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1.
Cell ; 179(4): 864-879.e19, 2019 10 31.
Article in English | MEDLINE | ID: mdl-31675497

ABSTRACT

Physical or mental stress leads to neuroplasticity in the brain and increases the risk of depression and anxiety. Stress exposure causes the dysfunction of peripheral T lymphocytes. However, the pathological role and underlying regulatory mechanism of peripheral T lymphocytes in mood disorders have not been well established. Here, we show that the lack of CD4+ T cells protects mice from stress-induced anxiety-like behavior. Physical stress-induced leukotriene B4 triggers severe mitochondrial fission in CD4+ T cells, which further leads to a variety of behavioral abnormalities including anxiety, depression, and social disorders. Metabolomic profiles and single-cell transcriptome reveal that CD4+ T cell-derived xanthine acts on oligodendrocytes in the left amygdala via adenosine receptor A1. Mitochondrial fission promotes the de novo synthesis of purine via interferon regulatory factor 1 accumulation in CD4+ T cells. Our study implicates a critical link between a purine metabolic disorder in CD4+ T cells and stress-driven anxiety-like behavior.


Subject(s)
Anxiety/metabolism , Behavior, Animal/physiology , Brain Diseases, Metabolic/metabolism , Stress, Psychological/metabolism , Amygdala/metabolism , Amygdala/pathology , Animals , Anxiety/genetics , Anxiety/immunology , Anxiety/physiopathology , Brain Diseases, Metabolic/genetics , Brain Diseases, Metabolic/physiopathology , CD4-Positive T-Lymphocytes/metabolism , CD4-Positive T-Lymphocytes/pathology , Disease Models, Animal , Humans , Mice , Mitochondrial Dynamics/genetics , Oligodendroglia/metabolism , Oligodendroglia/pathology , Single-Cell Analysis , Stress, Psychological/genetics , Stress, Psychological/physiopathology , Transcriptome/genetics , Xanthine/metabolism
2.
Proc Natl Acad Sci U S A ; 119(22): e2120246119, 2022 05 31.
Article in English | MEDLINE | ID: mdl-35622895

ABSTRACT

The aptamer portions of previously reported riboswitch classes that sense guanine, adenine, or 2'-deoxyguanosine are formed by a highly similar three-stem junction with distinct nucleotide sequences in the regions joining the stems. The nucleotides in these joining regions form the major features of the selective ligand-binding pocket for each aptamer. Previously, we reported the existence of additional, rare variants of the predominant guanine-sensing riboswitch class that carry nucleotide differences in the ligand-binding pocket, suggesting that these RNAs have further diversified their structures and functions. Herein, we report the discovery and analysis of three naturally occurring variants of guanine riboswitches that are narrowly distributed across Firmicutes. These RNAs were identified using comparative sequence analysis methods, which also revealed that some of the gene associations for these variants are atypical for guanine riboswitches or their previously known natural variants. Binding assays demonstrate that the newfound variant riboswitch representatives recognize xanthine, guanine, or 2'-deoxyguanosine, with the guanine class exhibiting greater discrimination against related purines than the more common guanine riboswitch class reported previously. These three additional variant classes, together with the four previously discovered riboswitch classes that employ the same three-stem junction architecture, reveal how a simple structural framework can be diversified to expand the range of purine-based ligands sensed by RNA.


Subject(s)
Deoxyguanosine , Firmicutes , Guanine , Riboswitch , Xanthine , Deoxyguanosine/metabolism , Firmicutes/genetics , Firmicutes/metabolism , Guanine/metabolism , Ligands , Nucleic Acid Conformation , Riboswitch/genetics , Riboswitch/physiology , Xanthine/metabolism
3.
EMBO J ; 38(6)2019 03 15.
Article in English | MEDLINE | ID: mdl-30796049

ABSTRACT

Aberrant mitochondrial function contributes to the pathogenesis of various metabolic and chronic disorders. Inhibition of insulin/IGF-1 signaling (IIS) represents a promising avenue for the treatment of mitochondrial diseases, although many of the molecular mechanisms underlying this beneficial effect remain elusive. Using an unbiased multi-omics approach, we report here that IIS inhibition reduces protein synthesis and favors catabolism in mitochondrial deficient Caenorhabditis elegans We unveil that the lifespan extension does not occur through the restoration of mitochondrial respiration, but as a consequence of an ATP-saving metabolic rewiring that is associated with an evolutionarily conserved phosphoproteome landscape. Furthermore, we identify xanthine accumulation as a prominent downstream metabolic output of IIS inhibition. We provide evidence that supplementation of FDA-approved xanthine derivatives is sufficient to promote fitness and survival of nematodes carrying mitochondrial lesions. Together, our data describe previously unknown molecular components of a metabolic network that can extend the lifespan of short-lived mitochondrial mutant animals.


Subject(s)
Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans/growth & development , Longevity , Mitochondria/drug effects , Mitochondrial Diseases/prevention & control , Xanthine/administration & dosage , Xanthine/metabolism , Adenosine Triphosphate/metabolism , Animals , Caenorhabditis elegans/drug effects , Caenorhabditis elegans/metabolism , Caenorhabditis elegans Proteins/genetics , Insulin/chemistry , Insulin-Like Growth Factor I/antagonists & inhibitors , Metabolome , Mitochondria/metabolism , Mitochondria/pathology , Mitochondrial Diseases/metabolism , Mitochondrial Diseases/pathology , Proteome , Transcriptome
4.
J Chem Inf Model ; 63(13): 4190-4206, 2023 07 10.
Article in English | MEDLINE | ID: mdl-37319436

ABSTRACT

Xanthine oxidoreductase (XOR) is an enzyme found in various organisms. It converts hypoxanthine to xanthine and urate, which are crucial steps in purine elimination in humans. Elevated uric acid levels can lead to conditions like gout and hyperuricemia. Therefore, there is significant interest in developing drugs that target XOR for treating these conditions and other diseases. Oxipurinol, an analogue of xanthine, is a well-known inhibitor of XOR. Crystallographic studies have revealed that oxipurinol directly binds to the molybdenum cofactor (MoCo) in XOR. However, the precise details of the inhibition mechanism are still unclear, which would be valuable for designing more effective drugs with similar inhibitory functions. In this study, molecular dynamics and quantum mechanics/molecular mechanics calculations are employed to investigate the inhibition mechanism of XOR by oxipurinol. The study examines the structural and dynamic effects of oxipurinol on the pre-catalytic structure of the metabolite-bound system. Our results provide insights on the reaction mechanism catalyzed by the MoCo center in the active site, which aligns well with experimental findings. Furthermore, the results provide insights into the residues surrounding the active site and propose an alternative mechanism for developing alternative covalent inhibitors.


Subject(s)
Metalloproteins , Oxypurinol , Humans , Xanthine Dehydrogenase/chemistry , Xanthine Dehydrogenase/metabolism , Xanthine/metabolism , Uric Acid/metabolism , Coenzymes/metabolism , Metalloproteins/chemistry
5.
Biosci Biotechnol Biochem ; 87(4): 420-425, 2023 Mar 21.
Article in English | MEDLINE | ID: mdl-36756780

ABSTRACT

2-Azahypoxanthine (AHX) and 2-aza-8-oxohypoxanthine (AOH), discovered as causal substances of fairy rings are known to be endogenous in the fairy ring-forming Lepista sordida. In this study, we showed that xanthine dioxygenase, an a-ketoglutarate-dependent dioxygenase, might catalyze the conversion of AHX to AOH in the fungus. Furthermore, this enzyme is the first reported molybdopterin-independent protein of hypoxanthine metabolism.


Subject(s)
Agaricales , Dioxygenases , Biosynthetic Pathways , Xanthine/metabolism , Dioxygenases/metabolism , Agaricales/metabolism , Hypoxanthines/metabolism
6.
J Am Chem Soc ; 144(11): 5180-5189, 2022 03 23.
Article in English | MEDLINE | ID: mdl-35255213

ABSTRACT

Highly reflective crystals of the nucleotide base guanine are widely distributed in animal coloration and visual systems. Organisms precisely control the morphology and organization of the crystals to optimize different optical effects, but little is known about how this is achieved. Here we examine a fundamental question that has remained unanswered after over 100 years of research on guanine: what are the crystals made of? Using solution-state and solid-state chemical techniques coupled with structural analysis by powder XRD and solid-state NMR, we compare the purine compositions and the structures of seven biogenic guanine crystals with different crystal morphologies, testing the hypothesis that intracrystalline dopants influence the crystal shape. We find that biogenic "guanine" crystals are not pure crystals but molecular alloys (aka solid solutions and mixed crystals) of guanine, hypoxanthine, and sometimes xanthine. Guanine host crystals occlude homogeneous mixtures of other purines, sometimes in remarkably large amounts (up to 20% of hypoxanthine), without significantly altering the crystal structure of the guanine host. We find no correlation between the biogenic crystal morphology and dopant content and conclude that dopants do not dictate the crystal morphology of the guanine host. The ability of guanine crystals to host other molecules enables animals to build physiologically "cheaper" crystals from mixtures of metabolically available purines, without impeding optical functionality. The exceptional levels of doping in biogenic guanine offer inspiration for the design of mixed molecular crystals that incorporate multiple functionalities in a single material.


Subject(s)
Guanine , Purines , Animals , Guanine/metabolism , Hypoxanthine/metabolism , Purines/chemistry , Xanthine/metabolism
7.
Mol Microbiol ; 115(4): 610-622, 2021 04.
Article in English | MEDLINE | ID: mdl-33053234

ABSTRACT

One of the most commonly prescribed antibiotics against Burkholderia infections is co-trimoxazole, a cocktail of trimethoprim and sulfamethoxazole. Trimethoprim elicits an upregulation of the mal gene cluster, which encodes proteins involved in synthesis of the cytotoxic polyketide malleilactone; trimethoprim does so by increasing expression of the malR gene, which encodes the activator MalR. We report that B. thailandensis grown on trimethoprim exhibited increased virulence against Caenorhabditis elegans. This enhanced virulence correlated with an increase in expression of the mal gene cluster. Notably, inhibition of xanthine dehydrogenase by addition of allopurinol led to similar upregulation of malA and malR, with addition of trimethoprim or allopurinol also resulting in an equivalent intracellular accumulation of xanthine. Xanthine is a ligand for the transcription factor MftR that leads to attenuated DNA binding, and we show using chromatin immunoprecipitation that MftR binds directly to malR. Our gene expression data suggest that malR expression is repressed by both MftR and by a separate transcription factor, which also responds to a metabolite that accumulates on exposure to trimethoprim. Since allopurinol elicits a similar increase in malR/malA expression as trimethoprim, we suggest that impaired purine homeostasis plays a primary role in trimethoprim-mediated induction of malR and in turn malA.


Subject(s)
Bacterial Proteins/physiology , Burkholderia/drug effects , Burkholderia/physiology , Caenorhabditis elegans/microbiology , Gene Expression Regulation, Bacterial , Purines/metabolism , Repressor Proteins/physiology , Trimethoprim/pharmacology , Animals , Anti-Bacterial Agents/pharmacology , Burkholderia/pathogenicity , Burkholderia Infections/microbiology , Homeostasis , Multigene Family , Sulfamethoxazole/pharmacology , Transcription Factors/metabolism , Trimethoprim, Sulfamethoxazole Drug Combination/pharmacology , Virulence , Xanthine/metabolism
8.
RNA ; 26(8): 960-968, 2020 08.
Article in English | MEDLINE | ID: mdl-32345632

ABSTRACT

Dozens of candidate orphan riboswitch classes have been discovered previously by using comparative sequence analysis algorithms to search bacterial genomic sequence databases. Each orphan is classified by the presence of distinct conserved nucleotide sequences and secondary structure features, and by its association with particular types of genes. One previously reported orphan riboswitch candidate is the "NMT1 motif," which forms a hairpin structure with an internal bulge that includes numerous highly conserved nucleotides. This motif associates with genes annotated to encode various dioxygenase enzymes, transporters, or proteins that have roles associated with thiamin or histidine metabolism. Biochemical evaluation of numerous ligand candidates revealed that NMT1 motif RNA constructs most tightly bind 8-azaxanthine, xanthine, and uric acid, whereas most other closely related compounds are strongly rejected. Genetic assays revealed that NMT1 motif RNAs function to turn off gene expression upon ligand binding, likely by regulating translation initiation. These results suggest that NMT1 motif RNAs function as aptamer domains for a riboswitch class that specifically responds to high concentrations of oxidized purines. Members of this "xanthine riboswitch" class appear to regulate genes predominantly related to purine transport and oxidation, thus avoiding the effects of overproduction of these common purine derivatives.


Subject(s)
Purines/metabolism , RNA, Bacterial/genetics , Riboswitch/genetics , Uric Acid/metabolism , Xanthine/metabolism , Aptamers, Nucleotide/genetics , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Dioxygenases/genetics , Dioxygenases/metabolism , Gene Expression Regulation, Bacterial/genetics , Ligands , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Nucleic Acid Conformation , Nucleotide Motifs/genetics , Oxidation-Reduction , Xanthines/metabolism
9.
Mol Microbiol ; 114(1): 151-171, 2020 07.
Article in English | MEDLINE | ID: mdl-32198949

ABSTRACT

Sinorhizobium (Ensifer) meliloti is a model example of a soil alpha-proteobacterium which induces the formation of nitrogen-fixing symbiotic nodules on the legume roots. In contrast to all other rhizobacterial species, S. meliloti contains multiple homologs of nucleobase transporter genes that belong to NAT/NCS2 family (Nucleobase-Ascorbate Transporter/Nucleobase-Cation Symporter-2). We analyzed functionally all (six) relevant homologs of S. meliloti 1,021 using Escherichia coli K-12 as a host and found that five of them are high-affinity transporters for xanthine (SmLL9), uric acid (SmLL8, SmLL9, SmX28), adenine (SmVC3, SmYE1), guanine (SmVC3), or hypoxanthine (SmVC3). Detailed analysis of substrate profiles showed that two of these transporters display enlarged specificity (SmLL9, SmVC3). SmLL9 is closely related in sequence with the xanthine-specific XanQ of E. coli. We subjected SmLL9 to rationally designed site-directed mutagenesis and found that the role of key binding-site residues of XanQ is conserved in SmLL9, whereas a single amino-acid change (S93N) converts the xanthine/uric-acid transporter SmLL9 to a xanthine-preferring variant, due to disruption of an essential hydrogen bond with the C8 oxygen of uric acid. The results highlight the presence of several different purine nucleobase transporters in S. meliloti and imply that the purine transport might be important in the nodule symbiosis involving S. meliloti.


Subject(s)
Biological Transport, Active/genetics , Sinorhizobium meliloti/genetics , Sinorhizobium meliloti/metabolism , Symporters/genetics , Symporters/metabolism , Adenine/metabolism , Escherichia coli K12/genetics , Escherichia coli K12/metabolism , Guanine/metabolism , Hypoxanthine/metabolism , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Plant Root Nodulation/physiology , Rhizosphere , Root Nodules, Plant/microbiology , Uric Acid/metabolism , Xanthine/metabolism
10.
Toxicol Appl Pharmacol ; 431: 115734, 2021 11 15.
Article in English | MEDLINE | ID: mdl-34606778

ABSTRACT

Emodin is the major anthraquinone component of many important traditional Chinese herbs, such as Rheum palmatum L. and Polygonum multiflorum Thunb. They have been popular health products but recently aroused concerns about their hepatotoxicity, which are believed to be arising from the contained anthraquinones, such as emodin. However, emodin exerts potent hepatoprotective ability, such as anti-fibrotic, anti-oxidative, and anti-inflammatory effects. In this study, 1H NMR based metabolomics approach, complemented with histopathological observation, biochemical measurements, western blotting analysis and real-time quantitative PCR (RT-qPCR), was applied to interpret the paradox of emodin (30 mg/kg, 10 mg/kg BW) using both healthy mice (male, ICR) and chronic CCl4-injured mice (0.1 mL/kg, 0.35% CCl4, 3 times a week for a month). Emodin exerted a weight loss property associated with its lipid-lowing effects, which helped alleviate CCl4-induced steatosis. Emodin effectively ameliorated CCl4-induced oxidative stress and energy metabolism dysfunction in mice liver via regulating glucose, lipid and amino acid metabolism, and inhibited excessive inflammatory response. In healthy mice, emodin only exhibited hepatoxicity on high-dosage by disturbing hepatic anti-oxidant homeostasis, especially GSH and xanthine metabolism. This integrated metabolomics approach identified the bidirectional potential of emodin, which are important for its rational use.


Subject(s)
Chemical and Drug Induced Liver Injury , Emodin/pharmacology , Energy Metabolism/drug effects , Liver/drug effects , Metabolome/drug effects , Metabolomics , Proton Magnetic Resonance Spectroscopy , Animals , Anti-Inflammatory Agents/pharmacology , Antioxidants/pharmacology , Carbon Tetrachloride , Chemical and Drug Induced Liver Injury/etiology , Chemical and Drug Induced Liver Injury/metabolism , Chemical and Drug Induced Liver Injury/prevention & control , Disease Models, Animal , Emodin/toxicity , Glutathione/metabolism , Liver/metabolism , Male , Mice, Inbred ICR , Molecular Docking Simulation , NF-kappa B/metabolism , Oxidative Stress/drug effects , Risk Assessment , Signal Transduction , Xanthine/metabolism
11.
J Appl Microbiol ; 130(6): 2132-2140, 2021 Jun.
Article in English | MEDLINE | ID: mdl-33090589

ABSTRACT

AIMS: Purine-degrading enzymes are favourable as medications and diagnostic tools for hyperuricemia. This study aimed to characterize enzymes isolated from micro-organisms, which may be useful for developing a new prophylaxis for hyperuricemia. METHODS AND RESULTS: Cellulosimicrobium funkei A153 was found to be a good catalyst for hypoxanthine degradation and could oxidize hypoxanthine to xanthine and further to uric acid. The enzyme catalysing this oxidation was purified, and its partial amino acid sequences were examined. Based on this information and genome sequencing results, this xanthine dehydrogenase family protein was cloned and expressed in Rhodococcus erythropolis L88. The recombinant enzyme with a His-tag was characterized. The enzyme was a xanthine oxidase as it could utilize molecular oxygen as an electron acceptor. It was stable under 50°C and exhibited maximum activity at pH 7·0. The kcat , Km and kcat /Km values for xanthine were 1·4 s-1 , 0·22 mmol l-1 and 6·4 s-1  mmol-1  l, respectively. CONCLUSIONS: Xanthine oxidase is favourable for hyperuricemia medication because it oxidizes hypoxanthine, an easily adsorbed purine, to xanthine and further to uric acid, which are hardly adsorbed purines. SIGNIFICANCE AND IMPACT OF THE STUDY: The enzyme is useful for decreasing serum uric acid levels via conversion of easily absorbed purines to hardly absorbed purines in the intestine. Enzymes from micro-organisms may be used as a novel prophylaxis for hyperuricemia.


Subject(s)
Actinobacteria/enzymology , Hypoxanthine/metabolism , Purines/metabolism , Rhodococcus/metabolism , Xanthine Oxidase/chemistry , Actinobacteria/genetics , Amino Acid Sequence , Bacterial Proteins , DNA, Bacterial , Oxidation-Reduction , Recombinant Proteins/metabolism , Rhodococcus/genetics , Uric Acid/metabolism , Whole Genome Sequencing , Xanthine/metabolism , Xanthine Dehydrogenase/metabolism , Xanthine Oxidase/genetics
12.
J Sep Sci ; 44(5): 954-962, 2021 Mar.
Article in English | MEDLINE | ID: mdl-33348445

ABSTRACT

Creatinine and purines are gout-related metabolites commonly quantified by liquid chromatography coupled with ultraviolet and mass spectrometry. However, the high cost of liquid chromatography coupled with mass spectrometry hindered its extensive use in ordinary hospitals and clinical laboratories. Using the traditional liquid chromatography method, the full separation of these metabolites in complex biological samples is still not achieved. In this study, an improved ultra-high-performance liquid chromatography with ultraviolet spectroscopy method was reported for quantitative determination of five gout-related metabolites (i.e., creatinine, uric acid, hypoxanthine, xanthine, and inosine) in human serum within 10 min. A UHPLC system equipped with a hydrophilic C18 column was used to improve separation, shorten analysis time, and increase analysis throughput. The performance of the method was validated by evaluating linearity (squared correlation coefficient > 0.9991), recovery (92.8-100.0%, with relative standard deviation < 4.7%), accuracy (relative errors < 14.6%), precision (0.2-4.1% for intraday and 2.1-7.3% for interday) and stability (-14.1 to 8.3% in autosampler for 12 h and -13.3 to 2.2% for freeze-thaw cycles). This method was successfully applied to quantify gout-related metabolites in serum samples of healthy controls and gout patients, which was expected to be used in the clinical investigation of gout at different stages.


Subject(s)
Creatinine/blood , Gout/blood , Hypoxanthine/blood , Inosine/blood , Uric Acid/blood , Xanthine/blood , Chromatography, High Pressure Liquid , Creatinine/metabolism , Gout/metabolism , Humans , Hypoxanthine/metabolism , Inosine/metabolism , Uric Acid/metabolism , Xanthine/metabolism
13.
Transfusion ; 60(6): 1197-1211, 2020 06.
Article in English | MEDLINE | ID: mdl-32394461

ABSTRACT

BACKGROUND: Coffee consumption is extremely common in the United States. Coffee is rich with caffeine, a psychoactive, purinergic antagonist of adenosine receptors, which regulate red blood cell energy and redox metabolism. Since red blood cell (purine) metabolism is a critical component to the red cell storage lesion, here we set out to investigate whether caffeine levels correlated with alterations of energy and redox metabolism in stored red blood cells. STUDY DESIGN AND METHODS: We measured the levels of caffeine and its main metabolites in 599 samples from the REDS-III RBC-Omics (Recipient Epidemiology Donor Evaluation Study III Red Blood Cell-Omics) study via ultra-high-pressure-liquid chromatography coupled to high-resolution mass spectrometry and correlated them to global metabolomic and lipidomic analyses of RBCs stored for 10, 23, and 42 days. RESULTS: Caffeine levels positively correlated with increased levels of the main red cell antioxidant, glutathione, and its metabolic intermediates in glutathione-dependent detoxification pathways of oxidized lipids and sugar aldehydes. Caffeine levels were positively correlated with transamination products and substrates, tryptophan, and indole metabolites. Expectedly, since caffeine and its metabolites belong to the family of xanthine purines, all xanthine metabolites were significantly increased in the subjects with the highest levels of caffeine. However, high-energy phosphate compounds ATP and DPG were not affected by caffeine levels, despite decreases in glucose oxidation products-both via glycolysis and the pentose phosphate pathway. CONCLUSION: Though preliminary, this study is suggestive of a beneficial correlation between the caffeine levels and improved antioxidant capacity of stored red cells.


Subject(s)
Blood Preservation , Caffeine/blood , Coffee , Erythrocytes/metabolism , Glycolysis , Pentose Phosphate Pathway , Xanthine/metabolism , Adult , Female , Humans , Male , Metabolomics
14.
Microb Cell Fact ; 19(1): 72, 2020 Mar 19.
Article in English | MEDLINE | ID: mdl-32192512

ABSTRACT

BACKGROUND: Caffeine, theobromine and theophylline are main purine alkaloid in tea. Theophylline is the downstream metabolite and it remains at a very low level in Camellia sinensis. In our previous study, Aspergillus sydowii could convert caffeine into theophylline in solid-state fermentation of pu-erh tea through N-demethylation. In this study, tea-derived fungi caused theophylline degradation in the solid-state fermentation. The purpose of this study is identify and isolate theophylline-degrading fungi and investigate their application in production of methylxanthines with theophylline as feedstock through microbial conversion. RESULTS: Seven tea-derived fungi were collected and identified by ITS, ß-tubulin and calmodulin gene sequences, Aspergillus ustus, Aspergillus tamarii, Aspergillus niger and A. sydowii associated with solid-state fermentation of pu-erh tea have shown ability to degrade theophylline in liquid culture. Particularly, A. ustus and A. tamarii could degrade theophylline highly significantly (p < 0.01). 1,3-dimethyluric acid, 3-methylxanthine, 3-methyluric acid, xanthine and uric acid were detected consecutively by HPLC in A. ustus and A. tamarii, respectively. The data from absolute quantification analysis suggested that 3-methylxanthine and xanthine were the main degraded metabolites in A. ustus and A. tamarii, respectively. 129.48 ± 5.81 mg/L of 3-methylxanthine and 159.11 ± 10.8 mg/L of xanthine were produced by A. ustus and A. tamarii in 300 mg/L of theophylline liquid medium, respectively. CONCLUSIONS: For the first time, we confirmed that isolated A. ustus, A. tamarii degrade theophylline through N-demethylation and oxidation. We were able to biologically produce 3-methylxanthine and xanthine efficiently from theophylline through a new microbial synthesis platform with A. ustus and A. tamarii as appropriate starter strains.


Subject(s)
Aspergillus/metabolism , Theophylline/metabolism , Xanthine/metabolism , Xanthines/metabolism , Aspergillus/isolation & purification , Biotransformation , Fermentation
15.
Clin Chem Lab Med ; 58(5): 780-786, 2020 04 28.
Article in English | MEDLINE | ID: mdl-31085741

ABSTRACT

Background We developed a novel high-sensitive assay for plasma xanthine oxidoreductase (XOR) activity that is not affected by the original serum uric acid level. However, the association of plasma XOR activity with that level has not been fully examined. Methods This cross-sectional study included 191 subjects (91 males, 100 females) registered in the MedCity21 health examination registry. Plasma XOR activity was determined using our assay for plasma XOR activity with [13C2,15N2] xanthine and liquid chromatography/triple quadrupole mass spectrometry. Serum levels of uric acid and adiponectin, and visceral fat area (VFA) obtained by computed tomography were measured, and insulin resistance was determined based on the homeostasis model assessment (HOMA-IR) index. Results The median values for uric acid and plasma XOR activity were 333 µmol/L and 26.1 pmol/h/mL, respectively. Multivariable linear regression analysis showed a significant and positive association of serum uric acid level (coefficient: 26.503; 95% confidence interval: 2.06, 50.945; p = 0.035) with plasma XOR activity independent of VFA and HOMA-IR, and also age, gender, alcohol drinking habit, systolic blood pressure, estimated glomerular filtration rate (eGFR), glycated hemoglobin A1c, triglyceride, and adiponectin levels. The "gender*XOR activity" interaction was not significant (p = 0.91), providing no evidence that gender modifies the relationship between plasma XOR activity and serum uric acid level. Conclusions Plasma XOR activity was found to be positively associated with serum uric acid level independent of other known confounding factors affecting that level, including gender difference, eGFR, adiponectin level, VFA, and HOMA-IR.


Subject(s)
Chromatography, High Pressure Liquid/methods , Mass Spectrometry/methods , Uric Acid/blood , Xanthine Dehydrogenase/blood , Xanthine/metabolism , Aged , Cross-Sectional Studies , Female , Humans , Insulin Resistance , Intra-Abdominal Fat , Isotope Labeling , Linear Models , Male , Middle Aged , Registries , Xanthine/chemistry , Xanthine Dehydrogenase/metabolism
16.
Biol Pharm Bull ; 43(11): 1792-1798, 2020.
Article in English | MEDLINE | ID: mdl-33132325

ABSTRACT

Xanthine and hypoxanthine are intermediate metabolites of uric acid and a source of reactive oxidative species (ROS) by xanthine oxidoreductase (XOR), suggesting that facilitating their elimination is beneficial. Since they are reabsorbed in renal proximal tubules, we investigated their reabsorption mechanism by focusing on the renal uric acid transporters URAT1 and GLUT9, and examined the effect of clinically used URAT1 inhibitor on their renal clearance when their plasma concentration is increased by XOR inhibitor. Uptake study for [3H]xanthine and [3H]hypoxanthine was performed using URAT1- and GLUT9-expressing Xenopus oocytes. Transcellular transport study for [3H]xanthine was carried out using Madin-Darby canine kidney (MDCK)II cells co-expressing URAT1 and GLUT9. In in vivo pharmacokinetic study, renal clearance of xanthine was estimated based on plasma concentration and urinary recovery. Uptake by URAT1- and GLUT9-expressing oocytes demonstrated that xanthine is a substrate of URAT1 and GLUT9, while hypoxanthine is not. Transcellular transport of xanthine in MDCKII cells co-expressing URAT1 and GLUT9 was significantly higher than those in mock cells and cells expressing URAT1 or GLUT9 alone. Furthermore, dotinurad, a URAT1 inhibitor, increased renal clearance of xanthine in rats treated with topiroxostat to inhibit XOR. It was suggested that xanthine is reabsorbed in the same manner as uric acid through URAT1 and GLUT9, while hypoxanthine is not. Accordingly, it is expected that treatment with XOR and URAT1 inhibitors will effectively decrease purine pools in the body and prevent cell injury due to ROS generated during XOR-mediated reactions.


Subject(s)
Anion Transport Proteins/metabolism , Glucose Transport Proteins, Facilitative/metabolism , Monosaccharide Transport Proteins/metabolism , Organic Anion Transporters/metabolism , Organic Cation Transport Proteins/metabolism , Xanthine/pharmacokinetics , Animals , Anion Transport Proteins/antagonists & inhibitors , Benzothiazoles/administration & dosage , Dogs , Glucose Transport Proteins, Facilitative/genetics , Kidney Tubules, Proximal/drug effects , Kidney Tubules, Proximal/metabolism , Madin Darby Canine Kidney Cells , Models, Animal , Nitriles/administration & dosage , Oocytes , Organic Anion Transporters/genetics , Organic Cation Transport Proteins/genetics , Pyridines/administration & dosage , Rats , Rats, Wistar , Reactive Oxygen Species , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Renal Elimination/drug effects , Uric Acid/metabolism , Xanthine/blood , Xanthine/metabolism , Xanthine/urine , Xanthine Dehydrogenase/antagonists & inhibitors , Xanthine Dehydrogenase/metabolism , Xenopus laevis
17.
Int J Mol Sci ; 21(19)2020 Oct 02.
Article in English | MEDLINE | ID: mdl-33023260

ABSTRACT

Adenosine is a neuromodulator that has been involved in aging and neurodegenerative diseases as Alzheimer's disease (AD). In the present work, we analyzed the possible modulation of purine metabolites, 5'nucleotidase (5'NT) and adenosine deaminase (ADA) activities, and adenosine monophosphate (AMP)-activated protein kinase (AMPK) and its phosphorylated form during aging in the cerebral cortex. Three murine models were used: senescence-accelerated mouse-resistant 1 (SAMR1, normal senescence), senescence-accelerated mouse-prone 8 (SAMP8, a model of AD), and the wild-type C57BL/6J (model of aging) mice strains. Glutamate and excitatory amino acid transporter 2 (EAAT2) levels were also measured in these animals. HPLC, Western blotting, and enzymatic activity evaluation were performed to this aim. 5'-Nucleotidase (5'NT) activity was decreased at six months and recovered at 12 months in SAMP8 while opposite effects were observed in SAMR1 at the same age, and no changes in C57BL/6J mice. ADA activity significantly decreased from 3 to 12 months in the SAMR1 mice strain, while a significant decrease from 6 to 12 months was observed in the SAMP8 mice strain. Regarding purine metabolites, xanthine and guanosine levels were increased at six months in SAMR1 without significant differences in SAMP8 mice. In C57BL/6J mice, inosine and xanthine were increased, while adenosine decreased, from 4 to 24 months. The AMPK level was decreased at six months in SAMP8 without significant changes nor in SAMR1 or C57BL/6J strains. Glutamate and EAAT2 levels were also modulated during aging. Our data show a different modulation of adenosine metabolism participants in the cerebral cortex of these animal models. Interestingly, the main differences between SAMR1 and SAMP8 mice were found at six months of age, SAMP8 being the most affected strain. As SAMP8 is an AD model, results suggest that adenosinergic metabolism is involved in the neurodegeneration of AD.


Subject(s)
Adenosine/metabolism , Aging/metabolism , Alzheimer Disease/genetics , Cerebral Cortex/metabolism , Aging/genetics , Aging/pathology , Alzheimer Disease/metabolism , Alzheimer Disease/pathology , Animals , Cellular Senescence/genetics , Cerebral Cortex/pathology , Disease Models, Animal , Hippocampus/metabolism , Hippocampus/pathology , Humans , Inosine/metabolism , Mice , Phosphorylation/genetics , Xanthine/metabolism
18.
Appl Environ Microbiol ; 85(16)2019 08 15.
Article in English | MEDLINE | ID: mdl-31227552

ABSTRACT

Marine bacterial biofilms have long been recognized as potential inducers of larval settlement and metamorphosis in marine invertebrates, but few chemical cues from bacteria have been identified. Here, we show that larval settlement and metamorphosis of an invasive fouling mussel, Mytilopsis sallei, could be induced by biofilms of bacteria isolated from its adult shells and other substrates from the natural environment. One of the strains isolated, Vibrio owensii MS-9, showed strong inducing activity which was attributed to the release of a mixture of nucleobases including uracil, thymine, xanthine, hypoxanthine, and guanine into seawater. In particular, the synergistic effect of hypoxanthine and guanine was sufficient for the inducing activity of V. owensii MS-9. The presence of two or three other nucleobases could enhance, to some extent, the activity of the mixture of hypoxanthine and guanine. Furthermore, we determined that bacteria producing higher concentrations of nucleobases were more likely to induce larval settlement and metamorphosis of M. sallei than were bacteria producing lower concentrations of nucleobases. The present study demonstrates that bacterial nucleobases play an important role in larval settlement and metamorphosis of marine invertebrates. This provides new insights into our understanding of the role of environmental bacteria in the colonization and aggregation of invasive fouling organisms and of the metabolites used as chemical mediators in cross-kingdom communication within aquatic systems.IMPORTANCE Invasive species are an increasingly serious problem globally. In aquatic ecosystems, invasive dreissenid mussels are well-known ecological and economic pests because they appear to effortlessly invade new environments and foul submerged structures with high-density aggregations. To efficiently control exotic mussel recruitment and colonization, the need to investigate the mechanisms of substrate selection for larval settlement and metamorphosis is apparent. Our work is one of very few to experimentally demonstrate that compounds produced by environmental bacteria play an important role in larval settlement and metamorphosis in marine invertebrates. Additionally, this study demonstrates that bacterial nucleobases can be used as chemical mediators in cross-kingdom communication within aquatic systems, which will enhance our understanding of how microbes induce larval settlement and metamorphosis of dreissenid mussels, and it furthermore may allow the development of new methods for application in antifouling.


Subject(s)
Bivalvia/microbiology , Larva/growth & development , Vibrio/metabolism , Animals , Bivalvia/growth & development , Guanine/analysis , Guanine/metabolism , Metamorphosis, Biological , Seawater/analysis , Thymine/analysis , Thymine/metabolism , Uracil/analysis , Uracil/metabolism , Vibrio/isolation & purification , Xanthine/analysis , Xanthine/metabolism
19.
Appl Microbiol Biotechnol ; 103(14): 5831-5841, 2019 Jul.
Article in English | MEDLINE | ID: mdl-31115628

ABSTRACT

In coffee-producing countries, waste products from coffee production are useful substrates for cultivation of Pleurotus ostreatus. This species is relatively easy to grow, coffee waste substrates are readily available and the mushroom fruiting bodies are a valuable source of nutrition and income. In developed countries, cultivation of P. ostreatus on spent coffee grounds (SCG) from coffee consumption is a novel way to recycle this urban waste product. Here, we studied the effect of SCG and caffeine on growth of a commercial strain of P. ostreatus in liquid and solid cultures, and on a commercial scale. The presence of caffeine inhibited mycelial growth on agar and in liquid culture in the laboratory. Increased levels of SCG in an SCG/sawdust substrate also delayed mycelial growth and delayed or prevented fruiting during commercial cultivation. Despite growth inhibition, partial degradation of caffeine to xanthine by P. ostreatus mycelium was observed in all SCG-containing substrate mixtures. Degradation of caffeine proceeded mainly via sequential N-demethylation to theophylline (1,3-dimethylxanthine) and 3-methylxanthine, although both paraxanthine and theobromine also accumulated in the substrate. Caffeine and its demethylated metabolites were also detected in fruiting bodies, but it was not clear whether caffeine metabolism occurred in the fruiting bodies themselves or whether caffeine metabolites were translocated there from the mycelium. Based on the caffeine concentrations measured in fruiting bodies after growth with SCG, it would be necessary to consume ~ 250 kg of fresh oyster mushrooms to obtain the amount of caffeine equivalent to one cup of espresso coffee, suggesting that the health impact of caffeine in these mushrooms is low. However, the ability of P. ostreatus to degrade caffeine indicates that this and other species in this genus may have potential applications in detoxification of coffee production wastes.


Subject(s)
Caffeine/metabolism , Pleurotus/growth & development , Pleurotus/metabolism , Waste Products/analysis , Coffee/chemistry , Culture Media/chemistry , Fruiting Bodies, Fungal/growth & development , Fruiting Bodies, Fungal/metabolism , Industrial Microbiology , Industrial Waste/analysis , Mycelium/growth & development , Mycelium/metabolism , Xanthine/metabolism
20.
J Proteome Res ; 17(7): 2421-2427, 2018 07 06.
Article in English | MEDLINE | ID: mdl-29877085

ABSTRACT

The vitreous humor is a highly aqueous eye fluid interfacing with the retina and lens and providing shape. Its molecular composition provides a readout for the eye's physiological status. Changes in cellular metabolism underlie vitreoretinal pathologies, but despite routine surgical collection of vitreous, only limited reports of metabolism in the vitreous of human patients have been described. Vitreous samples from patients with rhegmatogenous retinal detachment ( n = 25) and proliferative diabetic retinopathy ( n = 9) were profiled along with control human vitreous samples ( n = 8) by untargeted mass-spectrometry-based metabolomics. Profound changes were observed in diabetic retinopathy vitreous, including altered glucose metabolism and activation of the pentose phosphate pathway, which provides reducing equivalents to counter oxidative stress. In addition, purine metabolism was altered in diabetic retinopathy, with decreased xanthine and elevated levels of related purines (inosine, hypoxanthine, urate, allantoate) generated in oxidant-producing reactions. In contrast, the vitreous metabolite profiles of retinal detachment patients were similar to controls. In total, our results suggest a rewiring of vitreous metabolism in diabetic retinopathy that underlies disease features such as oxidative stress and furthermore illustrates how the vitreous metabolic profile may be impacted by disease.


Subject(s)
Diabetic Retinopathy/metabolism , Eye Diseases, Hereditary/metabolism , Metabolomics/methods , Retinal Detachment/metabolism , Vitreous Body/metabolism , Glucose/metabolism , Humans , Mass Spectrometry , Metabolome , Oxidative Stress , Purines/metabolism , Xanthine/metabolism
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