '01612956-202313020-00008')\">Figure 7: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">Effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> on apoptosis and necroptosis in renal tissue of rats with glycerol-induced acute kidney injury.Note: (A\u2013D) mRNA expression of Bax, Caspase-3, RIPK3 and MLKL in renal tissue. Data are expressed as mean \u00b1 SD of at least three assays normalized to the expression of \u03b2-actin. *<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05, **<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01, ***<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">vs<\/em>. Con group; #<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.05, ##<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.01, ###<em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">P<\/em> &lt; 0.001, vs. AKI group (one-way analysis of variance followed by least significant difference <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">post hoc<\/em> test). (E) Representative immunohistochemistry staining images of Bax in the kidney tissue (original magnification 400\u00d7). More Bax positive staining was observed in the AKI group and alleviated by H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation. The red arrows indicate positive staining. AKI: Acute kidney injury group; AKI+HH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; AKI+LH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; Con: control group; H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: hydrogen; MLKL: mixed lineage kinase domain-like protein; RIPK3: receptor-interacting serine-threonine kinase 3.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<p id=\"O24-8-4\">As shown in <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F7-8', '01612956-202313020-00008');\">Figure 7E<\/a>, the distribution of Bax was extended in the kidney in the AKI group and was mainly localized in the damaged proximal tubular epithelial cells and renal tubular lumen. Following H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> administration, apoptotic reactions were markedly alleviated and only weak Bax signal was observed around glomerulus (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F7-8', '01612956-202313020-00008');\">Figure 7E<\/a>).<\/p>\n<p id=\"O24-8-5\">Tubular cell apoptosis was also analyzed by TUNEL staining. Consistent with RT-PCR and immunohistochemical staining results, a large number of TUNEL-positive cells were observed mainly in the renal cortex of the AKI group, whereas H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> treatment significantly decreased the number of TUNEL-positive cells. Besides, fewer apoptotic cells were observed in the H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation groups compared with the AKI group (<a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F8-8', '01612956-202313020-00008');\">Figure 8<\/a>).<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F8-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F8-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F8-8.jpeg 2x\" srcset=\"\" alt=\"F8-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F8-8', '01612956-202313020-00008')\">Figure 8: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">Representative <em xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">in situ<\/em> TUNEL fluorescence images of glycerol-induced acute kidney injury rat kidneys.Note: AKI: Acute kidney injury group; AKI+HH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 67% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; AKI+LH<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>: 4% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation group; Con: control group; DAPI: 4\u2032,6-Diamidino-2-phenylindole; TUNEL: terminal deoxynucleotidyl transferase dUTP nick end labeling.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<h2 class=\"ejp-article-outline-heading\" data-level=\"1\" id=\"H24-8\">DISCUSSION<\/h2>\n<p id=\"O26-8-2\">Extensive studies have explored the pathophysiology in an animal model of myoglobinuric AKI induced by glycerol injection,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R12-8\">12<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R37-8\">37<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R43-8\">43<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R44-8\">44<\/a><\/sup> which is the most popular model to study RM induced AKI. However, due to the inherently high osmotic pressure of glycerol, local body fluid accumulation leads to decreased blood volume and renal blood flow, increased blood viscosity and renal vascular impedance, decreased glomerular filtration rate, and even dissolution of muscle, release of myoglobin, hemoglobin, and potassium, resulting in nephrotoxicity and ultimately to glomerular and tubular damages.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R45-8\">45<\/a><\/sup> Glycerol-induced AKI has dual effects of renal ischemia and endogenous toxicity on the renal injury. The intramuscular injection of a single dose of 8 mL\/kg of 50% glycerol (v\/v) is regarded as the most appropriate for animal models to mimic the AKI in humans.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R36-8\">36<\/a><\/sup> Therefore, glycerol with injection volumes of 8 mL\/kg was divided equally between the two hindlimbs to construct the AKI model of rats.<\/p>\n<p id=\"O26-8-3\">Similar to H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>S, NO, and CO, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> is a new emerging gaseous signaling molecule which has been demonstrated to protect and treat a variety of diseases. A previous study reported the protective effect of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>-rich saline on kidney injury, and a high concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>-rich saline performed better than the low dose.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R34-8\">34<\/a><\/sup> However, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> is not easily dissolved in water, and 100%-saturated hydrogen water only contains 1.6 ppm or 0.8 mM H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> under atmospheric pressure and room temperature.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R46-8\">46<\/a><\/sup> Nevertheless, inhalation provides a higher concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> than the injection of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>-rich saline. Liu et al.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R47-8\">47<\/a><\/sup> reported that H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation significantly induced higher H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration in the muscle compared to the other modes of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> administration. Therefore, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation may exert a more powerful protective effect against RM induced AKI. Peng et al.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R35-8\">35<\/a><\/sup> demonstrated the therapeutic effect of a high concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (about 67%) inhalation on glycerol-induced AKI. However, the O<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration (about 33%) will be higher than that in the atmosphere (about 21%) when a high concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> is produced by electrolyzing water. Besides, the dose-effect of different concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation also requires further investigations. In this study, we provided low (4%) and high (67%) concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (21% O<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>) to explore the effects and mechanisms of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> against glycerol-induced AKI and the dose-effects.<\/p>\n<p id=\"O26-8-4\">Glycerol is a nephrotoxic agent that can cause kidney damage, which is marked by elevated kidney index associated with swelling of stromal and epithelial cells and an increase of glomerular volume.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R48-8\">48<\/a><\/sup> The increased Cr, BUN, lactate dehydrogenase 1, and UA levels in plasma are important renal injury markers used as indicators in almost all renal injury studies.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R8-8\">8<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R49-8\">49<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R50-8\">50<\/a><\/sup> RM induced AKI often leads to a more rapid increase in plasma Cr than other forms of AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R7-8\">7<\/a><\/sup> Increased CK and creatinine kinase isoenzyme levels were observed in the AKI group in this study, which may result from damaged skeletal muscle fibers caused by the toxic effects of glycerol. Kidney injury molecule 1 is a molecular marker of tubular injury released into circulation after kidney proximal tubule injury and provides a more sensitive indication of kidney damage.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R50-8\">50<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R51-8\">51<\/a><\/sup> Recent studies have demonstrated that NGAL is strongly associated with AKI and can be detected earlier than other AKI markers.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R52-8\">52<\/a><\/sup> Besides, it can be overexpressed by reactive oxygen species and NF-KB.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R50-8\">50<\/a><\/sup> Therefore, NGAL has shown the potential to serve as a new effective biochemical marker of AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R52-8\">52<\/a><\/sup> All these products induce oxidative stress, inflammation, apoptosis, vasoconstriction, and tubular obstruction, and then further aggravate AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R12-8\">12<\/a><\/sup> Changes in the content of these products are inhibited by low and high concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation, thus reducing renal injury.<\/p>\n<p id=\"O26-8-5\">The therapeutic effect of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> is mainly attributed to its selective antioxidant effect, namely scavenging hydroxyl and peroxyl radicals without affecting the beneficial radicals.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R19-8\">19<\/a><\/sup> An experiment has supported that increasing oxidative stress is involved in glycerol-induced renal damage.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R53-8\">53<\/a><\/sup> Glycerol injection increases hydrogen peroxide generation, which is a substrate for hydroxyl radical formation via the iron-catalyzed Fenton and Haber-Weiss reactions.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R54-8\">54<\/a><\/sup> As a heme protein, myoglobin released from the muscle cell contains iron (Fe<sup xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2+<\/sup>), which is important in binding with molecular oxygen. Molecular oxygen promotes the oxidation of Fe<sup xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2+<\/sup> to Fe<sup xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">3+<\/sup> and generates hydroxyl radicals. Under normal body conditions, the antioxidant molecules in the body maintain a stable oxidation potential. However, upon stimulation by external drugs such as glycerol, a large release of myoglobin leads to uncontrolled leakage of free radicals and causes renal cellular injury.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R7-8\">7<\/a><\/sup> SOD and CAT are important antioxidases, which can effectively eliminate reactive oxygen species from the body and maintain a balance between oxidation and anti-oxidation. GSH content is also an important indicator of antioxidant capacity. In this study, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation increased the antioxidant capacity of the kidney by regulating the endogenous antioxidant defense system, which was evidenced by the increase in SOD, GSH, and CAT. Recent studies have shown that myoglobin can exhibit peroxidase-like enzyme activity and leads to uncontrolled oxidation of biomolecules, lipid peroxidation, and production of isoprostanes.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R55-8\">55<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R56-8\">56<\/a><\/sup> MDA is a major product of lipid peroxidation. This study showed an increase of MDA in the kidney tissue after glycerol injection and a significant decrease after H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation. HO-1 plays pivotal roles in the maintenance of renal functions and the protection of renal structures under oxidative stress, especially within the renal tubular epithelial cells.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R57-8\">57<\/a><\/sup> Glycerol releases pro-oxidant heme (myoglobin\/hemoglobin) into the systemic circulation, from whence it might increase intrarenal HO-1 gene expression.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R58-8\">58<\/a><\/sup> In the present study, mRNA expression of HO-1 was significantly upregulated in the renal cortex in the glycerol group, which strongly implied that the kidney may be the site of HO-1 release. All the above factors were improved by H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation, which indicated inhibition of oxidative stress progression.<\/p>\n<p id=\"O26-8-6\">Pro-inflammatory cytokines are produced in response to a variety of stimuli such as pro-oxidant and certain chemical agents, and they participate in both physiological and pathological processes and result in tissue damage. In this study, inflammatory responses were recorded following glycerol injection in the renal tissue, which was evidenced by the excessive release of IL-1\u03b2 and TNF-\u03b1. The upregulation of both in AKI rats may be attributed to the uncontrolled release of myoglobin, reactive oxygen species overproduction, and the activation of NF-\u03baB.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R16-8\">16<\/a><\/sup> Here, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation decreased the expression of NF-\u03baB, IL-1\u03b2, and TNF-\u03b1 at the transcriptional level. The anti-inflammatory effect may be attributed to the suppression of NF-KB production. MCP-1 is a critical molecule in chemotaxis and activation of macrophages, which has attracted increasing attention as a renal biomarker expressed in injured and inflammatory sites such as in progressive kidney disease.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R59-8\">59<\/a><\/sup> The results showed that a significant increase in MCP-1 was inhibited by pre- and post-treatment with H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>, which was consistent with the results from a previous study.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R35-8\">35<\/a><\/sup>]\n<p id=\"O26-8-7\">During AKI, various forms of cell death including apoptosis and necrosis are reported. Apoptotic pathways are active in the tubular epithelium induced by caspase cascade activation, mitochondrial membrane, and so on,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R60-8\">60<\/a><\/sup> and these promote renal epithelial cell loss and lead to AKI disease.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R61-8\">61<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R62-8\">62<\/a><\/sup> Caspase-3 is the key executive factor in the modification of cell apoptotic proteins. Accumulating evidence demonstrates that Caspase-3 activation is the most predominant mechanism responsible for the apoptosis of renal tubular cells in AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R61-8\">61<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R63-8\">63<\/a><\/sup> In this study, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation blocked the cleavage of Caspase-3 in the injured kidney, suggesting anti-apoptosis effects. Another crucial regulatory factor in apoptosis is the pro-apoptotic protein. In this study, the impact of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> on the level of apoptotic Bax was evaluated by RT-PCR and immunohistochemical staining. The results showed that H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation significantly suppressed Bax expression in the kidney tissues of the AKI group. Result of the TUNEL assay also confirmed the anti-apoptotic effect of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation against this disease.<\/p>\n<p id=\"O26-8-8\">Necrosis, another form of cell death that contributes to the pathogenesis of AKI, is considered as one of the important mechanisms involved in glycerol-induced AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R63-8\">63<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R64-8\">64<\/a><\/sup> A previous study revealed that blocking the necroptotic pathways could mitigate renal injury, indicating a promising outlook in the management of AKI.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R65-8\">65<\/a><\/sup> TNF-\u03b1 has been documented to be an upstream molecule and mediates necroptosis, which is also the main component of AKI in the glycerol model.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R49-8\">49<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R66-8\">66<\/a><\/sup> Necroptosis can be triggered by various events including engagement of death receptors in the presence of caspase inhibition, stimulation of Toll-like receptors, signaling through interferons, and so on. Any of the initial triggers utilizes the receptor-interacting protein-homotypic interacting motif domain to activate the kinase RIPK3, an essential mediator of necroptosis.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R61-8\">61<\/a><\/sup> RIPK3 activation induces the phosphorylation, oligomerization, and translocation of MLKL, the downstream substrates, to membranes and leads to permeabilization of the plasma membrane and cell death.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R67-8\">67<\/a><\/sup> RT-PCR results in this study showed upregulation in TNF-\u03b1 and the associated RIPK3 and MLKL expression in the AKI group compared with the control group. This indicates that TNF-\u03b1 and RIPK3\/MLKL axis are the predominant mediators in necroptosis of tubular injury in glycerol-induced AKI. H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation reversed the situation and decreased the expression of RIPK3 and MLKL. Therefore, H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> possesses inhibitory effects on tubular epithelial cell apoptosis and necrosis in the pathogenesis of AKI. The involved mechanism of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> against AKI has been summarized in <a href=\"javascript:void(0)\" onclick=\"javascript:showSlideShowByImageID('F9-8', '01612956-202313020-00008');\">Figure 9<\/a>. The present study demonstrated the protective effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation on RM induced AKI and provided new evidence regarding the potential treatment effects of RM induced AKI in clinic practice.<\/p>\n<section class=\"ejp-r-article-images\">\n<figure class=\"ejp-r-article-images__figure\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__image-link\" onclick=\"showSlideShowByImageID('F9-8', '01612956-202313020-00008')\"><img decoding=\"async\" class=\"ejp-r-article-images__img js-lazy-load lazy-load\" src=\"javascript:void(0);\" data-src=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview.01612956-202313020-00008.F9-8.jpeg\" data-srcset=\"https:\/\/images.journals.lww.com\/mgar\/ArticleViewerPreview@2.01612956-202313020-00008.F9-8.jpeg 2x\" srcset=\"\" alt=\"F9-8\"><\/a><figcaption class=\"ejp-r-article-images__figcaption\"><a href=\"javascript:void(0)\" class=\"ejp-r-article-images__figcaption-link\" onclick=\"showSlideShowByImageID('F9-8', '01612956-202313020-00008')\">Figure 9: <\/a><\/p>\n<div class=\"ejp-r-article-images__figcaption-text\">A schematic illustration of the potential protective effects of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> against glycerol-induced AKI of rats, including anti-oxidation, antiinflammation, anti-apoptosis and anti-necroptosis.Note: AKI: Acute kidney injury; Cyt c: cytochrome c; IL: interleukin; MCP-1: monocyte chemoattractant protein 1; MDA: malondialdehyde; MLKL: mixed lineage kinase domain-like protein; NF-\u03baB: nuclear factor kappaB; RIPK3: receptorinteracting serine-threonine kinase 3; TNF-\u03b1: tumor necrosis factor-alpha.<\/div>\n<\/figcaption><\/figure>\n<\/section>\n<p id=\"O26-8-10\">The dose-effect of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> has been reported in several studies, especially the intraperitoneal injection of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>-rich saline,<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R22-8\">22<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R34-8\">34<\/a><\/sup><sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R68-8\">68<\/a><\/sup> but only a few by H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R69-8\">69<\/a><\/sup> Liu et al.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R69-8\">69<\/a><\/sup> reported that inhalation of 22% and 41.6% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> showed better outcomes compared to 2% inhalation of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> in the treatment and prevention of chronic obstructive pulmonary disease in rats. However, for several parameters detected, there was no significant difference between the therapeutic effects of 22% and 41.6% H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub>.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R69-8\">69<\/a><\/sup> Liu et al.<sup><a class=\"ejp-citation-link js-ejp-citation-link\" data-reference-links=\"R23-8\">23<\/a><\/sup> reported a dosage effect of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation in the rat model of metabolic syndrome with nonalcoholic fatty liver disease and the results showed a better effect of low concentration H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> (4%) than high concentration (67%) for most detected indicators. In this study, low (4%) and high (67%) H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentrations were used. For nearly half of the parameters including Cr, UA, kidney injury molecule 1, NGAL, SOD, IL-1\u03b2, MCP-1, and MLKL, the low H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> performed better than the high. For about a third of the parameters like BUN, GSH, CAT, TNF-\u03b1, Bax, and Caspase-3, the effect of low and high H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> was not significantly different. The high H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> concentration resulted in greater improvement mainly based on histological and morphological analysis.<\/p>\n<p id=\"O26-8-11\">There are several limitations regarding our study. First, only RIPK3-MLKL-mediated necroptosis was explored, and execution of necroptosis including the interaction between RIP1 and RIP3 needs to be better evaluated. Second, more intermediate concentrations of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> such as 42% can be considered since the large variation between 4% and 67% concentrations to further explore the dose-effect or optimal concentration of H<sub xmlns_mrws=\"http:\/\/webservices.ovid.com\/mrws\/1.0\">2<\/sub> inhalation that is most effective in preventing and treating AKI.<\/p>\n<h3 class=\"ejp-article-outline-heading\" data-level=\"2\" id=\"O27-8\">Acknowledgements<\/h3>\n<p id=\"O27-8-2\">We thank Dr. Xiang-Yan Zhang from Qingdao University for his help in pathological sections.<\/p>\n<\/section>\n","protected":false},"excerpt":{"rendered":"<p>Inhalation of 4% and 67% hydrogen ameliorates oxidative stress, inflammation, apoptosis, and necroptosis in a rat model of glycerol-induced acute kidney injury<\/p>\n","protected":false},"author":1,"featured_media":17899,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"footnotes":""},"categories":[130],"tags":[],"disease":[841],"body-organ":[1018],"applications":[679],"test_subjects":[1517],"report-topic":[1274],"class_list":["post-26631","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-hydrogen-health","disease-acute-kidney-injury-2","body-organ-kidney-2","applications-inhalation-2","test_subjects-rat-2","report-topic-rhabdomyolysis-2"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.1 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>H2 Inhalation Reduces Kidney Injury<\/title>\n<meta name=\"description\" content=\"Inhalation of 4% and 67% hydrogen ameliorates oxidative stress, inflammation, apoptosis, and necroptosis in a rat model of glycerol-induced acute 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