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1.
J Chem Theory Comput ; 20(10): 4218-4228, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38720241

ABSTRACT

iso-Orotate decarboxylase (IDCase), which is involved in the thymidine salvage pathway, has attracted considerable interest owing to its chemical similarity to a hypothetical DNA decarboxylase in mammals. Although valuable insights into the active DNA demethylation of 5-methyl-cytosine can be obtained from the decarboxylation mechanism of 5-carboxyl-uracil (5caU) catalyzed by IDCase, this mechanism remains under debate. In this study, the catalytic mechanism of 5caU decarboxylation by IDCase was studied using hybrid quantum mechanics/molecular mechanics (QM/MM) methodologies and density functional theory (DFT) calculations with a truncated model. The calculations supported a mechanism involving three sequential stages: activation of the 5caU substrate via proton transfer from an arginine (R262') to the carboxyl group of 5caU, formation of a tetrahedral intermediate, and decarboxylation of the tetrahedral intermediate to generate uracil as the product. The reaction pathways and structures obtained using the QM/MM and DFT methods coincided with each other. These simulations provided detailed insights into the unique mechanism of IDCase, clarifying various unresolved issues, such as the critical role of R262'. In addition, aspartate D323 was found to act as a general base in the tetrahedral intermediate formation step and a general acid in the later C-C bond cleavage step.


Subject(s)
Density Functional Theory , Decarboxylation , Molecular Dynamics Simulation , Quantum Theory , Carboxy-Lyases/chemistry , Carboxy-Lyases/metabolism , Biocatalysis , Orotidine-5'-Phosphate Decarboxylase/chemistry , Orotidine-5'-Phosphate Decarboxylase/metabolism , Uracil/chemistry , Uracil/metabolism
2.
Microb Cell Fact ; 23(1): 132, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38711050

ABSTRACT

BACKGROUND: 1,5-pentanediol (1,5-PDO) is a linear diol with an odd number of methylene groups, which is an important raw material for polyurethane production. In recent years, the chemical methods have been predominantly employed for synthesizing 1,5-PDO. However, with the increasing emphasis on environmentally friendly production, it has been a growing interest in the biosynthesis of 1,5-PDO. Due to the limited availability of only three reported feasible biosynthesis pathways, we developed a new biosynthetic pathway to form a cell factory in Escherichia coli to produce 1,5-PDO. RESULTS: In this study, we reported an artificial pathway for the synthesis of 1,5-PDO from lysine with an integrated cofactor and co-substrate recycling and also evaluated its feasibility in E.coli. To get through the pathway, we first screened aminotransferases originated from different organisms to identify the enzyme that could successfully transfer two amines from cadaverine, and thus GabT from E. coli was characterized. It was then cascaded with lysine decarboxylase and alcohol dehydrogenase from E. coli to achieve the whole-cell production of 1,5-PDO from lysine. To improve the whole-cell activity for 1,5-PDO production, we employed a protein scaffold of EutM for GabT assembly and glutamate dehydrogenase was also validated for the recycling of NADPH and α-ketoglutaric acid (α-KG). After optimizing the cultivation and bioconversion conditions, the titer of 1,5-PDO reached 4.03 mM. CONCLUSION: We established a novel pathway for 1,5-PDO production through two consecutive transamination reaction from cadaverine, and also integrated cofactor and co-substrate recycling system, which provided an alternative option for the biosynthesis of 1,5-PDO.


Subject(s)
Biosynthetic Pathways , Escherichia coli , Escherichia coli/metabolism , Escherichia coli/genetics , Metabolic Engineering/methods , Glycols/metabolism , Lysine/metabolism , Lysine/biosynthesis , Alcohol Dehydrogenase/metabolism , Transaminases/metabolism , Transaminases/genetics , Carboxy-Lyases/metabolism
3.
Respir Res ; 25(1): 205, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38730297

ABSTRACT

BACKGROUND: Obesity is the main risk factor leading to the development of various respiratory diseases, such as asthma and pulmonary hypertension. Pulmonary microvascular endothelial cells (PMVECs) play a significant role in the development of lung diseases. Aconitate decarboxylase 1 (Acod1) mediates the production of itaconate, and Acod1/itaconate axis has been reported to play a protective role in multiple diseases. However, the roles of Acod1/itaconate axis in the PMVECs of obese mice are still unclear. METHODS: mRNA-seq was performed to identify the differentially expressed genes (DEGs) between high-fat diet (HFD)-induced PMVECs and chow-fed PMVECs in mice (|log2 fold change| ≥ 1, p ≤ 0.05). Free fatty acid (FFA) was used to induce cell injury, inflammation and mitochondrial oxidative stress in mouse PMVECs after transfection with the Acod1 overexpressed plasmid or 4-Octyl Itaconate (4-OI) administration. In addition, we investigated whether the nuclear factor erythroid 2-like 2 (Nrf2) pathway was involved in the effects of Acod1/itaconate in FFA-induced PMVECs. RESULTS: Down-regulated Acod1 was identified in HFD mouse PMVECs by mRNA-seq. Acod1 expression was also reduced in FFA-treated PMVECs. Acod1 overexpression inhibited cell injury, inflammation and mitochondrial oxidative stress induced by FFA in mouse PMVECs. 4-OI administration showed the consistent results in FFA-treated mouse PMVECs. Moreover, silencing Nrf2 reversed the effects of Acod1 overexpression and 4-OI administration in FFA-treated PMVECs, indicating that Nrf2 activation was required for the protective effects of Acod1/itaconate. CONCLUSION: Our results demonstrated that Acod1/Itaconate axis might protect mouse PMVECs from FFA-induced injury, inflammation and mitochondrial oxidative stress via activating Nrf2 pathway. It was meaningful for the treatment of obesity-caused pulmonary microvascular endotheliopathy.


Subject(s)
Carboxy-Lyases , Endothelial Cells , Lung , Mice, Inbred C57BL , NF-E2-Related Factor 2 , Obesity , Succinates , Animals , NF-E2-Related Factor 2/metabolism , NF-E2-Related Factor 2/genetics , Mice , Endothelial Cells/metabolism , Endothelial Cells/drug effects , Endothelial Cells/pathology , Carboxy-Lyases/metabolism , Carboxy-Lyases/genetics , Obesity/metabolism , Obesity/complications , Male , Succinates/pharmacology , Lung/metabolism , Lung/drug effects , Lung/pathology , Lung/blood supply , Cells, Cultured , Microvessels/metabolism , Microvessels/drug effects , Microvessels/pathology , Oxidative Stress/drug effects , Oxidative Stress/physiology , Diet, High-Fat/adverse effects , Endothelium, Vascular/metabolism , Endothelium, Vascular/drug effects , Endothelium, Vascular/pathology , Hydro-Lyases
4.
Nat Metab ; 6(5): 947-962, 2024 May.
Article in English | MEDLINE | ID: mdl-38769396

ABSTRACT

Polycystic ovary syndrome (PCOS), an endocrine disorder afflicting 6-20% of women of reproductive age globally, has been linked to alterations in the gut microbiome. We previously showed that in PCOS, elevation of Bacteroides vulgatus in the gut microbiome was associated with altered bile acid metabolism. Here we show that B. vulgatus also induces a PCOS-like phenotype in female mice via an alternate mechanism independent of bile acids. We find that B. vulgatus contributes to PCOS-like symptoms through its metabolite agmatine, which is derived from arginine by arginine decarboxylase. Mechanistically, agmatine activates the farnesoid X receptor (FXR) pathway to subsequently inhibit glucagon-like peptide-1 (GLP-1) secretion by L cells, which leads to insulin resistance and ovarian dysfunction. Critically, the GLP-1 receptor agonist liraglutide and the arginine decarboxylase inhibitor difluoromethylarginine ameliorate ovarian dysfunction in a PCOS-like mouse model. These findings reveal that agmatine-FXR-GLP-1 signalling contributes to ovarian dysfunction, presenting a potential therapeutic target for PCOS management.


Subject(s)
Agmatine , Gastrointestinal Microbiome , Polycystic Ovary Syndrome , Receptors, Cytoplasmic and Nuclear , Polycystic Ovary Syndrome/drug therapy , Polycystic Ovary Syndrome/metabolism , Animals , Female , Mice , Agmatine/pharmacology , Agmatine/metabolism , Agmatine/therapeutic use , Receptors, Cytoplasmic and Nuclear/agonists , Receptors, Cytoplasmic and Nuclear/metabolism , Gastrointestinal Microbiome/drug effects , Glucagon-Like Peptide 1/metabolism , Signal Transduction/drug effects , Disease Models, Animal , Insulin Resistance , Bacteroides/drug effects , Humans , Carboxy-Lyases/metabolism
5.
J Agric Food Chem ; 72(21): 12119-12129, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38761152

ABSTRACT

Taurine (Tau) is a semiessential amino acid in mammals with preventive and therapeutic effects on several intestinal disorders. However, the exact function of taurine in ulcerative colitis (UC) is still largely unclear. In this study, we used two taurine-deficient mouse models (CSAD-/- and TauT-/- mice) to explore the influence of taurine on the progression of UC in both dextran sulfate sodium (DSS)-induced colitis and LPS-stimulated Caco-2 cells. We found that cysteine sulfinic acid decarboxylase (CSAD) and taurine transporter (TauT) expressions and taurine levels were markedly reduced in colonic tissues of mice treated with DSS. The CSAD and TauT knockouts exacerbated DSS-induced clinical symptoms and pathological damage and aggravated the intestinal barrier dysfunction and the colonic mucosal inflammatory response. Conversely, taurine pretreatment enhanced the intestinal barrier functions by increasing goblet cells and upregulating tight junction protein expression. Importantly, taurine bound with TLR4 and inhibited the TLR4/NF-κB pathway, ultimately reducing proinflammatory factors (TNF-α and IL-6) and oxidative stress. Our findings highlight the essential role of taurine in maintaining the intestinal barrier integrity and inhibiting intestinal inflammation, indicating that taurine is a promising supplement for colitis treatment.


Subject(s)
Colitis , Intestinal Mucosa , Mice, Inbred C57BL , Mice, Knockout , NF-kappa B , Signal Transduction , Taurine , Toll-Like Receptor 4 , Animals , Taurine/pharmacology , Taurine/administration & dosage , Toll-Like Receptor 4/genetics , Toll-Like Receptor 4/metabolism , Mice , Humans , NF-kappa B/genetics , NF-kappa B/metabolism , Signal Transduction/drug effects , Colitis/drug therapy , Colitis/metabolism , Colitis/chemically induced , Colitis/genetics , Intestinal Mucosa/metabolism , Intestinal Mucosa/drug effects , Caco-2 Cells , Male , Membrane Glycoproteins/genetics , Membrane Glycoproteins/metabolism , Dextran Sulfate/adverse effects , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Intestinal Barrier Function
6.
Biomed Res Int ; 2024: 5924799, 2024.
Article in English | MEDLINE | ID: mdl-38590385

ABSTRACT

This study accessed the potential antimalarial activity of triterpene glycoside of H. atra through targeting orotidine 5-monophosphate decarboxylase protein (PfOMPDC) in P. falciparum by molecular docking. Nine triterpene glycosides from H. atra extract modeled the structure by the Corina web server and interacted with PfOMPDC protein by using Hex 8.0.0. The docking results were visualized and analyzed by Discovery Studio version 21.1.1. 17-Hydroxyfuscocineroside B showed the lowest binding energy in PfOMPDC interaction, which was -1,098.13 kJ/mol. Holothurin A3, echinoside A, and fuscocineroside C showed low binding energy. Nine triterpene glycosides of H. atra performed interaction with PfOMPDC protein at the same region. Holothurin A1 posed interaction with PfOMPDC protein by 8 hydrogen bonds, 3 hydrophobic interactions, and 8 unfavorable bonds. Several residues were detected in the same active sites of other triterpene glycosides. Residue TYR111 was identified in all triterpene glycoside complexes, except holothurin A3 and calcigeroside B. In summary, the triterpene glycoside of H. atra is potentially a drug candidate for malaria therapeutic agents. In vitro and in vivo studies were required for further investigation.


Subject(s)
Carboxy-Lyases , Cardiac Glycosides , Triterpenes , Uridine/analogs & derivatives , Molecular Docking Simulation , Glycosides/chemistry , Triterpenes/chemistry
7.
Appl Environ Microbiol ; 90(5): e0029424, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38624200

ABSTRACT

Aspergillus oryzae spores, when sprinkled onto steamed rice and allowed to propagate, are referred to as rice "koji." Agmatine, a natural polyamine derived from arginine through the action of arginine decarboxylase (ADC), is abundantly produced by solid state-cultivated rice koji of A. oryzae RIB40 under low pH conditions, despite the apparent absence of ADC orthologs in its genome. Mass spectrometry imaging revealed that agmatine was accumulated inside rice koji at low pH conditions, where arginine was distributed. ADC activity was predominantly observed in substrate mycelia and minimally in aerial mycelia. Natural ADC was isolated from solid state-cultivated A. oryzae rice koji containing substrate mycelia, using ammonium sulfate fractionation, ion exchange, and gel-filtration chromatography. The purified protein was subjected to sodium dodecyl sulfate poly-acrylamide gel electrophoresis (SDS-PAGE), and the detected peptide band was digested for identification by liquid chromatography-tandem mass spectrometry (LC-MS/MS). The gene AO090102000327 of strain RIB40 was identified, previously annotated as phosphatidylserine decarboxylase (PSD), and encoded a 483-amino acid peptide. Recombinant protein encoded by AO090102000327 was expressed in Escherichia coli cells cultivated at 20°C, resulting in the detection of 49 kDa and 5 kDa peptides. The protein exhibited pyruvoyl-dependent decarboxylase activity, favoring arginine over ornithine and showing no activity with phosphatidylserine. The gene was designated Ao-adc1. Ao-ADC1 expression in rice koji at pH 4-6 was confirmed through western blotting using the anti-Ao-ADC1 serum. These findings indicate that Ao-adc1 encodes arginine decarboxylase involved in agmatine production.IMPORTANCEGene AO090102000327 in A. oryzae RIB40, previously annotated as a PSD, falls into a distinct clade when examining the phylogenetic distribution of PSDs. Contrary to the initial PSD annotation, our analysis indicates that the protein encoded by AO090102000327 is expressed in the substrate mycelia area of solid state-cultivated A. oryzae rice koji and functions as an arginine decarboxylase (ADC). The clade to which Ao-ADC1 belongs includes three other Ao-ADC1 paralogs (AO090103000445, AO090701000800, and AO090701000802) that presumably encode ADC rather than PSDs. Regarding PSD, AO090012000733 and AO090005001124 were speculated to be nonmitochondrial and mitochondrial PSDs in A. oryzae RIB40, respectively.


Subject(s)
Aspergillus oryzae , Carboxy-Lyases , Fungal Proteins , Oryza , Aspergillus oryzae/genetics , Aspergillus oryzae/enzymology , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Carboxy-Lyases/chemistry , Oryza/microbiology , Fungal Proteins/genetics , Fungal Proteins/metabolism , Fungal Proteins/chemistry , Agmatine/metabolism
8.
J Agric Food Chem ; 72(18): 10163-10178, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38653191

ABSTRACT

Oxalate decarboxylase (OXDC) is a typical Mn2+/Mn3+ dependent metal enzyme and splits oxalate to formate and CO2 without any organic cofactors. Fungi and bacteria are the main organisms expressing the OXDC gene, but with a significantly different mechanism of gene expression and regulation. Many articles reported its potential applications in the clinical treatment of hyperoxaluria, low-oxalate food processing, degradation of oxalate salt deposits, oxalate acid diagnostics, biocontrol, biodemulsifier, and electrochemical oxidation. However, some questions still remain to be clarified about the role of substrate binding and/or protein environment in modulating the redox properties of enzyme-bound Mn(II)/Mn(III), the nature of dioxygen involved in the catalytic mechanism, and how OXDC acquires Mn(II) /Mn(III). This review mainly summarizes its biochemical and structure characteristics, gene expression and regulation, and catalysis mechanism. We also deep-mined oxalate decarboxylase gene data from National Center for Biotechnology Information to give some insights to explore new OXDC with diverse biochemical properties.


Subject(s)
Bacteria , Carboxy-Lyases , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Carboxy-Lyases/chemistry , Bacteria/genetics , Bacteria/enzymology , Bacteria/metabolism , Fungi/genetics , Fungi/enzymology , Fungal Proteins/genetics , Fungal Proteins/metabolism , Fungal Proteins/chemistry , Biocatalysis , Oxalates/metabolism , Oxalates/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Gene Expression Regulation, Enzymologic , Humans , Catalysis , Animals
9.
Plant Cell Rep ; 43(5): 127, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38652203

ABSTRACT

KEY MESSAGE: This study identified 16 pyridoxal phosphate-dependent decarboxylases in olive at the whole-genome level, conducted analyses on their physicochemical properties, evolutionary relationships and characterized their activity. Group II pyridoxal phosphate-dependent decarboxylases (PLP_deC II) mediate the biosynthesis of characteristic olive metabolites, such as oleuropein and hydroxytyrosol. However, there have been no report on the functional differentiation of this gene family at the whole-genome level. This study conducted an exploration of the family members of PLP_deC II at the whole-genome level, identified 16 PLP_deC II genes, and analyzed their gene structure, physicochemical properties, cis-acting elements, phylogenetic evolution, and gene expression patterns. Prokaryotic expression and enzyme activity assays revealed that OeAAD2 and OeAAD4 could catalyze the decarboxylation reaction of tyrosine and dopa, resulting in the formation of their respective amine compounds, but it did not catalyze phenylalanine and tryptophan. Which is an important step in the synthetic pathway of hydroxytyrosol and oleuropein. This finding established the foundational data at the molecular level for studying the functional aspects of the olive PLP_deC II gene family and provided essential gene information for genetic improvement of olive.


Subject(s)
Gene Expression Regulation, Plant , Olea , Phenylethyl Alcohol , Phenylethyl Alcohol/analogs & derivatives , Phylogeny , Olea/genetics , Olea/metabolism , Phenylethyl Alcohol/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Genome, Plant , Iridoid Glucosides/metabolism , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Pyridoxal Phosphate/metabolism , Iridoids/metabolism , Genes, Plant
10.
Biomolecules ; 14(4)2024 Apr 10.
Article in English | MEDLINE | ID: mdl-38672479

ABSTRACT

Polyamines are polycations derived from amino acids that play an important role in proliferation and growth in almost all living cells. In Streptococcus pneumoniae (the pneumococcus), modulation of polyamine metabolism not only plays an important regulatory role in central metabolism, but also impacts virulence factors such as the capsule and stress responses that affect survival in the host. However, functional annotation of enzymes from the polyamine biosynthesis pathways in the pneumococcus is based predominantly on computational prediction. In this study, we cloned SP_0166, predicted to be a pyridoxal-dependent decarboxylase, from the Orn/Lys/Arg family pathway in S. pneumoniae TIGR4 and expressed and purified the recombinant protein. We performed biochemical characterization of the recombinant SP_0166 and confirmed the substrate specificity. For polyamine analysis, we developed a simultaneous quantitative method using hydrophilic interaction liquid chromatography (HILIC)-based liquid chromatography-tandem mass spectrometry (LC-MS/MS) without derivatization. SP_0166 has apparent Km, kcat, and kcat/Km values of 11.3 mM, 715,053 min-1, and 63,218 min-1 mM-1, respectively, with arginine as a substrate at pH 7.5. We carried out inhibition studies of SP_0166 enzymatic activity with arginine as a substrate using chemical inhibitors DFMO and DFMA. DFMO is an irreversible inhibitor of ornithine decarboxylase activity, while DFMA inhibits arginine decarboxylase activity. Our findings confirm that SP_0166 is inhibited by DFMA and DFMO, impacting agmatine production. The use of arginine as a substrate revealed that the synthesis of putrescine by agmatinase and N-carbamoylputrescine by agmatine deiminase were both affected and inhibited by DFMA. This study provides experimental validation that SP_0166 is an arginine decarboxylase in pneumococci.


Subject(s)
Carboxy-Lyases , Streptococcus pneumoniae , Tandem Mass Spectrometry , Carboxy-Lyases/metabolism , Carboxy-Lyases/genetics , Carboxy-Lyases/chemistry , Streptococcus pneumoniae/enzymology , Streptococcus pneumoniae/genetics , Chromatography, High Pressure Liquid , Substrate Specificity , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Recombinant Proteins/metabolism , Recombinant Proteins/genetics , Polyamines/metabolism , Kinetics
11.
Clin Transl Med ; 14(4): e1661, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38644791

ABSTRACT

BACKGROUND: Spinal cord injury (SCI)-induced neuroinflammation and oxidative stress (OS) are crucial events causing neurological dysfunction. Aconitate decarboxylase 1 (ACOD1) and its metabolite itaconate (Ita) inhibit inflammation and OS by promoting alkylation of Keap1 to induce Nrf2 expression; however, it is unclear whether there is another pathway regulating their effects in inflammation-activated microglia after SCI. METHODS: Adult male C57BL/6 ACOD1-/- mice and their wild-type (WT) littermates were subjected to a moderate thoracic spinal cord contusion. The degree of neuroinflammation and OS in the injured spinal cord were assessed using qPCR, western blot, flow cytometry, immunofluorescence, and trans-well assay. We then employed immunoprecipitation-western blot, chromatin immunoprecipitation (ChIP)-PCR, dual-luciferase assay, and immunofluorescence-confocal imaging to examine the molecular mechanisms of ACOD1. Finally, the locomotor function was evaluated with the Basso Mouse Scale and footprint assay. RESULTS: Both in vitro and in vivo, microglia with transcriptional blockage of ACOD1 exhibited more severe levels of neuroinflammation and OS, in which the expression of p62/Keap1/Nrf2 was down-regulated. Furthermore, silencing ACOD1 exacerbated neurological dysfunction in SCI mice. Administration of exogenous Ita or 4-octyl itaconate reduced p62 phosphorylation. Besides, ACOD1 was capable of interacting with phosphorylated p62 to enhance Nrf2 activation, which in turn further promoted transcription of ACOD1. CONCLUSIONS: Here, we identified an unreported ACOD1-p62-Nrf2-ACOD1 feedback loop exerting anti-inflammatory and anti-OS in inflammatory microglia, and demonstrated the neuroprotective role of ACOD1 after SCI, which was different from that of endogenous and exogenous Ita. The present study extends the functions of ACOD1 and uncovers marked property differences between endogenous and exogenous Ita. KEY POINTS: ACOD1 attenuated neuroinflammation and oxidative stress after spinal cord injury. ACOD1, not itaconate, interacted with p-p62 to facilitate Nrf2 expression and nuclear translocation. Nrf2 was capable of promoting ACOD1 transcription in microglia.


Subject(s)
Carboxy-Lyases , Hydro-Lyases , Microglia , NF-E2-Related Factor 2 , Spinal Cord Injuries , Succinates , Animals , Male , Mice , Carboxy-Lyases/metabolism , Carboxy-Lyases/genetics , Disease Models, Animal , Mice, Inbred C57BL , Microglia/metabolism , Microglia/drug effects , NF-E2-Related Factor 2/metabolism , Sequestosome-1 Protein/metabolism , Spinal Cord Injuries/drug therapy , Spinal Cord Injuries/metabolism , Spinal Cord Injuries/complications , Succinates/pharmacology , Succinates/metabolism
12.
Nature ; 629(8010): 184-192, 2024 May.
Article in English | MEDLINE | ID: mdl-38600378

ABSTRACT

Glucocorticoids represent the mainstay of therapy for a broad spectrum of immune-mediated inflammatory diseases. However, the molecular mechanisms underlying their anti-inflammatory mode of action have remained incompletely understood1. Here we show that the anti-inflammatory properties of glucocorticoids involve reprogramming of the mitochondrial metabolism of macrophages, resulting in increased and sustained production of the anti-inflammatory metabolite itaconate and consequent inhibition of the inflammatory response. The glucocorticoid receptor interacts with parts of the pyruvate dehydrogenase complex whereby glucocorticoids provoke an increase in activity and enable an accelerated and paradoxical flux of the tricarboxylic acid (TCA) cycle in otherwise pro-inflammatory macrophages. This glucocorticoid-mediated rewiring of mitochondrial metabolism potentiates TCA-cycle-dependent production of itaconate throughout the inflammatory response, thereby interfering with the production of pro-inflammatory cytokines. By contrast, artificial blocking of the TCA cycle or genetic deficiency in aconitate decarboxylase 1, the rate-limiting enzyme of itaconate synthesis, interferes with the anti-inflammatory effects of glucocorticoids and, accordingly, abrogates their beneficial effects during a diverse range of preclinical models of immune-mediated inflammatory diseases. Our findings provide important insights into the anti-inflammatory properties of glucocorticoids and have substantial implications for the design of new classes of anti-inflammatory drugs.


Subject(s)
Anti-Inflammatory Agents , Glucocorticoids , Inflammation , Macrophages , Mitochondria , Succinates , Animals , Female , Humans , Male , Mice , Anti-Inflammatory Agents/pharmacology , Carboxy-Lyases/metabolism , Carboxy-Lyases/antagonists & inhibitors , Citric Acid Cycle/drug effects , Citric Acid Cycle/genetics , Cytokines/immunology , Cytokines/metabolism , Glucocorticoids/pharmacology , Glucocorticoids/metabolism , Hydro-Lyases/deficiency , Hydro-Lyases/genetics , Inflammation/drug therapy , Inflammation/metabolism , Macrophages/cytology , Macrophages/drug effects , Macrophages/immunology , Macrophages/metabolism , Mice, Inbred C57BL , Mitochondria/metabolism , Mitochondria/drug effects , Pyruvate Dehydrogenase Complex/metabolism , Receptors, Glucocorticoid/metabolism , Succinates/metabolism , Enzyme Activation/drug effects
13.
Free Radic Biol Med ; 219: 64-75, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38604314

ABSTRACT

Cardiovascular diseases (CVDs) are the leading cause of death globally, resulting in a major health burden. Thus, an urgent need exists for exploring effective therapeutic targets to block progression of CVDs and improve patient prognoses. Immune and inflammatory responses are involved in the development of atherosclerosis, ischemic myocardial damage responses and repair, calcification, and stenosis of the aortic valve. These responses can involve both large and small blood vessels throughout the body, leading to increased blood pressure and end-organ damage. While exploring potential avenues for therapeutic intervention in CVDs, researchers have begun to focus on immune metabolism, where metabolic changes that occur in immune cells in response to exogenous or endogenous stimuli can influence immune cell effector responses and local immune signaling. Itaconate, an intermediate metabolite of the tricarboxylic acid (TCA) cycle, is related to pathophysiological processes, including cellular metabolism, oxidative stress, and inflammatory immune responses. The expression of immune response gene 1 (IRG1) is upregulated in activated macrophages, and this gene encodes an enzyme that catalyzes the production of itaconate from the TCA cycle intermediate, cis-aconitate. Itaconate and its derivatives have exerted cardioprotective effects through immune modulation in various disease models, such as ischemic heart disease, valvular heart disease, vascular disease, heart transplantation, and chemotherapy drug-induced cardiotoxicity, implying their therapeutic potential in CVDs. In this review, we delve into the associated signaling pathways through which itaconate exerts immunomodulatory effects, summarize its specific roles in CVDs, and explore emerging immunological therapeutic strategies for managing CVDs.


Subject(s)
Cardiovascular Diseases , Succinates , Humans , Succinates/metabolism , Animals , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/immunology , Cardiovascular Diseases/drug therapy , Cardiovascular Diseases/pathology , Citric Acid Cycle , Oxidative Stress/drug effects , Signal Transduction/drug effects , Carboxy-Lyases
14.
Microbiol Res ; 284: 127732, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38677265

ABSTRACT

The HOG MAPK pathway mediates diverse cellular and physiological processes, including osmoregulation and fungicide sensitivity, in phytopathogenic fungi. However, the molecular mechanisms underlying HOG MAPK pathway-associated stress homeostasis and pathophysiological developmental events are poorly understood. Here, we demonstrated that the oxalate decarboxylase CsOxdC3 in Colletotrichum siamense interacts with the protein kinase kinase CsPbs2, a component of the HOG MAPK pathway. The expression of the CsOxdC3 gene was significantly suppressed in response to phenylpyrrole and tebuconazole fungicide treatments, while that of CsPbs2 was upregulated by phenylpyrrole and not affected by tebuconazole. We showed that targeted gene deletion of CsOxdC3 suppressed mycelial growth, reduced conidial length, and triggered a marginal reduction in the sporulation characteristics of the ΔCsOxdC3 strains. Interestingly, the ΔCsOxdC3 strain was significantly sensitive to fungicides, including phenylpyrrole and tebuconazole, while the CsPbs2-defective strain was sensitive to tebuconazole but resistant to phenylpyrrole. Additionally, infection assessment revealed a significant reduction in the virulence of the ΔCsOxdC3 strains when inoculated on the leaves of rubber tree (Hevea brasiliensis). From these observations, we inferred that CsOxdC3 crucially modulates HOG MAPK pathway-dependent processes, including morphogenesis, stress homeostasis, fungicide resistance, and virulence, in C. siamense by facilitating direct physical interactions with CsPbs2. This study provides insights into the molecular regulators of the HOG MAPK pathway and underscores the potential of deploying OxdCs as potent targets for developing fungicides.


Subject(s)
Carboxy-Lyases , Colletotrichum , Drug Resistance, Fungal , Fungal Proteins , Fungicides, Industrial , Plant Diseases , Colletotrichum/genetics , Colletotrichum/drug effects , Colletotrichum/pathogenicity , Colletotrichum/enzymology , Colletotrichum/growth & development , Fungicides, Industrial/pharmacology , Drug Resistance, Fungal/genetics , Virulence , Fungal Proteins/genetics , Fungal Proteins/metabolism , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Plant Diseases/microbiology , Spores, Fungal/growth & development , Spores, Fungal/drug effects , Spores, Fungal/genetics , Gene Expression Regulation, Fungal , MAP Kinase Signaling System
15.
Plant Physiol Biochem ; 208: 108455, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38428157

ABSTRACT

'Zaosu' pear fruit is prone to yellowing of the surface and softening of the flesh after harvest. This work was performed to assess the influences of L-glutamate treatment on the quality of 'Zaosu' pears and elucidate the underlying mechanisms involved. Results demonstrated that L-glutamate immersion reduced ethylene release, respiratory intensity, weight loss, brightness (L*), redness (a*), yellowness (b*), and total coloration difference (ΔE); enhanced ascorbic acid, soluble solids, and soluble sugar contents; maintained chlorophyll content and flesh firmness of pears. L-glutamate also restrained the activities of neutral invertase and acid invertase, while enhancing sucrose phosphate synthetase and sucrose synthase activities to facilitate sucrose accumulation. The transcriptions of PbSGR1, PbSGR2, PbCHL, PbPPH, PbRCCR, and PbNYC were suppressed by L-glutamate, resulting in a deceleration of chlorophyll degradation. L-glutamate concurrently suppressed the transcription levels and enzymatic activities of polygalacturonases, pectin methylesterases, cellulase, and ß-glucosidase. It restrained polygalacturonic acid trans-eliminase and pectin methyl-trans-eliminase activities as well as inhibited the transcription levels of PbPL and Pbß-gal. Moreover, the gene transcriptions and enzymatic activities of arginine decarboxylase, ornithine decarboxylase, S-adenosine methionine decarboxylase, glutamate decarboxylase, γ-aminobutyric acid transaminase, glutamine synthetase along with the PbSPDS transcription was promoted by L-glutamate. L-glutamate also resulted in the down-regulation of PbPAO, PbDAO, PbSSADH, PbGDH, and PbGOGAT transcription levels, while enhancing γ-aminobutyric acid, glutamate, and pyruvate acid contents in pears. These findings suggest that L-glutamate immersion can effectively maintain the storage quality of 'Zaosu' pears via modulating key enzyme activities and gene transcriptions involved in sucrose, chlorophyll, cell wall, and polyamine metabolism.


Subject(s)
Carboxy-Lyases , Pyrus , Pyrus/genetics , Pyrus/metabolism , Sucrose/metabolism , Glutamic Acid/metabolism , Fruit/metabolism , Chlorophyll/metabolism , Cell Wall , Pectins/metabolism , Carboxy-Lyases/metabolism , gamma-Aminobutyric Acid/pharmacology , Polyamines/metabolism
16.
Int J Biol Macromol ; 264(Pt 2): 130662, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38453118

ABSTRACT

Non-classical secretory proteins are widely found in bacteria and have been extensively studied due to their important physiological roles. However, the relevant non-classical secretory mechanisms remain unclear. In this study, we found that oxalate decarboxylase (Bacm OxDC) from Bacillus mojavensis XH1 belongs to non-classical secretory proteins. Its N-terminus showed high hydrophilicity, which was different from the conventional signal peptide. The truncation test revealed that the deletion of the N-terminus affects the structure resulting in its inability to cross the cell membrane. Further studies verified that the exported peptide YydF played an important role in the secretion process of Bacm OxDC. Experimental results on the secretion mechanism indicated that Bacm OxDC bound to the exported peptide YydF and they are translocated to the cell membrane together, after which Bacm OxDC caused cell membrane relaxation for transmembrane secretion. Thereafter, three recombinant proteins were successfully secreted with certain enzymatic activity by fusing Bacm OxDC as a guide protein with various target proteins. To the best of our knowledge, this was the first time that non-classical secretion mechanism in bacteria has been analyzed. The novel discovery may provide a reference and broaden the horizons of the secretion pathway and expression regulation of proteins.


Subject(s)
Bacillus , Carboxy-Lyases , Carboxy-Lyases/chemistry , Bacillus/genetics , Bacillus/metabolism , Bacillus subtilis/metabolism , Protein Sorting Signals
17.
J Food Sci ; 89(5): 2909-2920, 2024 May.
Article in English | MEDLINE | ID: mdl-38551034

ABSTRACT

The accurate detection of biogenic amines (BAs) is an important means of ensuring the quality and safety of cephalopod seafood products. In this study, the pre-column derivatization of high-performance liquid chromatography (HPLC) was optimized using dansyl chloride (Dns-Cl) to detect BAs in octopus, cuttlefish, and squid. The reasons for the formation of BAs were investigated by assessing their decarboxylase activity and the rates of decomposition. The findings demonstrated that using Dns-Cl to optimize pre-column derivatization enabled the separation of nine different BAs. The detection limits ranged from 0.07 to 0.25 mg/L, and the results exhibited a high level of linearity (R2 ≥ 0.997). The decarboxylase activity and biodegradation rate positively correlated with the formation of BAs at temperatures below 0°C. Notably, the decarboxylase activity of octopus, cuttlefish, and squid exhibited a significant increase with prolonged storage time, and formyltransferase and carbamate kinase may be the key decarboxylase in cephalopod products. These findings serve as a valuable reference for further investigations into the mechanisms behind BAs production and the development of control technologies for BAs in cephalopod products. This study has successfully demonstrated the effectiveness of the Dns-Cl pre-column derivatization-HPLC method in accurately and efficiently detecting BAs in octopus, cuttlefish, and squid. Moreover, it highlights the influence of decarboxylase content and biodegradation rate on the formation of BAs. Importantly, this method can serve as a reference for detecting BAs in various seafood products.


Subject(s)
Biogenic Amines , Cephalopoda , Dansyl Compounds , Seafood , Animals , Chromatography, High Pressure Liquid/methods , Dansyl Compounds/chemistry , Cephalopoda/chemistry , Biogenic Amines/analysis , Seafood/analysis , Decapodiformes/chemistry , Limit of Detection , Carboxy-Lyases/metabolism
18.
Cell Rep ; 43(4): 113984, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38520689

ABSTRACT

Targeting programmed cell death protein 1 (PD-1) is an important component of many immune checkpoint blockade (ICB) therapeutic approaches. However, ICB is not an efficacious strategy in a variety of cancer types, in part due to immunosuppressive metabolites in the tumor microenvironment. Here, we find that αPD-1-resistant cancer cells produce abundant itaconate (ITA) due to enhanced levels of aconitate decarboxylase (Acod1). Acod1 has an important role in the resistance to αPD-1, as decreasing Acod1 levels in αPD-1-resistant cancer cells can sensitize tumors to αPD-1 therapy. Mechanistically, cancer cells with high Acod1 inhibit the proliferation of naive CD8+ T cells through the secretion of inhibitory factors. Surprisingly, inhibition of CD8+ T cell proliferation is not dependent on the secretion of ITA but is instead a consequence of the release of small inhibitory peptides. Our study suggests that strategies to counter the activity of Acod1 in cancer cells may sensitize tumors to ICB therapy.


Subject(s)
Carboxy-Lyases , Humans , Animals , Cell Line, Tumor , Carboxy-Lyases/metabolism , Mice , CD8-Positive T-Lymphocytes/immunology , CD8-Positive T-Lymphocytes/metabolism , Peptides/metabolism , Peptides/pharmacology , Neoplasms/immunology , Neoplasms/pathology , Neoplasms/metabolism , Neoplasms/drug therapy , Cell Proliferation/drug effects , Immune Evasion , Mice, Inbred C57BL
19.
Plant Physiol Biochem ; 208: 108439, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38408396

ABSTRACT

Putrescine, produced via the arginine decarboxylase (ADC)/ornithine decarboxylase (ODC)-mediated pathway, is an initial precursor for polyamines metabolism and the root-specific biosynthesis of medicinal tropane alkaloids (TAs). These alkaloids are widely used as muscarinic acetylcholine antagonists in clinics. Although the functions of ODC in biosynthesis of polyamines and TAs have been well investigated, the role of ADC is still poorly understood. In this study, enzyme inhibitor treatment showed that ADC was involved in the biosynthesis of putrescine-derived metabolites and root growth in Atropa belladonna. Further analysis found that there were six ADC unigenes in the A. belladonna transcriptome, with two of them, AbADC1 and AbADC2, exhibiting high expression in the roots. To investigate their roles in TAs/polyamines metabolism and root growth, RNA interference (RNAi) was used to suppress either AbADC1 or AbADC2 expression in A. belladonna hairy roots. Suppression of the AbADC1 expression resulted in a significant reduction in the putrescine content and hairy root biomass. However, it had no noticeable effect on the levels of N-methylputrescine and the TAs hyoscyamine, anisodamine, and scopolamine. On the other hand, suppression of AbADC2 expression markedly reduced the levels of putrescine, N-methylputrescine, and TAs, but had no significant effect on hairy root biomass. According to ß-glucuronidase (GUS) staining assays, AbADC1 was mainly expressed in the root elongation and division region while AbADC2 was mainly expressed in the cylinder of the root maturation region. These differences in expression led to functional divergence, with AbADC1 primarily regulating root growth and AbADC2 contributing to TA biosynthesis.


Subject(s)
Alkaloids , Atropa belladonna , Carboxy-Lyases , Atropa belladonna/genetics , Atropa belladonna/metabolism , Putrescine/metabolism , Tropanes/metabolism
20.
Microb Cell Fact ; 23(1): 69, 2024 Feb 28.
Article in English | MEDLINE | ID: mdl-38419048

ABSTRACT

We are interested in converting second generation feedstocks into styrene, a valuable chemical compound, using the solvent-tolerant Pseudomonas putida DOT-T1E as a chassis. Styrene biosynthesis takes place from L-phenylalanine in two steps: firstly, L-phenylalanine is converted into trans-cinnamic acid (tCA) by PAL enzymes and secondly, a decarboxylase yields styrene. This study focuses on designing and synthesizing a functional trans-cinnamic acid decarboxylase in Pseudomonas putida. To achieve this, we utilized the "wholesale" method, involving deriving two consensus sequences from multi-alignments of homologous yeast ferulate decarboxylase FDC1 sequences with > 60% and > 50% identity, respectively. These consensus sequences were used to design Pseudomonas codon-optimized genes named psc1 and psd1 and assays were conducted to test the activity in P. putida. Our results show that the PSC1 enzyme effectively decarboxylates tCA into styrene, whilst the PSD1 enzyme does not. The optimal conditions for the PSC1 enzyme, including pH and temperature were determined. The L-phenylalanine DOT-T1E derivative Pseudomonas putida CM12-5 that overproduces L-phenylalanine was used as the host for expression of pal/psc1 genes to efficiently convert L-phenylalanine into tCA, and the aromatic carboxylic acid into styrene. The highest styrene production was achieved when the pal and psc1 genes were co-expressed as an operon in P. putida CM12-5. This construction yielded styrene production exceeding 220 mg L-1. This study serves as a successful demonstration of our strategy to tailor functional enzymes for novel host organisms, thereby broadening their metabolic capabilities. This breakthrough opens the doors to the synthesis of aromatic hydrocarbons using Pseudomonas putida as a versatile biofactory.


Subject(s)
Carboxy-Lyases , Cinnamates , Pseudomonas putida , Styrene/metabolism , Pseudomonas/genetics , Pseudomonas/metabolism , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Pseudomonas putida/metabolism , Phenylalanine/metabolism
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