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1.
J Pharmacol Sci ; 155(4): 121-130, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38880546

ABSTRACT

The atrophic myocardium resulting from mechanical unloading and nutritional deprivation is considered crucial as maladaptive remodeling directly associated with heart failure, as well as interstitial fibrosis. Conversely, myocardial hypertrophy resulting from hemodynamic loading is perceived as compensatory stress adaptation. We previously reported the abundant presence of highly redox-active polysulfide molecules, termed supersulfide, with two or more sulfur atoms catenated in normal hearts, and the supersulfide catabolism in pathologic hearts after myocardial infarction correlated with worsened prognosis of heart failure. However, the impact of supersulfide on myocardial remodeling remains unclear. Here, we investigated the involvement of supersulfide metabolism in cardiomyocyte remodeling, using a model of adenosine 5'-triphosphate (ATP) receptor-stimulated atrophy and endothelin-1 receptor-stimulated hypertrophy in neonatal rat cardiomyocytes. Results revealed contrasting changes in intracellular supersulfide and its catabolite, hydrogen sulfide (H2S), between cardiomyocyte atrophy and hypertrophy. Stimulation of cardiomyocytes with ATP decreased supersulfide activity, while H2S accumulation itself did not affect cardiomyocyte atrophy. This supersulfide catabolism was also involved in myofibroblast formation of neonatal rat cardiac fibroblasts. Thus, unraveling supersulfide metabolism during myocardial remodeling may lead to the development of novel therapeutic strategies to improve heart failure.


Subject(s)
Hydrogen Sulfide , Myocytes, Cardiac , Sulfides , Ventricular Remodeling , Animals , Myocytes, Cardiac/metabolism , Sulfides/metabolism , Sulfides/pharmacology , Hydrogen Sulfide/metabolism , Cells, Cultured , Adenosine Triphosphate/metabolism , Rats , Atrophy , Cardiomegaly/metabolism , Cardiomegaly/pathology , Heart Failure/metabolism , Heart Failure/pathology , Animals, Newborn , Rats, Sprague-Dawley
2.
J Pharmacol Sci ; 155(4): 131-139, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38880547

ABSTRACT

Elevation of the homocysteine concentration in the plasma called hyperhomocysteinemia (hHCY) during pregnancy causes a number of pre- and postnatal developmental disorders. The aim of our study was to analyze the effects of H2S donors -NaHS and N-acetylcysteine (NAC) on blood-brain barrier (BBB) permeability in rats with prenatal hHCY. In rats with mild hHCY BBB permeability assessed by Evans Blue extravasation in brain increased markedly throughout life. Administration of NaHS or NAC during pregnancy attenuated hHCY-associated damage and increased endogenous concentrations of sulfides in brain tissues. Acute application of dl-homocysteine thiolactone induced BBB leakage, which was prevented by the NMDA receptor antagonist MK-801 or H2S donors. Rats with hHCY demonstrated high levels of NO metabolite - nitrites and proinflammatory cytokines (IL-1ß, TNF-α, IL-6) in brain. Lactate dehydrogenase (LDH) activity in the serum was higher in rats with hHCY. Mitochondrial complex-I activity was lower in brain of hHCY rats. NaHS treatment during pregnancy restored levels of proinflammatory cytokines, nitrites and activity of the respiratory chain complex in brain as well as the LDH activity in serum. Our data suggest that H2S has neuroprotective effects against prenatal hHCY-associated BBB disturbance providing a potential strategy for the prevention of developmental impairments in newborns.


Subject(s)
Acetylcysteine , Blood-Brain Barrier , Cytokines , Hydrogen Sulfide , Hyperhomocysteinemia , Neuroprotective Agents , Animals , Blood-Brain Barrier/metabolism , Blood-Brain Barrier/drug effects , Pregnancy , Hyperhomocysteinemia/metabolism , Female , Hydrogen Sulfide/metabolism , Neuroprotective Agents/pharmacology , Acetylcysteine/pharmacology , Cytokines/metabolism , Homocysteine/blood , Homocysteine/metabolism , Homocysteine/analogs & derivatives , Rats, Wistar , Sulfides/pharmacology , Sulfides/administration & dosage , Rats , Male , Pregnancy Complications , Brain/metabolism , L-Lactate Dehydrogenase/metabolism , L-Lactate Dehydrogenase/blood , Permeability , Nitrites/metabolism , Nitrites/blood
3.
Neuromolecular Med ; 26(1): 26, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38907170

ABSTRACT

Spinal cord injury (SCI) causes irreversible cell loss and neurological dysfunctions. Presently, there is no an effective clinical treatment for SCI. It can be the only intervention measure by relieving the symptoms of patients such as pain and fever. Free radical-induced damage is one of the validated mechanisms in the complex secondary injury following primary SCI. Hydrogen sulfide (H2S) as an antioxidant can effectively scavenge free radicals, protect neurons, and improve SCI by inhibiting the p38MAPK/mTOR/NF-κB signaling pathway. In this report, we analyze the pathological mechanism of SCI, the role of free radical-mediated the p38MAPK/mTOR/NF-κB signaling pathway in SCI, and the role of H2S in scavenging free radicals and improving SCI.


Subject(s)
Free Radical Scavengers , Hydrogen Sulfide , NF-kappa B , Signal Transduction , Spinal Cord Injuries , TOR Serine-Threonine Kinases , p38 Mitogen-Activated Protein Kinases , Spinal Cord Injuries/drug therapy , Spinal Cord Injuries/metabolism , Hydrogen Sulfide/therapeutic use , Hydrogen Sulfide/pharmacology , Hydrogen Sulfide/metabolism , p38 Mitogen-Activated Protein Kinases/metabolism , p38 Mitogen-Activated Protein Kinases/antagonists & inhibitors , NF-kappa B/metabolism , Animals , Free Radical Scavengers/therapeutic use , Free Radical Scavengers/pharmacology , Signal Transduction/drug effects , Rats , Mice , Free Radicals/metabolism , Antioxidants/therapeutic use , Antioxidants/pharmacology , Spinal Cord/drug effects , Spinal Cord/metabolism , Humans
4.
Chemosphere ; 361: 142568, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38851510

ABSTRACT

Biotrickling filter (BTF) is often used for purification of waste gas from swine houses, with vital information still needed regarding interaction effects among multiple gas pollutants removal and also the formation of byproducts especially nitrous oxide (N2O, a strong greenhouse gas) due to the relative high NH3 concentration level compared to other gases. In this study, gas removal and N2O production were compared between two BTFs, where the inlet gas of BTF-1 contained NH3 and H2S while p-cresol was additionally supplied to BTF-2. At inlet load (IL) between 3.67 and 18.91 g m-3 h-1, removal efficiencies of NH3 exceeded 95% for both BTFs. As alternative strategy, adding thiosulfate improved H2S removal. Interestingly, presence of p-cresol to some extent promoted H2S removal at IL of 0.56 g m-3 h-1possibly due to effect on pH value of circulating solution. Similar to NH3, removal efficiencies of p-cresol were higher than 95% at an average IL of 2.98 g m-3 h-1. Gas residence time, pH of circulating solution and inlet loading were identified as key factors affecting BTF performance, but the response of individual gas compound to these factors was not consistent. Overall, p-cresol enhanced N2O generation although the effects were not always significant. High-throughput sequencing results showed that Proteobacteria accounted for the largest proportion of relative abundance and BTF-2 had much richer microbial diversity compared to BTF-1. Thermomonas, Comamonas, Rhodanobacter and other bacterial genus capable of denitrification were detected in both BTFs, and their corresponding abundances in BTF-2 (10.9%, 8.7% and 5.2%) were all greater than those in BTF-1 (0.4%, 0.3% and 2.0%), indicating that more denitrification may occur within BTF-2 and higher N2O could have been generated. This study provided evidence that organic gas components, served as carbon source, may increase the N2O production from BTF when treating waste gases containing NH3.


Subject(s)
Air Pollutants , Ammonia , Cresols , Hydrogen Sulfide , Nitrous Oxide , Ammonia/metabolism , Cresols/metabolism , Nitrous Oxide/metabolism , Hydrogen Sulfide/metabolism , Air Pollutants/metabolism , Swine , Animals , Filtration/methods , Biodegradation, Environmental
5.
Water Res ; 259: 121795, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38889663

ABSTRACT

Biological desulfurization under haloalkaline conditions has been applied worldwide to remove hydrogen sulfide (H2S) from sour gas steams. The process relies on sulfide-oxidizing bacteria (SOB) to oxidize H2S to elemental sulfur (S8), which can then be recovered and reused. Recently, a dual-reactor biological desulfurization system was implemented where an anaerobic (sulfidic) bioreactor was incorporated as an addition to a micro-oxic bioreactor, allowing for higher S8 selectivity by limiting by-product formation. The highly sulfidic bioreactor environment enabled the SOB to remove (poly)sulfides (Sx2-) in the absence of oxygen, with Sx2- speculated as a main substrate in the removal pathway, thus making it vital to understand its role in the process. The SOB are influenced by the oxidation-reduction potential (ORP) set-point of the micro-oxic bioreactor as it is used to control the product of oxidation (S8 vs. SO42-), while the uptake of Sx2- by SOB has been qualitatively linked to pH. Therefore, to quantify these effects, this work determined the concentration and speciation of Sx2- in the biological desulfurization process under various pH values and ORP set-points. The total Sx2- concentrations in the sulfidic zone increased at elevated pH (8.9) compared to low pH (< 8.0), with on average 3.3 ± 1.0 mM-S more Sx2-. Chain lengths varied, with S72- only doubling in concentration while S52- increased 9 fold, which is in contrast with observations from abiotic systems. Changes to the ORP set-point of the micro-oxic reactor did not produce substantial changes in Sx2- concentration in the sulfidic zone. This illustrates that the reduction degree of the SOB in the micro-oxic bioreactor does not enhance their ability to interact with Sx2- in the sulfidic bioreactor. This increased understanding of how both pH and ORP affect changes in Sx2- concentration and chain length can lead to improved efficiency and design of the dual-reactor biological desulfurization process.


Subject(s)
Bioreactors , Oxidation-Reduction , Sulfides , Sulfur , Sulfides/chemistry , Sulfides/metabolism , Hydrogen-Ion Concentration , Hydrogen Sulfide/metabolism
6.
Mol Med Rep ; 30(2)2024 Aug.
Article in English | MEDLINE | ID: mdl-38873985

ABSTRACT

Macrophage pyroptosis mediates vascular inflammation and atherosclerosis (AS). Hydrogen sulfide (H2S) exerts a protective role in preventing inflammation and AS. However, its molecular mechanisms of regulating the pyroptosis signaling pathway and inhibiting macrophage pyroptosis remain unexplored. The present study aimed to determine whether H2S mitigates macrophage pyroptosis by downregulating the pyroptosis signaling pathway and S­sulfhydrating caspase­1 under the stimulation of oxidized low­density lipoprotein (ox­LDL), a pro­atherosclerotic factor. Macrophages derived from THP­1 monocytes were pre­treated using exogenous H2S donors sodium hydrosulfide (NaHS) and D,L­propargylglycine (PAG), a pharmacological inhibitor of endogenous H2S­producing enzymes, alone or in combination. Subsequently, cells were stimulated with ox­LDL or the desulfhydration reagent dithiothreitol (DTT) in the presence or absence of NaHS and/or PAG. Following treatment, the levels of H2S in THP­1 derived macrophages were measured by a methylene blue colorimetric assay. The pyroptotic phenotype of THP­1 cells was observed and evaluated by light microscopy, Hoechst 33342/propidium iodide fluorescent staining and lactate dehydrogenase (LDH) release assay. Caspase­1 activity in THP­1 cells was assayed by caspase­1 activity assay kit. Immunofluorescence staining was used to assess the accumulation of active caspase­1. Western blotting and ELISA were performed to determine the expression of pyroptosis­specific markers (NLRP3, pro­caspase­1, caspase­1, GSDMD and GSDMD­N) in cells and the secretion of pyroptosis­related cytokines [interleukin (IL)­1ß and IL­18] in the cell­free media, respectively. The S­sulfhydration of pro­caspase­1 in cells was assessed using a biotin switch assay. ox­LDL significantly induced macrophage pyroptosis by activating the pyroptosis signaling pathway. Inhibition of endogenous H2S synthesis by PAG augmented the pro­pyroptotic effects of ox­LDL. Conversely, exogenous H2S (NaHS) ameliorated ox­LDL­and ox­LDL + PAG­induced macrophage pyroptosis by suppressing the activation of the pyroptosis signaling pathway. Mechanistically, ox­LDL and the DTT increased caspase­1 activity and downstream events (IL­1ß and IL­18 secretion) of the caspase­1­dependent pyroptosis pathway by reducing S­sulfhydration of pro­caspase­1. Conversely, NaHS increased S­sulfhydration of pro­caspase­1, reducing caspase­1 activity and caspase­1­dependent macrophage pyroptosis. The present study demonstrated the molecular mechanism by which H2S ameliorates macrophage pyroptosis by suppressing the pyroptosis signaling pathway and S­sulfhydration of pro­caspase­1, thereby suppressing the generation of active caspase-1 and activity of caspase-1.


Subject(s)
Caspase 1 , Hydrogen Sulfide , Lipoproteins, LDL , Macrophages , NLR Family, Pyrin Domain-Containing 3 Protein , Phosphate-Binding Proteins , Pyroptosis , Hydrogen Sulfide/pharmacology , Hydrogen Sulfide/metabolism , Pyroptosis/drug effects , Humans , Caspase 1/metabolism , Macrophages/metabolism , Macrophages/drug effects , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Lipoproteins, LDL/metabolism , Lipoproteins, LDL/pharmacology , Phosphate-Binding Proteins/metabolism , THP-1 Cells , Intracellular Signaling Peptides and Proteins/metabolism , Signal Transduction/drug effects , Gasdermins , Alkynes , Glycine/analogs & derivatives , Sulfides
7.
Front Endocrinol (Lausanne) ; 15: 1377090, 2024.
Article in English | MEDLINE | ID: mdl-38883604

ABSTRACT

As an important gas signaling molecule, hydrogen sulfide (H2S) affects multiple organ systems, including the nervous, cardiovascular, digestive, and genitourinary, reproductive systems. In particular, H2S not only regulates female reproductive function but also holds great promise in the treatment of male reproductive diseases and disorders, such as erectile dysfunction, prostate cancer, varicocele, and infertility. In this review, we summarize the relationship between H2S and male reproductive organs, including the penis, testis, prostate, vas deferens, and epididymis. As lower urinary tract symptoms have a significant impact on penile erection disorders, we also address the potential ameliorative effects of H2S in erectile dysfunction resulting from bladder disease. Additionally, we discuss the regulatory role of H2S in cavernous smooth muscle relaxation, which involves the NO/cGMP pathway, the RhoA/Rho-kinase pathway, and K+ channel activation. Recently, various compounds that can alleviate erectile dysfunction have been reported to be at least partly dependent on H2S. Therefore, understanding the role of H2S in the male reproductive system may help develop novel strategies for the clinical treatment of male reproductive system diseases.


Subject(s)
Genitalia, Male , Hydrogen Sulfide , Hydrogen Sulfide/metabolism , Humans , Male , Genitalia, Male/metabolism , Animals , Erectile Dysfunction/drug therapy , Erectile Dysfunction/metabolism , Signal Transduction
8.
Cell Cycle ; 23(6): 629-644, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38836592

ABSTRACT

In chronic liver injury, quiescent hepatic stellate cells (HSCs) transdifferentiate into activated myofibroblast-like cells and produce large amounts of extracellular matrix components, e.g. collagen type 1. Cellular senescence is characterized by irreversible cell-cycle arrest, arrested cell proliferation and the acquisition of the senescence-associated secretory phenotype (SASP) and reversal of HSCs activation. Previous studies reported that H2S prevents induction of senescence via its antioxidant activity. We hypothesized that inhibition of endogenous H2S production induces cellular senescence and reduces activation of HSCs. Rat HSCs were isolated and culture-activated for 7 days. After activation, HSCs treated with H2S slow-releasing donor GYY4137 and/or DL-propargylglycine (DL-PAG), an inhibitor of the H2S-producing enzyme cystathionine γ-lyase (CTH), as well as the PI3K inhibitor LY294002. In our result, CTH expression was significantly increased in fully activated HSCs compared to quiescent HSCs and was also observed in activated stellate cells in a in vivo model of cirrhosis. Inhibition of CTH reduced proliferation and expression of fibrotic markers Col1a1 and Acta2 in HSCs. Concomitantly, DL-PAG increased the cell-cycle arrest markers Cdkn1a (p21), p53 and the SASP marker Il6. Additionally, the number of ß-galactosidase positive senescent HSCs was increased. GYY4137 partially restored the proliferation of senescent HSCs and attenuated the DL-PAG-induced senescent phenotype. Inhibition of PI3K partially reversed the senescence phenotype of HSCs induced by DL-PAG. Inhibition of endogenous H2S production reduces HSCs activation via induction of cellular senescence in a PI3K-Akt dependent manner. Our results show that cell-specific inhibition of H2S could be a novel target for anti-fibrotic therapy via induced cell senescence.


Subject(s)
Alkynes , Cellular Senescence , Glycine , Hepatic Stellate Cells , Hydrogen Sulfide , Morpholines , Organothiophosphorus Compounds , Hepatic Stellate Cells/metabolism , Hepatic Stellate Cells/drug effects , Hydrogen Sulfide/pharmacology , Hydrogen Sulfide/metabolism , Animals , Cellular Senescence/drug effects , Morpholines/pharmacology , Glycine/analogs & derivatives , Glycine/pharmacology , Alkynes/pharmacology , Organothiophosphorus Compounds/pharmacology , Rats , Male , Cystathionine gamma-Lyase/metabolism , Cell Proliferation/drug effects , Chromones/pharmacology , Collagen Type I/metabolism , Rats, Sprague-Dawley , Phosphatidylinositol 3-Kinases/metabolism , Cells, Cultured , Proto-Oncogene Proteins c-akt/metabolism , Cyclin-Dependent Kinase Inhibitor p21/metabolism , Liver Cirrhosis/pathology , Liver Cirrhosis/metabolism , Signal Transduction/drug effects , Senescence-Associated Secretory Phenotype , Tumor Suppressor Protein p53/metabolism
9.
Redox Biol ; 74: 103227, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38865903

ABSTRACT

Hydrogen sulfide (H2S) has recently been recognized as an important gaseous transmitter with multiple physiological effects in various species. Previous studies have shown that H2S alleviated heat-induced ganoderic acids (GAs) biosynthesis, an important quality index of Ganoderma lucidum. However, a comprehensive understanding of the physiological effects and molecular mechanisms of H2S in G. lucidum remains unexplored. In this study, we found that heat treatment reduced the mitochondrial membrane potential (MMP) and mitochondrial DNA copy number (mtDNAcn) in G. lucidum. Increasing the intracellular H2S concentration through pharmacological and genetic means increased the MMP level, mtDNAcn, oxygen consumption rate level and ATP content under heat treatment, suggesting a role for H2S in mitigating heat-caused mitochondrial damage in G. lucidum. Further results indicated that H2S activates sulfide-quinone oxidoreductase (SQR) and complex III (Com III), thereby maintaining mitochondrial homeostasis under heat stress in G. lucidum. Moreover, SQR also mediated the negative regulation of H2S to GAs biosynthesis under heat stress. Furthermore, SQR might be persulfidated under heat stress in G. lucidum. Thus, our study reveals a novel physiological function and molecular mechanism of H2S signalling under heat stress in G. lucidum with broad implications for research on the environmental response of microorganisms.


Subject(s)
Heat-Shock Response , Homeostasis , Hydrogen Sulfide , Membrane Potential, Mitochondrial , Mitochondria , Reishi , Triterpenes , Hydrogen Sulfide/metabolism , Reishi/metabolism , Reishi/genetics , Triterpenes/metabolism , Mitochondria/metabolism , Membrane Potential, Mitochondrial/drug effects , Quinone Reductases/metabolism , Quinone Reductases/genetics , DNA, Mitochondrial/genetics , Electron Transport Complex III/metabolism , Electron Transport Complex III/genetics
10.
Life Sci ; 351: 122819, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38857651

ABSTRACT

AIMS: Our aim was to evaluate whether the hydrogen sulfide (H2S) donor, 4-carboxyphenyl-isothiocyanate (4-CPI), exerts cardioprotective effect in the two kidney- one clip (2K-1C) rats through oxidative stress and MMP-2 activity attenuation and compare it with the classical H2S donor, Sodium Hydrosulfide (NaHS). MATERIALS AND METHODS: Renovascular hypertension (two kidneys-one clip; 2K-1C) was surgically induced in male Wistar rats. After two weeks, normotensive (2K) and hypertensive rats were intraperitoneally treated with vehicle (0.6 % dimethyl sulfoxide), NaHS (0.24 mg/Kg/day) or with 4-CPI (0.24 mg/Kg/day), for more 4 weeks. Systolic blood pressure (SBP) was evaluated weekly by tail-cuff plethysmography. Heart function was assessed by using the Millar catheter. Cardiac hypertrophy and fibrosis were evaluated by hematoxylin and eosin, and Picrosirius Red staining, respectively. The H2S was analyzed using WSP-1 fluorimetry and the cardiac oxidative stress was measured by lucigenin chemiluminescence and Amplex Red. MMP-2 activity was measured by in-gel gelatin or in situ zymography assays. Nox1, gp91phox, MMP-2 and the phospho-p65 subunit (Serine 279) nuclear factor kappa B (NF-κB) levels were evaluated by Western blotting. KEY FINDINGS: 4-CPI reduced blood pressure in hypertensive rats, decreased cardiac remodeling and promoted cardioprotection through the enhancement of cardiac H2S levels. An attenuation of oxidative stress, with inactivation of the p65-NF-κB/MMP-2 axis was similarly observed after NaHS or 4-CPI treatment in 2K-1C hypertension. SIGNIFICANCE: H2S is a mediator that promotes cardioprotective effects and decreases blood pressure, and 4-CPI seems to be a good candidate to reverse the maladaptive remodeling and cardiac dysfunction in renovascular hypertension.


Subject(s)
Blood Pressure , Hydrogen Sulfide , Matrix Metalloproteinase 2 , NF-kappa B , Oxidative Stress , Rats, Wistar , Animals , Male , Oxidative Stress/drug effects , Matrix Metalloproteinase 2/metabolism , Rats , Blood Pressure/drug effects , Hydrogen Sulfide/pharmacology , Hydrogen Sulfide/metabolism , NF-kappa B/metabolism , Isothiocyanates/pharmacology , Cardiotonic Agents/pharmacology , Hypertension, Renovascular/drug therapy , Hypertension, Renovascular/metabolism , Hypertension, Renovascular/physiopathology , Hypertension/drug therapy , Hypertension/metabolism , Sulfides/pharmacology
11.
Cell Death Dis ; 15(6): 463, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38942765

ABSTRACT

High basal autophagy and enhanced mitochondrial fission in triple-negative breast cancer (TNBC) cells support cell migration and promote plasticity of cancer cell metabolism. Here, we suggest a novel combination therapy approach for the treatment of TNBC that targets Drp1-mediated mitochondrial fission and autophagy pathways. Hydrogen sulfide (H2S) mediates a myriad of biological processes, including autophagy and mitochondrial function. In this study, we demonstrated that 5-(4-hydroxyphenyl)-3H-1,2-dithiole-3-thione (ADT-OH), one of the most widely utilized sustained-release H2S donors, effectively suppresses metastasis of TNBC cells in the absence of proliferation inhibition in vitro and in vivo. ADT-OH treatment ameliorated autophagy flux by suppressing autophagosome formation and induced mitochondrial elongation through decreasing expression of dynamin-related protein 1 (Drp1) and increasing expression of mitochondrial fusion protein (Mfn2). At the same time, ADT-OH downregulated mitophagy flux and inhibited mitochondrial function, eventually leading to the inhibition of migration and invasion in TNBC cells. In vivo, intraperitoneal administration of ADT-OH revealed a potent anti-metastatic activity in three different animal models, the MDA-MB-231 orthotopic xenograft model, the 4T1-Luci orthotopic model and the 4T1-Luci tail vein metastasis model. However, ADT-OH has an extremely low water solubility, which is a significant barrier to its effectiveness. Thus, we demonstrated that the solubility of ADT-OH in water can be improved significantly by absorption with hydroxypropyl-ß-cyclodextrin (CD). Remarkably, the obtained CD-ADT-OH demonstrated superior anti-cancer effect to ADT-OH in vivo. Altogether, this study describes a novel regulator of mammalian mitochondrial fission and autophagy, with potential utility as an experimental therapeutic agent for metastatic TNBC.


Subject(s)
Autophagy , Mitochondrial Dynamics , Triple Negative Breast Neoplasms , Triple Negative Breast Neoplasms/drug therapy , Triple Negative Breast Neoplasms/pathology , Triple Negative Breast Neoplasms/metabolism , Mitochondrial Dynamics/drug effects , Humans , Animals , Autophagy/drug effects , Female , Cell Line, Tumor , Mice , Cell Movement/drug effects , Mice, Nude , Thiones/pharmacology , Xenograft Model Antitumor Assays , Mice, Inbred BALB C , Mitochondria/metabolism , Mitochondria/drug effects , Cell Proliferation/drug effects , Neoplasm Metastasis , Hydrogen Sulfide/pharmacology , Hydrogen Sulfide/metabolism , Dynamins/metabolism , Thiophenes/pharmacology
12.
Proc Biol Sci ; 291(2025): 20240412, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38889788

ABSTRACT

Regulating transcription allows organisms to respond to their environment, both within a single generation (plasticity) and across generations (adaptation). We examined transcriptional differences in gill tissues of fishes in the Poecilia mexicana species complex (family Poeciliidae), which have colonized toxic springs rich in hydrogen sulfide (H2S) in southern Mexico. There are gene expression differences between sulfidic and non-sulfidic populations, yet regulatory mechanisms mediating this gene expression variation remain poorly studied. We combined capped-small RNA sequencing (csRNA-seq), which captures actively transcribed (i.e. nascent) transcripts, and messenger RNA sequencing (mRNA-seq) to examine how variation in transcription, enhancer activity, and associated transcription factor binding sites may facilitate adaptation to extreme environments. csRNA-seq revealed thousands of differentially initiated transcripts between sulfidic and non-sulfidic populations, many of which are involved in H2S detoxification and response. Analyses of transcription factor binding sites in promoter and putative enhancer csRNA-seq peaks identified a suite of transcription factors likely involved in regulating H2S-specific shifts in gene expression, including several key transcription factors known to respond to hypoxia. Our findings uncover a complex interplay of regulatory processes that reflect the divergence of extremophile populations of P. mexicana from their non-sulfidic ancestors and suggest shared responses among evolutionarily independent lineages.


Subject(s)
Hydrogen Sulfide , Poecilia , Animals , Hydrogen Sulfide/metabolism , Poecilia/genetics , Poecilia/physiology , Poecilia/metabolism , Extremophiles/metabolism , Extremophiles/physiology , Extremophiles/genetics , Transcription, Genetic , Mexico , Transcription Factors/metabolism , Transcription Factors/genetics , Gills/metabolism
13.
Plant Cell Rep ; 43(7): 180, 2024 Jun 24.
Article in English | MEDLINE | ID: mdl-38914787

ABSTRACT

KEY MESSAGE: Hydrogen sulfide improved cold resistance of tomato fruits by regulating energy metabolism and delaying cell wall degradation, thereby alleviating the damage of cold storage on fruits. Postharvest cold storage in tomato fruits extended shelf life but caused the appearance of chilling injury (CI), appeared by softness and spots on the surface of the fruits. These changes were linked closely with energy and cell wall metabolisms. Hydrogen sulfide (H2S), as the gaseous fresh-keeping regulator, was used in the present study to investigate the effects of H2S on energy and cell wall metabolisms in tomato fruits during cold storage. Fruits after harvest were fumigated with different concentrations (0, 0.5, 1, 1.5 mM) of sodium hydrosulfide (NaHS) solution as H2S honor for 24 h and stored at 4 °C for 25 days. The results showed that 1 and 1.5 mM NaHS solution fumigation promoted the accumulation of endogenous H2S, followed by the increase in L-cysteine desulfurase (LCD) and D-cysteine desulfurase (DCD) activities in fruits during cold storage. It was also found that 1 and 1.5 mM NaHS treatments improved H+-ATPase, Ca2+-ATPase, cytochrome C oxidase (CCO), and succinic dehydrogenase (SDH) activities. Moreover, the contents of cellulose and hemicellulose were increased by 1 and 1.5 mM NaHS, following down-regulated activities of cellulase (CL), pectin lyase (PL), α-mannosidase (α-man) and ß-Galactosidase (ß-Gal) and down-regulated expression of PL1, PL8, MAN4 and MAN7 genes. Thus, H2S alleviates CI led by cold storage in tomato fruits via regulating energy and cell wall metabolisms.


Subject(s)
Cell Wall , Cold Temperature , Energy Metabolism , Fruit , Hydrogen Sulfide , Solanum lycopersicum , Cell Wall/metabolism , Hydrogen Sulfide/pharmacology , Hydrogen Sulfide/metabolism , Solanum lycopersicum/genetics , Solanum lycopersicum/metabolism , Solanum lycopersicum/physiology , Fruit/metabolism , Fruit/genetics , Fruit/drug effects , Energy Metabolism/drug effects , Gene Expression Regulation, Plant/drug effects , Plant Proteins/metabolism , Plant Proteins/genetics , Food Storage/methods , Sulfides/pharmacology , Sulfides/metabolism
14.
Int J Mol Sci ; 25(12)2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38928304

ABSTRACT

Hydrogen sulfide (H2S) is a novel gasotransmitter. Sucrose (SUC) is a source of cellular energy and a signaling molecule. Maize is the third most common food crop worldwide. However, the interaction of H2S and SUC in maize thermotolerance is not widely known. In this study, using maize seedlings as materials, the metabolic and functional interactions of H2S and SUC in maize thermotolerance were investigated. The data show that under heat stress, the survival rate and tissue viability were increased by exogenous SUC, while the malondialdehyde content and electrolyte leakage were reduced by SUC, indicating SUC could increase maize thermotolerance. Also, SUC-promoted thermotolerance was enhanced by H2S, while separately weakened by an inhibitor (propargylglycine) and a scavenger (hypotaurine) of H2S and a SUC-transport inhibitor (N-ethylmaleimide), suggesting the interaction of H2S and SUC in the development of maize thermotolerance. To establish the underlying mechanism of H2S-SUC interaction-promoted thermotolerance, redox parameters in mesocotyls of maize seedlings were measured before and after heat stress. The data indicate that the activity and gene expression of H2S-metabolizing enzymes were up-regulated by SUC, whereas H2S had no significant effect on the activity and gene expression of SUC-metabolizing enzymes. In addition, the activity and gene expression of catalase, glutathione reductase, ascorbate peroxidase, peroxidase, dehydroascorbate reductase, monodehydroascorbate reductase, and superoxide dismutase were reinforced by H2S, SUC, and their combination under non-heat and heat conditions to varying degrees. Similarly, the content of ascorbic acid, flavone, carotenoid, and polyphenol was increased by H2S, SUC, and their combination, whereas the production of superoxide radicals and the hydrogen peroxide level were impaired by these treatments to different extents. These results imply that the metabolic and functional interactions of H2S and sucrose signaling exist in the formation of maize thermotolerance through redox homeodynamics. This finding lays the theoretical basis for developing climate-resistant maize crops and improving food security.


Subject(s)
Hydrogen Sulfide , Oxidation-Reduction , Sucrose , Thermotolerance , Zea mays , Zea mays/metabolism , Zea mays/physiology , Zea mays/genetics , Zea mays/drug effects , Hydrogen Sulfide/metabolism , Sucrose/metabolism , Gene Expression Regulation, Plant , Heat-Shock Response , Seedlings/metabolism , Seedlings/drug effects , Plant Proteins/metabolism , Plant Proteins/genetics
15.
Int Heart J ; 65(3): 506-516, 2024.
Article in English | MEDLINE | ID: mdl-38825495

ABSTRACT

Hydrogen sulfide (H2S) has been identified as a novel gasotransmitter and a substantial antioxidant that can activate various cellular targets to regulate physiological and pathological processes in mammals. However, under physiological conditions, it remains unclear whether it is involved in regulating cardiomyocyte (CM) proliferation during postnatal development in mice. This study mainly aimed to evaluate the role of H2S in postnatal CM proliferation and its regulating molecular mechanisms. We found that sodium hydrosulfide (NaHS, the most widely used H2S donor, 50-200 µM) increased neonatal mouse primary CM proliferation in a dose-dependent manner in vitro. Consistently, exogenous administration of H2S also promoted CM proliferation and increased the total number of CMs at postnatal 7 and 14 days in vivo. Moreover, we observed that the protein expression of SIRT1 was significantly upregulated after NaHS treatment. Inhibition of SIRT1 with EX-527 or si-SIRT1 decreased CM proliferation, while enhancement of the activation of SIRT1 with SRT1720 promoted CM proliferation. Meanwhile, pharmacological and genetic blocking of SIRT1 repressed the effect of NaHS on CM proliferation. Taken together, these results reveal that H2S plays a promotional role in proliferation of CMs in vivo and in vitro and SIRT1 is required for H2S-mediated CM proliferation, which indicates that H2S may be a potential modulator for heart development in postnatal time window.


Subject(s)
Cell Proliferation , Hydrogen Sulfide , Myocytes, Cardiac , Signal Transduction , Sirtuin 1 , Up-Regulation , Animals , Sirtuin 1/metabolism , Hydrogen Sulfide/pharmacology , Hydrogen Sulfide/metabolism , Cell Proliferation/drug effects , Myocytes, Cardiac/drug effects , Myocytes, Cardiac/metabolism , Mice , Signal Transduction/drug effects , Animals, Newborn , Cells, Cultured , Mice, Inbred C57BL , Sulfides
16.
Arch Microbiol ; 206(6): 279, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38805051

ABSTRACT

Yeast, which plays a pivotal role in the brewing, food, and medical industries, exhibits a close relationship with human beings. In this study, we isolated and purified 60 yeast strains from the natural fermentation broth of Sidamo coffee beans to screen for indigenous beneficial yeasts. Among them, 25 strains were obtained through morphological characterization on nutritional agar medium from Wallerstein Laboratory (WL), with molecular biology identifying Saccharomyces cerevisiae strain YBB-47 and the remaining 24 yeast strains identified as Pichia kudriavzevii. We investigated the fermentation performance, alcohol tolerance, SO2 tolerance, pH tolerance, sugar tolerance, temperature tolerance, ester production capacity, ethanol production capacity, H2S production capacity, and other brewing characteristics of YBB-33 and YBB-47. The results demonstrated that both strains could tolerate up to 3% alcohol by volume at a high sucrose mass concentration (400 g/L) under elevated temperature conditions (40 ℃), while also exhibiting a remarkable ability to withstand an SO2 mass concentration of 300 g/L at pH 3.2. Moreover, S. cerevisiae YBB-47 displayed a rapid gas production rate and strong ethanol productivity. whereas P. kudriavzevii YBB-33 exhibited excellent alcohol tolerance. Furthermore, this systematic classification and characterization of coffee bean yeast strains from the Sidamo region can potentially uncover additional yeasts that offer high-quality resources for industrial-scale coffee bean production.


Subject(s)
Ethanol , Fermentation , Pichia , Saccharomyces cerevisiae , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/isolation & purification , Pichia/metabolism , Pichia/isolation & purification , Pichia/genetics , Pichia/classification , Ethanol/metabolism , Hydrogen-Ion Concentration , Coffee/microbiology , Coffea/microbiology , Temperature , Seeds/microbiology , Hydrogen Sulfide/metabolism
17.
Biochim Biophys Acta Mol Basis Dis ; 1870(6): 167225, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38749218

ABSTRACT

BACKGROUND: Acute kidney injury (AKI) causes distant liver injury, to date, which causes poor outcomes of patients with AKI. Many studies have been performed to overcome AKI-associated liver injury. However, those studies have mainly focused on hepatocytes, and AKI-induced liver injury still remains a clinical problem. Here, we investigated the implication of cholangiocytes and their primary cilia which are critical in final bile secretion. Cholangiocyte, a lining cell of bile ducts, are the only liver epithelial cell containing primary cilium (a microtubule-based cell surface signal-sensing organelle). METHODS: Cystathione γ-lyase (CSE, a transsulfuration enzyme) deficient and wild-type mice were subjected to kidney ischemia followed by reperfusion (KIR). Some mice were administered with N-acetyl-cysteine (NAC). RESULTS: KIR damaged hepatocytes and cholagiocytes, disrupted cholangiocytes primary cilia, released the disrupted ciliary fragments into the bile, and caused abnormal bile secretion. Glutathione (GSH) and H2S levels in the livers were significantly reduced by KIR, resulting in increased the ratio oxidized GSH to total GSH, and oxidation of tissue and bile. CSE and cystathione ß-synthase (CBS) expression were lowered in the liver after KIR. NAC administration increased total GSH and H2S levels in the liver and attenuated KIR-induced liver injuries. In contrast, Cse deletion caused the reduction of total GSH levels and worsened KIR-induced liver injuries, including primary cilia damage and abnormal bile secretion. CONCLUSIONS: These results indicate that KIR causes cholangiocyte damage, cholangiocytes primary cilia disruption, and abnormal bile secretion through reduced antioxidative ability of the liver.


Subject(s)
Bile , Cilia , Reperfusion Injury , Animals , Reperfusion Injury/metabolism , Reperfusion Injury/pathology , Cilia/metabolism , Cilia/pathology , Mice , Bile/metabolism , Male , Acute Kidney Injury/metabolism , Acute Kidney Injury/pathology , Mice, Inbred C57BL , Glutathione/metabolism , Mice, Knockout , Liver/pathology , Liver/metabolism , Hepatocytes/metabolism , Hepatocytes/pathology , Cystathionine gamma-Lyase/metabolism , Cystathionine gamma-Lyase/genetics , Kidney/metabolism , Kidney/pathology , Hydrogen Sulfide/metabolism , Hydrogen Sulfide/pharmacology , Bile Ducts/pathology , Bile Ducts/metabolism , Epithelial Cells/metabolism , Epithelial Cells/pathology
18.
Angew Chem Int Ed Engl ; 63(27): e202401003, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38808693

ABSTRACT

The gasotransmitter hydrogen sulfide (H2S) is thought to be involved in the post-translational modification of cysteine residues to produce reactive persulfides. A persulfide-specific chemoselective proteomics approach with mammalian cells has identified a broad range of zinc finger (ZF) proteins as targets of persulfidation. Parallel studies with isolated ZFs show that persulfidation is mediated by ZnII, O2, and H2S, with intermediates involving oxygen- and sulfur-based radicals detected by mass spectrometry and optical spectroscopies. A small molecule ZnII complex exhibits analogous reactivity with H2S and O2, giving a persulfidated product. These data show that ZnII is not just a biological structural element, but also plays a critical role in mediating H2S-dependent persulfidation. ZF persulfidation appears to be a general post-translational modification and a possible conduit for H2S signaling. This work has implications for our understanding of H2S-mediated signaling and the regulation of ZFs in cellular physiology and development.


Subject(s)
Hydrogen Sulfide , Proteomics , Sulfides , Zinc Fingers , Zinc , Hydrogen Sulfide/chemistry , Hydrogen Sulfide/metabolism , Zinc/chemistry , Humans , Sulfides/chemistry , Protein Processing, Post-Translational
19.
Plant Physiol Biochem ; 212: 108730, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38763004

ABSTRACT

Over the past decade, a plethora of research has illuminated the multifaceted roles of hydrogen sulfide (H2S) in plant physiology. This gaseous molecule, endowed with signaling properties, plays a pivotal role in mitigating metal-induced oxidative stress and strengthening the plant's ability to withstand harsh environmental conditions. It fulfils several functions in regulating plant development while ameliorating the adverse impacts of environmental stressors. The intricate connections among nitric oxide (NO), hydrogen peroxide (H2O2), and hydrogen sulfide in plant signaling, along with their involvement in direct chemical processes, are contributory in facilitating post-translational modifications (PTMs) of proteins that target cysteine residues. Therefore, the present review offers a comprehensive overview of sulfur metabolic pathways regulated by hydrogen sulfide, alongside the advancements in understanding its biological activities in plant growth and development. Specifically, it centres on the physiological roles of H2S in responding to environmental stressors to explore the crucial significance of different exogenously administered hydrogen sulfide donors in mitigating the toxicity associated with heavy metals (HMs). These donors are of utmost importance in facilitating the plant development, stabilization of physiological and biochemical processes, and augmentation of anti-oxidative metabolic pathways. Furthermore, the review delves into the interaction between different growth regulators and endogenous hydrogen sulfide and their contributions to mitigating metal-induced phytotoxicity.


Subject(s)
Hydrogen Sulfide , Plant Development , Signal Transduction , Hydrogen Sulfide/metabolism , Signal Transduction/drug effects , Plant Development/drug effects , Stress, Physiological , Plants/metabolism , Plants/drug effects
20.
J Nanobiotechnology ; 22(1): 277, 2024 May 23.
Article in English | MEDLINE | ID: mdl-38783332

ABSTRACT

Spinal Cord Injury (SCI) is a condition characterized by complete or incomplete motor and sensory impairment, as well as dysfunction of the autonomic nervous system, caused by factors such as trauma, tumors, or inflammation. Current treatment methods primarily include traditional approaches like spinal canal decompression and internal fixation surgery, steroid pulse therapy, as well as newer techniques such as stem cell transplantation and brain-spinal cord interfaces. However, the above methods have limited efficacy in promoting axonal and neuronal regeneration. The challenge in medical research today lies in promoting spinal cord neuron regeneration and regulating the disrupted microenvironment of the spinal cord. Studies have shown that gas molecular therapy is increasingly used in medical research, with gasotransmitters such as hydrogen sulfide, nitric oxide, carbon monoxide, oxygen, and hydrogen exhibiting neuroprotective effects in central nervous system diseases. The gas molecular protect against neuronal death and reshape the microenvironment of spinal cord injuries by regulating oxidative, inflammatory and apoptotic processes. At present, gas therapy mainly relies on inhalation for systemic administration, which cannot effectively enrich and release gas in the spinal cord injury area, making it difficult to achieve the expected effects. With the rapid development of nanotechnology, the use of nanocarriers to achieve targeted enrichment and precise control release of gas at Sites of injury has become one of the emerging research directions in SCI. It has shown promising therapeutic effects in preclinical studies and is expected to bring new hope and opportunities for the treatment of SCI. In this review, we will briefly outline the therapeutic effects and research progress of gasotransmitters and nanogas in the treatment of SCI.


Subject(s)
Gasotransmitters , Spinal Cord Injuries , Spinal Cord Injuries/therapy , Humans , Animals , Gasotransmitters/therapeutic use , Gasotransmitters/metabolism , Nitric Oxide/metabolism , Neuroprotective Agents/therapeutic use , Neuroprotective Agents/pharmacology , Hydrogen Sulfide/therapeutic use , Hydrogen Sulfide/metabolism , Hydrogen Sulfide/pharmacology , Carbon Monoxide/metabolism , Carbon Monoxide/therapeutic use , Oxygen/metabolism , Spinal Cord , Hydrogen/therapeutic use , Hydrogen/pharmacology
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