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1.
Biochim Biophys Acta Mol Cell Biol Lipids ; 1869(8): 159558, 2024 Dec.
Article in English | MEDLINE | ID: mdl-39173873

ABSTRACT

Despite Staphylococcus aureus (S. aureus) being a highly studied zoontic bacterium, its enteropathogenicity remains elusive. Herein, our findings demonstrated that S. aureus infection led to the accumulation of lipid droplets (LDs) in intestinal epithelial cells, accompanied by marked elevation inflammatory response that ultimately decreases intracellular bacterial load. The aforestated phenomenon may be partly attributed to the up-regulation of hypoxia-inducible lipid droplet-associated protein (HILPDA) and the concomitant down-regulation of cystathionine ß-synthase (CBS) protein. Moreover, S. aureus infection up-regulated the expression of HILPDA, thereby promoting LDs accumulation, and down-regulated that of CBS, consequently inhibiting microsomal triglyceride transfer protein (MTTP) expression. This process may suppress the transport of LDs to the extracellular environment, further contributing to the formation of intracellular LDs. In summary, the results of this study provide significant insights into the intricate mechanisms through which the host organism combats pathogens and maintains the balance of sulfur and lipid metabolism. These findings not only enhance our understanding of the host's defense mechanisms but also offer promising avenues for the development of novel strategies to combat intestinal infectious diseases.


Subject(s)
Cystathionine beta-Synthase , Epithelial Cells , Lipid Droplets , Staphylococcus aureus , Staphylococcus aureus/metabolism , Lipid Droplets/metabolism , Cystathionine beta-Synthase/metabolism , Cystathionine beta-Synthase/genetics , Humans , Epithelial Cells/metabolism , Epithelial Cells/microbiology , Intestinal Mucosa/metabolism , Intestinal Mucosa/microbiology , Animals , Lipid Metabolism , Staphylococcal Infections/metabolism , Staphylococcal Infections/microbiology , Staphylococcal Infections/pathology , Carrier Proteins/metabolism , Carrier Proteins/genetics , Caco-2 Cells , Mice
2.
Protein Sci ; 33(8): e5123, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39041895

ABSTRACT

Homocystinuria (HCU) due to cystathionine beta-synthase (CBS) deficiency is the most common inborn error of sulfur amino acid metabolism. Recent work suggests that missense pathogenic mutations-regardless of their topology-cause instability of the C-terminal regulatory domain, which likely translates into CBS misfolding, impaired assembly, and loss of function. However, it is unknown how instability of the regulatory domain translates into cellular CBS turnover and which degradation pathways are involved in CBS proteostasis. Here, we developed a human HEK293-based cellular model lacking intrinsic CBS and stably overexpressing wild-type (WT) CBS or its 10 most common missense HCU mutants. We found that HCU mutants, except the I278T variant, expressed similarly or better than CBS WT, with some of them showing impaired oligomerization, activity and response to allosteric activator S-adenosylmethionine. Cellular stability of all HCU mutants, except P49L and A114V, was significantly lower than the stability of CBS WT, suggesting their increased degradation. Ubiquitination analysis of CBS WT and two representative CBS mutants (T191M and I278T) showed that proteasomal degradation is the major pathway for CBS disposal, with a minor involvement of lysosomal-autophagic and endoplasmic reticulum-associated degradation (ERAD) pathways for HCU mutants. Proteasomal inhibition significantly increased the half-life and activity of T191M and I278T CBS mutants. Lysosomal and ERAD inhibition had only a minor impact on CBS turnover, but ERAD inhibition rescued the activity of T191M and I278T CBS mutants similarly as proteasomal inhibition. In conclusion, the present study provides new insights into proteostasis of CBS in HCU.


Subject(s)
Cystathionine beta-Synthase , Homocystinuria , Mutation, Missense , Proteolysis , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Cystathionine beta-Synthase/chemistry , Humans , Homocystinuria/genetics , Homocystinuria/metabolism , HEK293 Cells , Proteasome Endopeptidase Complex/metabolism , Proteasome Endopeptidase Complex/genetics , Ubiquitination , Endoplasmic Reticulum-Associated Degradation
3.
Free Radic Biol Med ; 223: 281-295, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39067625

ABSTRACT

Classical homocystinuria is a rare disease caused by mutations in cystathionine ß-synthase (CBS) gene (OMIM 613381). CBS catalyzes the first step of the transsulfuration pathway that converts homocysteine (Hcy) into cystathionine (Cysta) via a number of co-substrates and mechanisms. Formation of Cysta by condensation of Hcy and cysteine (Cys) produces a molar equivalent of hydrogen sulfide (H2S). H2S plays important roles in cognitive and vascular functions. Clinically, patients with CBS deficiency present with vascular, ocular, neurological and skeletal impairments. Biochemically, CBS deficiency manifests with elevated Hcy and reduced concentration of Cysta in plasma and urine. A number of pathogenic variants of human CBS have been characterized by their residual enzymatic activity, but very few studies have examined H2S production by pathogenic CBS variants, possibly due to technical hurdles in H2S detection and quantification. We describe a method for the real-time, continuous quantification of H2S formed by wild-type and pathogenic variants of human recombinant CBS, as well as by fibroblast extracts from healthy controls and patients diagnosed with CBS deficiency. The method takes advantage of the specificity and high affinity of hemoglobin I of the clam Lucina pectinata toward H2S and is based on UV-visible spectrophotometry. Comparison with the gold-standard, end-point H2S quantification method employing monobromobimane, as well as correlations with CBS enzymatic activity determined by LC-MS/MS showed agreement and correlation, and permitted the direct, time-resolved determination of H2S production rates by purified human recombinant CBS and by CBS present in fibroblast extracts. Rates of H2S production were highest for wild-type CBS, and lower for pathogenic variants. This method enables the examination of structural determinants of CBS that are important for H2S production and its possible relevance to the clinical outcome of patients.


Subject(s)
Biosensing Techniques , Cystathionine beta-Synthase , Homocystinuria , Hydrogen Sulfide , Hydrogen Sulfide/metabolism , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Humans , Biosensing Techniques/methods , Homocystinuria/genetics , Homocystinuria/metabolism , Homocystinuria/diagnosis , Homocystinuria/pathology , Hemoglobins/metabolism , Hemoglobins/genetics , Hemoglobins/chemistry , Mutation , Fibroblasts/metabolism
4.
FASEB J ; 38(13): e23795, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38984928

ABSTRACT

Cystathionine beta-synthase-deficient homocystinuria (HCU) is a life-threatening disorder of sulfur metabolism. HCU can be treated by using betaine to lower tissue and plasma levels of homocysteine (Hcy). Here, we show that mice with severely elevated Hcy and potentially deficient in the folate species tetrahydrofolate (THF) exhibit a very limited response to betaine indicating that THF plays a critical role in treatment efficacy. Analysis of a mouse model of HCU revealed a 10-fold increase in hepatic levels of 5-methyl -THF and a 30-fold accumulation of formiminoglutamic acid, consistent with a paucity of THF. Neither of these metabolite accumulations were reversed or ameliorated by betaine treatment. Hepatic expression of the THF-generating enzyme dihydrofolate reductase (DHFR) was significantly repressed in HCU mice and expression was not increased by betaine treatment but appears to be sensitive to cellular redox status. Expression of the DHFR reaction partner thymidylate synthase was also repressed and metabolomic analysis detected widespread alteration of hepatic histidine and glutamine metabolism. Many individuals with HCU exhibit endothelial dysfunction. DHFR plays a key role in nitric oxide (NO) generation due to its role in regenerating oxidized tetrahydrobiopterin, and we observed a significant decrease in plasma NOx (NO2 + NO3) levels in HCU mice. Additional impairment of NO generation may also come from the HCU-mediated induction of the 20-hydroxyeicosatetraenoic acid generating cytochrome CYP4A. Collectively, our data shows that HCU induces dysfunctional one-carbon metabolism with the potential to both impair betaine treatment and contribute to multiple aspects of pathogenesis in this disease.


Subject(s)
Homocystinuria , Liver , Oxidation-Reduction , Tetrahydrofolate Dehydrogenase , Tetrahydrofolates , Animals , Homocystinuria/metabolism , Homocystinuria/drug therapy , Homocystinuria/genetics , Mice , Tetrahydrofolates/metabolism , Liver/metabolism , Tetrahydrofolate Dehydrogenase/metabolism , Tetrahydrofolate Dehydrogenase/genetics , Betaine/metabolism , Betaine/pharmacology , Homocysteine/metabolism , Mice, Inbred C57BL , Cystathionine beta-Synthase/metabolism , Cystathionine beta-Synthase/genetics , Carbon/metabolism , Male , Folic Acid/metabolism , Female
5.
Int J Mol Sci ; 25(11)2024 May 25.
Article in English | MEDLINE | ID: mdl-38891956

ABSTRACT

Regulatory cystathionine ß-synthase (CBS) domains are widespread in proteins; however, difficulty in structure determination prevents a comprehensive understanding of the underlying regulation mechanism. Tetrameric microbial inorganic pyrophosphatase containing such domains (CBS-PPase) is allosterically inhibited by AMP and ADP and activated by ATP and cell alarmones diadenosine polyphosphates. Each CBS-PPase subunit contains a pair of CBS domains but binds cooperatively to only one molecule of the mono-adenosine derivatives. We used site-directed mutagenesis of Desulfitobacterium hafniense CBS-PPase to identify the key elements determining the direction of the effect (activation or inhibition) and the "half-of-the-sites" ligand binding stoichiometry. Seven amino acid residues were selected in the CBS1 domain, based on the available X-ray structure of the regulatory domains, and substituted by alanine and other residues. The interaction of 11 CBS-PPase variants with the regulating ligands was characterized by activity measurements and isothermal titration calorimetry. Lys100 replacement reversed the effect of ADP from inhibition to activation, whereas Lys95 and Gly118 replacements made ADP an activator at low concentrations but an inhibitor at high concentrations. Replacement of these residues for alanine increased the stoichiometry of mono-adenosine phosphate binding by twofold. These findings identified several key protein residues and suggested a "two non-interacting pairs of interacting regulatory sites" concept in CBS-PPase regulation.


Subject(s)
Cystathionine beta-Synthase , Cystathionine beta-Synthase/metabolism , Cystathionine beta-Synthase/chemistry , Cystathionine beta-Synthase/genetics , Mutation , Protein Binding , Mutagenesis, Site-Directed , Adenine Nucleotides/metabolism , Adenine Nucleotides/chemistry , Protein Domains , Pyrophosphatases/metabolism , Pyrophosphatases/chemistry , Pyrophosphatases/genetics , Adenosine Diphosphate/metabolism , Adenosine Triphosphate/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Inorganic Pyrophosphatase/metabolism , Inorganic Pyrophosphatase/chemistry , Inorganic Pyrophosphatase/genetics , Models, Molecular , Binding Sites
6.
Metab Eng ; 84: 128-144, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38908817

ABSTRACT

Chinese hamster ovary (CHO) cells require cysteine for growth and productivity in fed-batch cultures. In intensified processes, supplementation of cysteine at high concentrations is a challenge due to its limited solubility and instability in solution. Methionine can be converted to cysteine (CYS) but key enzymes, cystathionine beta-synthase (Cbs) and cystathionine gamma-lyase (Cth), are not active in CHO cells resulting in accumulation of an intermediate, homocysteine (HCY), in cell culture milieu. In this study, Cbs and Cth were overexpressed in CHO cells to confer cysteine prototrophy, i.e., the ability to grow in a cysteine free environment. These pools (CbCt) needed homocysteine and beta-mercaptoethanol (ßME) to grow in CYS-free medium. To increase intracellular homocysteine levels, Gnmt was overexpressed in CbCt pools. The resultant cell pools (GnCbCt), post adaptation in CYS-free medium with decreasing residual HCY and ßME levels, were able to proliferate in the HCY-free, ßME-free and CYS-free environment. Interestingly, CbCt pools were also able to be adapted to grow in HCY-free and CYS-free conditions, albeit at significantly higher doubling times than GnCbCt cells, but couldn't completely adapt to ßME-free conditions. Further, single cell clones derived from the GnCbCt cell pool had a wide range in expression levels of Cbs, Cth and Gnmt and, when cultivated in CYS-free fed-batch conditions, performed similarly to the wild type (WT) cell line cultivated in CYS supplemented fed-batch culture. Intracellular metabolomic analysis showed that HCY and glutathione (GSH) levels were lower in the CbCt pool in CYS-free conditions but were restored closer to WT levels in the GnCbCt cells cultivated in CYS-free conditions. Transcriptomic analysis showed that GnCbCt cells upregulated several genes encoding transporters as well as methionine catabolism and transsulfuration pathway enzymes that support these cells to biosynthesize cysteine effectively. Further, 'omics analysis suggested CbCt pool was under ferroptotic stress in CYS-free conditions, which, when inhibited, enhanced the growth and viability of these cells in CYS-free conditions.


Subject(s)
Cricetulus , Cysteine , Metabolic Engineering , CHO Cells , Animals , Cysteine/metabolism , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Cystathionine gamma-Lyase/genetics , Cystathionine gamma-Lyase/metabolism , Cricetinae , Homocysteine/metabolism , Homocysteine/genetics
7.
Redox Biol ; 73: 103222, 2024 07.
Article in English | MEDLINE | ID: mdl-38843767

ABSTRACT

BACKGROUND: Cystathionine ß-synthase (CBS)-deficient homocystinuria (HCU) is an inherited disorder of sulfur amino acid metabolism with varying severity and organ complications, and a limited knowledge about underlying pathophysiological processes. Here we aimed at getting an in-depth insight into disease mechanisms using a transgenic mouse model of HCU (I278T). METHODS: We assessed metabolic, proteomic and sphingolipidomic changes, and mitochondrial function in tissues and body fluids of I278T mice and WT controls. Furthermore, we evaluated the efficacy of methionine-restricted diet (MRD) in I278T mice. RESULTS: In WT mice, we observed a distinct tissue/body fluid compartmentalization of metabolites with up to six-orders of magnitude differences in concentrations among various organs. The I278T mice exhibited the anticipated metabolic imbalance with signs of an increased production of hydrogen sulfide and disturbed persulfidation of free aminothiols. HCU resulted in a significant dysregulation of liver proteome affecting biological oxidations, conjugation of compounds, and metabolism of amino acids, vitamins, cofactors and lipids. Liver sphingolipidomics indicated upregulation of the pro-proliferative sphingosine-1-phosphate signaling pathway. Liver mitochondrial function of HCU mice did not seem to be impaired compared to controls. MRD in I278T mice improved metabolic balance in all tissues and substantially reduced dysregulation of liver proteome. CONCLUSION: The study highlights distinct tissue compartmentalization of sulfur-related metabolites in normal mice, extensive metabolome, proteome and sphingolipidome disruptions in I278T mice, and the efficacy of MRD to alleviate some of the HCU-related biochemical abnormalities.


Subject(s)
Cystathionine beta-Synthase , Disease Models, Animal , Homocystinuria , Liver , Metabolomics , Mice, Transgenic , Proteomics , Sphingolipids , Animals , Mice , Homocystinuria/metabolism , Homocystinuria/genetics , Proteomics/methods , Cystathionine beta-Synthase/metabolism , Cystathionine beta-Synthase/deficiency , Cystathionine beta-Synthase/genetics , Liver/metabolism , Metabolomics/methods , Sphingolipids/metabolism , Mitochondria/metabolism , Lipidomics/methods , Proteome/metabolism
8.
Plant J ; 118(6): 2154-2168, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38558071

ABSTRACT

Verticillium wilt (VW) is a devasting disease affecting various plants, including upland cotton, a crucial fiber crop. Despite its impact, the genetic basis underlying cotton's susceptibility or defense against VW remains unclear. Here, we conducted a genome-wide association study on VW phenotyping in upland cotton and identified a locus on A13 that is significantly associated with VW resistance. We then identified a cystathionine ß-synthase domain gene at A13 locus, GhCBSX3A, which was induced by Verticillium dahliae. Functional analysis, including expression silencing in cotton and overexpression in Arabidopsis thaliana, confirmed that GhCBSX3A is a causal gene at the A13 locus, enhancing SAR-RBOHs-mediated apoplastic oxidative burst. We found allelic variation on the TATA-box of GhCBSX3A promoter attenuated its expression in upland cotton, thereby weakening VW resistance. Interestingly, we discovered that altered artificial selection of GhCBSX3A_R (an elite allele for VW) under different VW pressures during domestication and other improved processes allows specific human needs to be met. Our findings underscore the importance of GhCBSX3A in response to VW, and we propose a model for defense-associated genes being selected depending on the pathogen's pressure. The identified locus and gene serve as promising targets for VW resistance enhancement in cotton through genetic engineering.


Subject(s)
Ascomycota , Disease Resistance , Gossypium , Plant Diseases , Plant Proteins , Gossypium/genetics , Gossypium/microbiology , Gossypium/immunology , Gossypium/metabolism , Disease Resistance/genetics , Plant Diseases/microbiology , Plant Diseases/immunology , Plant Diseases/genetics , Ascomycota/physiology , Plant Proteins/genetics , Plant Proteins/metabolism , Genome-Wide Association Study , Respiratory Burst , Gene Expression Regulation, Plant , Arabidopsis/genetics , Arabidopsis/microbiology , Arabidopsis/immunology , Arabidopsis/metabolism , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Plants, Genetically Modified , Verticillium
9.
Geroscience ; 46(5): 4275-4314, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38558215

ABSTRACT

Down syndrome (DS) is a genetic condition where the person is born with an extra chromosome 21. DS is associated with accelerated aging; people with DS are prone to age-related neurological conditions including an early-onset Alzheimer's disease. Using the Dp(17)3Yey/ + mice, which overexpresses a portion of mouse chromosome 17, which encodes for the transsulfuration enzyme cystathionine ß-synthase (CBS), we investigated the functional role of the CBS/hydrogen sulfide (H2S) pathway in the pathogenesis of neurobehavioral dysfunction in DS. The data demonstrate that CBS is higher in the brain of the DS mice than in the brain of wild-type mice, with primary localization in astrocytes. DS mice exhibited impaired recognition memory and spatial learning, loss of synaptosomal function, endoplasmic reticulum stress, and autophagy. Treatment of mice with aminooxyacetate, a prototypical CBS inhibitor, improved neurobehavioral function, reduced the degree of reactive gliosis in the DS brain, increased the ability of the synaptosomes to generate ATP, and reduced endoplasmic reticulum stress. H2S levels in the brain of DS mice were higher than in wild-type mice, but, unexpectedly, protein persulfidation was decreased. Many of the above alterations were more pronounced in the female DS mice. There was a significant dysregulation of metabolism in the brain of DS mice, which affected amino acid, carbohydrate, lipid, endocannabinoid, and nucleotide metabolites; some of these alterations were reversed by treatment of the mice with the CBS inhibitor. Thus, the CBS/H2S pathway contributes to the pathogenesis of neurological dysfunction in DS in the current animal model.


Subject(s)
Autophagy , Cystathionine beta-Synthase , Disease Models, Animal , Down Syndrome , Endoplasmic Reticulum Stress , Hydrogen Sulfide , Up-Regulation , Animals , Cystathionine beta-Synthase/metabolism , Cystathionine beta-Synthase/genetics , Down Syndrome/metabolism , Down Syndrome/physiopathology , Down Syndrome/genetics , Hydrogen Sulfide/metabolism , Mice , Endoplasmic Reticulum Stress/physiology , Brain/metabolism , Aminooxyacetic Acid/pharmacology , Behavior, Animal , Male , Female , Synapses/metabolism
10.
Biochem J ; 481(8): 569-585, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38563463

ABSTRACT

Homocystinuria is a rare disease caused by mutations in the CBS gene that results in a deficiency of cystathionine ß-synthase (CBS). CBS is an essential pyridoxal 5'-phosphate (PLP)-dependent enzyme in the transsulfuration pathway, responsible for combining serine with homocysteine to produce cystathionine, whose activity is enhanced by the allosteric regulator S-adenosylmethionine (SAM). CBS also plays a role in generating hydrogen sulfide (H2S), a gaseous signaling molecule with diverse regulatory functions within the vascular, nervous, and immune systems. In this study, we present the clinical and biochemical characterization of two novel CBS missense mutations that do not respond to pyridoxine treatment, namely c.689T > A (L230Q) and 215A > T (K72I), identified in a Chinese patient. We observed that the disease-associated K72I genetic variant had no apparent effects on the spectroscopic and catalytic properties of the full-length enzyme. In contrast, the L230Q variant expressed in Escherichia coli did not fully retain heme and when compared with the wild-type enzyme, it exhibited more significant impairments in both the canonical cystathionine-synthesis and the alternative H2S-producing reactions. This reduced activity is consistent with both in vitro and in silico evidence, which indicates that the L230Q mutation significantly decreases the overall protein's stability, which in turn, may represent the underlying cause of its pathogenicity.


Subject(s)
Cystathionine beta-Synthase , Homocystinuria , Mutation, Missense , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/chemistry , Cystathionine beta-Synthase/metabolism , Homocystinuria/genetics , Homocystinuria/metabolism , Homocystinuria/enzymology , Humans , Male , Female
11.
Clin Exp Hypertens ; 46(1): 2328147, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38488417

ABSTRACT

BACKGROUND: Several studies indicate that the cystathionine ß-synthase (CBS) gene T833C, G919A and 844ins68 polymorphisms in the 8th exon region may be correlated with coronary artery disease (CAD) susceptibility, but the results have been inconsistent and inconclusive. Thus, a meta-analysis was conducted to provide a comprehensive estimate of these associations. METHODS: On the basis of searches in the PubMed, EMBASE, Cochrane Library, Wanfang, VIP, and CNKI databases, we selected 14 case - control studies including 2123 cases and 2368 controls for this meta-analysis. Pooled odds ratios (ORs) with 95% confidence intervals (CIs) were calculated accordingly using a fixed-effect or random-effect model. RESULTS: The results indicated an increased risk between the CBS T833C gene polymorphisms and susceptibility to CAD under the dominant model (CC+CT vs. TT: OR = 1.92, 95% CI: 1.11 ~ 3.32), recessive model (CC vs. CT+TT: OR = 1.88, 95% CI: 1.17 ~ 3.03), and homozygous model (CC vs. TT: OR = 2.46, 95% CI: 1.04 ~ 5.83). In these three genetic models, no significant association was identified for CBS G919A (AA+AG vs. GG: OR = 1.48, 95% CI: 0.45 ~ 4.82),(AA vs. AG+GG: OR = 1.58, 95% CI: 0.93 ~ 2.70),(AA vs. GG: OR = 1.66, 95% CI: 0.40 ~ 6.92) or CBS 844ins68 (II+ID vs. DD: OR = 1.04, 95% CI: 0.80 ~ 1.35),(II vs. ID+DD: OR = 1.09, 95% CI: 0.51 ~ 2.36),(II vs. DD: OR = 1.10, 95% CI: 0.51 ~ 2.39). CONCLUSIONS: This meta-analysis suggests that the CBS T833C gene polymorphism is significantly associated with the risk of CAD and it shows a stronger association in Asian populations. Individuals with the C allele of the CBS gene T833C polymorphism might be particularly susceptible to CAD.


Subject(s)
Coronary Artery Disease , Humans , Coronary Artery Disease/genetics , Cystathionine beta-Synthase/genetics , Polymorphism, Genetic , Homozygote , Exons/genetics , Genetic Predisposition to Disease , Polymorphism, Single Nucleotide/genetics
12.
Exp Cell Res ; 437(1): 114007, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38499142

ABSTRACT

Gastric cancer metastasis is a major cause of poor prognosis. Our previous research showed that methionine restriction (MR) lowers the invasiveness and motility of gastric carcinoma. In this study, we investigated the particular mechanisms of MR on gastric carcinoma metastasis. In vitro, gastric carcinoma cells (AGS, SNU-5, MKN7, KATO III, SNU-1, and MKN45) were grown in an MR medium for 24 h. In vivo, BALB/c mice were given a methionine-free (Met-) diet. Transwell assays were used to investigate cell invasion and migration. The amounts of Krüppel like factor 10 (KLF10) and cystathionine ß-synthase (CBS) were determined using quantitative real-time PCR and Western blot. To determine the relationship between KLF10 and CBS, chromatin immunoprecipitation and a dual-luciferase reporter experiment were used. Hematoxylin-eosin staining was used to detect lung metastasis. Liquid chromatography-mass spectrometry was used to determine cystathionine content. MR therapy had varying effects on the invasion and migration of gastric carcinoma cells AGS, SNU-5, MKN7, KATO III, SNU-1, and MKN45. KLF10 was highly expressed in AGS cells but poorly expressed in KATO III cells. KLF10 improved MR's ability to prevent gastric carcinoma cell invasion and migration. In addition, KLF10 may interact with CBS, facilitating transcription. Further detection revealed that inhibiting the KLF10/CBS-mediated trans-sulfur pathway lowered Met-'s inhibitory effect on lung metastasis development. KLF10 transcription activated CBS, accelerated the trans-sulfur pathway, and increased gastric carcinoma cells' susceptibility to MR.


Subject(s)
Carcinoma , Lung Neoplasms , Stomach Neoplasms , Mice , Animals , Methionine/metabolism , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Stomach Neoplasms/pathology , Racemethionine , Sulfur , Lung Neoplasms/genetics , Kruppel-Like Transcription Factors/genetics , Kruppel-Like Transcription Factors/metabolism , Early Growth Response Transcription Factors/metabolism
13.
Commun Biol ; 7(1): 9, 2024 01 03.
Article in English | MEDLINE | ID: mdl-38172561

ABSTRACT

There are limited therapeutic options for patients with advanced prostate cancer (PCa). We previously found that heat shock factor 1 (HSF1) expression is increased in PCa and is an actionable target. In this manuscript, we identify that HSF1 regulates the conversion of homocysteine to cystathionine in the transsulfuration pathway by altering levels of cystathionine-ß-synthase (CBS). We find that HSF1 directly binds the CBS gene and upregulates CBS mRNA levels. Targeting CBS decreases PCa growth and induces tumor cell death while benign prostate cells are largely unaffected. Combined inhibition of HSF1 and CBS results in more pronounced inhibition of PCa cell proliferation and reduction of transsulfuration pathway metabolites. Combination of HSF1 and CBS knockout decreases tumor size for a small cell PCa xenograft mouse model. Our study thus provides new insights into the molecular mechanism of HSF1 function and an effective therapeutic strategy against advanced PCa.


Subject(s)
Cystathionine , Prostatic Neoplasms , Male , Humans , Mice , Animals , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Cell Proliferation , Prostatic Neoplasms/genetics , Heat-Shock Response
14.
Free Radic Biol Med ; 210: 13-24, 2024 01.
Article in English | MEDLINE | ID: mdl-37951283

ABSTRACT

Cystathionine-ß-synthase (CBS) catalyzes the first step of the transsulfuration pathway. The role of host-derived CBS in Staphylococcus aureus (S. aureus)-induced udder infection remains elusive. Herein, we report that S. aureus infection enhances the expression of CBS in mammary epithelial cells in vitro and in vivo. A negative correlation is present between the expression of CBS and inflammation after employing a pharmacological inhibitor/agonist of CBS. In addition, CBS achieves a fine balance between eliciting sufficient protective innate immunity and preventing excessive damage to cells and tissues preserving the integrity of the blood-milk barrier (BMB). CBS/H2S reduces bacterial load by promoting the generation of antibacterial substances (ROS, RNS) and inhibiting apoptosis, as opposed to relying solely on intense inflammatory reactions. Conversely, H2S donor alleviate inflammation via S-sulfhydrating HuR. Finally, CBS/H2S promotes the expression of Abcb1b, which in turn strengthens the integrity of the BMB. The study described herein demonstrates the importance of CBS in regulating the mammary immune response to S. aureus. Increased CBS in udder tissue modulates excessive inflammation, which suggests a novel target for drug development in the battle against S. aureus and other infections.


Subject(s)
Cystathionine beta-Synthase , Hydrogen Sulfide , Animals , Humans , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Staphylococcus aureus/metabolism , Cystathionine , Mammary Glands, Animal/metabolism , Inflammation , Hydrogen Sulfide/metabolism
15.
Mol Cell Biochem ; 479(4): 825-829, 2024 Apr.
Article in English | MEDLINE | ID: mdl-37198322

ABSTRACT

One in 700 children is born with the down syndrome (DS). In DS, there is an extra copy of X chromosome 21 (trisomy). Interestingly, the chromosome 21 also contains an extra copy of the cystathionine beta synthase (CBS) gene. The CBS activity is known to contribute in mitochondrial sulfur metabolism via trans-sulfuration pathway. We hypothesize that due to an extra copy of the CBS gene there is hyper trans-sulfuration in DS. We believe that understanding the mechanism of hyper trans-sulfuration during DS will be important in improving the quality of DS patients and towards developing new treatment strategies. We know that folic acid "1-carbon" metabolism (FOCM) cycle transfers the "1-carbon" methyl group to DNA (H3K4) via conversion of s-adenosyl methionine (SAM) to s-adenosyl homocysteine (SAH) by DNMTs (the gene writers). The demethylation reaction is carried out by ten-eleven translocation methylcytosine dioxygenases (TETs; the gene erasers) through epigenetics thus turning the genes off/on and opening the chromatin by altering the acetylation/HDAC ratio. The S-adenosyl homocysteine hydrolase (SAHH) hydrolyzes SAH to homocysteine (Hcy) and adenosine. The Hcy is converted to cystathionine, cysteine and hydrogen sulfide (H2S) via CBS/cystathioneγ lyase (CSE)/3-mercaptopyruvate sulfurtransferase (3MST) pathways. Adenosine by deaminase is converted to inosine and then to uric acid. All these molecules remain high in DS patients. H2S is a potent inhibitor of mitochondrial complexes I-IV, and regulated by UCP1. Therefore, decreased UCP1 levels and ATP production can ensue in DS subjects. Interestingly, children born with DS show elevated levels of CBS/CSE/3MST/Superoxide dismutase (SOD)/cystathionine/cysteine/H2S. We opine that increased levels of epigenetic gene writers (DNMTs) and decreased in gene erasers (TETs) activity cause folic acid exhaustion, leading to an increase in trans-sulphuration by CBS/CSE/3MST/SOD pathways. Thus, it is important to determine whether SIRT3 (inhibitor of HDAC3) can decrease the trans-sulfuration activity in DS patients. Since there is an increase in H3K4 and HDAC3 via epigenetics in DS, we propose that sirtuin-3 (Sirt3) may decrease H3K4 and HDAC3 and hence may be able to decrease the trans-sulfuration in DS. It would be worth to determine whether the lactobacillus, a folic acid producing probiotic, mitigates hyper-trans-sulphuration pathway in DS subjects. Further, as we know that in DS patients the folic acid is exhausted due to increase in CBS, Hcy and re-methylation. In this context, we suggest that folic acid producing probiotics such as lactobacillus might be able to improve re-methylation process and hence may help decrease the trans-sulfuration pathway in the DS patients.


Subject(s)
Down Syndrome , Hydrogen Sulfide , Kidney Diseases , Sirtuin 3 , Child , Humans , Cystathionine/genetics , Cystathionine/metabolism , Down Syndrome/genetics , Trisomy , Cysteine , Sirtuin 3/genetics , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Hydrogen Sulfide/metabolism , S-Adenosylmethionine , Superoxide Dismutase/metabolism , Adenosine , Kidney Diseases/metabolism , Folic Acid , Homocysteine , Carbon , Cystathionine gamma-Lyase/genetics , Cystathionine gamma-Lyase/metabolism
16.
Mol Cell Biol ; 43(12): 664-674, 2023.
Article in English | MEDLINE | ID: mdl-38051092

ABSTRACT

Homocystinuria (HCU), an inherited metabolic disorder caused by lack of cystathionine beta-synthase (CBS) activity, is chiefly caused by misfolding of single amino acid residue missense pathogenic variants. Previous studies showed that chemical, pharmacological chaperones or proteasome inhibitors could rescue function of multiple pathogenic CBS variants; however, the underlying mechanisms remain poorly understood. Using Chinese hamster DON fibroblasts devoid of CBS and stably overexpressing human WT or mutant CBS, we showed that expression of pathogenic CBS variant mostly dysregulates gene expression of small heat shock proteins HSPB3 and HSPB8 and members of HSP40 family. Endoplasmic reticulum stress sensor BiP was found upregulated with CBS I278T variant associated with proteasomes suggesting proteotoxic stress and degradation of misfolded CBS. Co-expression of the main effector HSP70 or master regulator HSF1 rescued steady-state levels of CBS I278T and R125Q variants with partial functional rescue of the latter. Pharmacological proteostasis modulators partially rescued expression and activity of CBS R125Q likely due to reduced proteotoxic stress as indicated by decreased BiP levels and promotion of refolding as indicated by induction of HSP70. In conclusion, targeted manipulation of cellular proteostasis may represent a viable therapeutic approach for the permissive pathogenic CBS variants causing HCU.


Subject(s)
Cystathionine beta-Synthase , Homocystinuria , Humans , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/chemistry , Cystathionine beta-Synthase/metabolism , Homocystinuria/drug therapy , Homocystinuria/genetics , Homocystinuria/metabolism , Cystathionine/metabolism , Cystathionine/therapeutic use , Proteostasis , Molecular Chaperones/genetics , Molecular Chaperones/metabolism , HSP70 Heat-Shock Proteins/genetics , HSP70 Heat-Shock Proteins/metabolism , Heat-Shock Proteins/metabolism
17.
Int J Mol Sci ; 24(24)2023 Dec 05.
Article in English | MEDLINE | ID: mdl-38138989

ABSTRACT

Regulatory adenine nucleotide-binding cystathionine ß-synthase (CBS) domains are widespread in proteins; however, information on the mechanism of their modulating effects on protein function is scarce. The difficulty in obtaining structural data for such proteins is ascribed to their unusual flexibility and propensity to form higher-order oligomeric structures. In this study, we deleted the most movable domain from the catalytic part of a CBS domain-containing bacterial inorganic pyrophosphatase (CBS-PPase) and characterized the deletion variant both structurally and functionally. The truncated CBS-PPase was inactive but retained the homotetrameric structure of the full-size enzyme and its ability to bind a fluorescent AMP analog (inhibitor) and diadenosine tetraphosphate (activator) with the same or greater affinity. The deletion stabilized the protein structure against thermal unfolding, suggesting that the deleted domain destabilizes the structure in the full-size protein. A "linear" 3D structure with an unusual type of domain swapping predicted for the truncated CBS-PPase by Alphafold2 was confirmed by single-particle electron microscopy. The results suggest a dual role for the CBS domains in CBS-PPase regulation: they allow for enzyme tetramerization, which impedes the motion of one catalytic domain, and bind adenine nucleotides to mitigate or aggravate this effect.


Subject(s)
Cystathionine beta-Synthase , Pyrophosphatases , Pyrophosphatases/metabolism , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Catalytic Domain , Bacterial Proteins/metabolism , Nucleotides
18.
Redox Biol ; 68: 102958, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37948927

ABSTRACT

Astrocytic dysfunction is central to age-related neurodegenerative diseases. However, the mechanisms leading to astrocytic dysfunction are not well understood. We identify that among the diverse cellular constituents of the brain, murine and human astrocytes are enriched in the expression of CBS. Depleting CBS in astrocytes causes mitochondrial dysfunction, increases the production of reactive oxygen species (ROS) and decreases cellular bioenergetics that can be partially rescued by exogenous H2S supplementation or by re-expressing CBS. Conversely, the CBS/H2S axis, associated protein persulfidation and proliferation are decreased in astrocytes upon oxidative stress which can be rescued by exogenous H2S supplementation. Here we reveal that in the aging brain, the CBS/H2S axis is downregulated leading to decreased protein persulfidation, together augmenting oxidative stress. Our findings uncover an important protective role of the CBS/H2S axis in astrocytes that may be disrupted in the aged brain.


Subject(s)
Aging , Astrocytes , Brain , Cystathionine beta-Synthase , Aged , Animals , Humans , Mice , Aging/metabolism , Aging/pathology , Astrocytes/metabolism , Astrocytes/pathology , Brain/metabolism , Brain/pathology , Cystathionine/metabolism , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Hydrogen Sulfide/pharmacology , Hydrogen Sulfide/metabolism
19.
J Biol Chem ; 299(12): 105449, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37949228

ABSTRACT

Cystathionine ß-synthase (CBS) catalyzes the committing step in the transsulfuration pathway, which is important for clearing homocysteine and furnishing cysteine. The transsulfuration pathway also generates H2S, a signaling molecule. CBS is a modular protein with a heme and pyridoxal phosphate-binding catalytic core, which is separated by a linker region from the C-terminal regulatory domain that binds S-adenosylmethionine (AdoMet), an allosteric activator. Recent cryo-EM structures reveal that CBS exists in a fibrillar form and undergoes a dramatic architectural rearrangement between the basal and AdoMet-bound states. CBS is the single most common locus of mutations associated with homocystinuria, and, in this study, we have characterized three clinical variants (K384E/N and M391I), which reside in the linker region. The native fibrillar form is destabilized in the variants, and differences in their limited proteolytic fingerprints also reveal conformational alterations. The crystal structure of the truncated K384N variant, lacking the regulatory domain, reveals that the overall fold of the catalytic core is unperturbed. M391I CBS exhibits a modest (1.4-fold) decrease while the K384E/N variants exhibit a significant (∼8-fold) decrease in basal activity, which is either unresponsive to or inhibited by AdoMet. Pre-steady state kinetic analyses reveal that the K384E/N substitutions exhibit pleiotropic effects and that the differences between them are expressed in the second half reaction, that is, homocysteine binding and reaction with the aminoacrylate intermediate. Together, these studies point to an important role for the linker in stabilizing the higher-order oligomeric structure of CBS and enabling AdoMet-dependent regulation.


Subject(s)
Cystathionine beta-Synthase , Mutation , Humans , Allosteric Regulation/genetics , Crystallography, X-Ray , Cystathionine beta-Synthase/chemistry , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Homocysteine/metabolism , Homocystinuria/enzymology , Homocystinuria/genetics , Kinetics , S-Adenosylmethionine/metabolism , Protein Conformation , Catalytic Domain
20.
Eur J Med Res ; 28(1): 540, 2023 Nov 25.
Article in English | MEDLINE | ID: mdl-38007457

ABSTRACT

Activating transcription factor 6 (ATF6) is an endoplasmic reticulum stress responsive gene. We previously reported that conditional knockout of hepatic ATF6 exacerbated liver metabolic damage by repressing autophagy through mTOR pathway. However, the mechanism by which ATF6 influence liver metabolism has not been well established. Hydrogen sulfide (H2S) is a gaseous signaling molecule that plays an important role in regulating inflammation, and suppress nonalcoholic fatty liver in mice. Based on the previous study, we assumed that ATF6 may regulate H2S production to participate in liver metabolism. In order to clarify the mechanism by which ATF6 regulates H2S synthesis to ameliorate liver steatosis and inflammatory environment, we conducted the present study. We used the liver specific ATF6 knockout mice and fed on high-fat-diet, and found that H2S level was significantly downregulated in hepatic ATF6 knockout mice. Restoring H2S by the administration of slow H2S releasing agent GYY4137 ameliorated the hepatic steatosis and glucose tolerance. ATF6 directly binds to the promoter of cystathionine ß synthetase (CBS), an important enzyme in H2S synthesis. Thus, ATF6 could upregulate H2S production through CBS. Sulfhydrated Sirtuin-1 (SIRT1) was downregulated in ATF6 knockout mice. The expression of pro-inflammatory factor IL-17A was upregulated and anti-inflammatory factor IL-10 was downregulated in ATF6 knockout mice. Our results suggest that ATF6 can transcriptionally enhance CBS expression as well as H2S synthesis. ATF6 increases SIRT1 sulfhydration and ameliorates lipogenesis and inflammation in the fatty liver. Therefore, ATF6 could be a novel therapeutic strategy for high-fat diet induced fatty liver metabolic abnormalities.


Subject(s)
Fatty Liver , Hydrogen Sulfide , Animals , Mice , Activating Transcription Factor 6/metabolism , Cystathionine/metabolism , Cystathionine beta-Synthase/genetics , Cystathionine beta-Synthase/metabolism , Hydrogen Sulfide/metabolism , Hydrogen Sulfide/pharmacology , Inflammation/metabolism , Ligases/metabolism , Liver/metabolism , Mice, Knockout , Sirtuin 1/metabolism
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