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1.
Cell ; 186(26): 5812-5825.e21, 2023 12 21.
Article in English | MEDLINE | ID: mdl-38056462

ABSTRACT

Acyl-coenzyme A (acyl-CoA) species are cofactors for numerous enzymes that acylate thousands of proteins. Here, we describe an enzyme that uses S-nitroso-CoA (SNO-CoA) as its cofactor to S-nitrosylate multiple proteins (SNO-CoA-assisted nitrosylase, SCAN). Separate domains in SCAN mediate SNO-CoA and substrate binding, allowing SCAN to selectively catalyze SNO transfer from SNO-CoA to SCAN to multiple protein targets, including the insulin receptor (INSR) and insulin receptor substrate 1 (IRS1). Insulin-stimulated S-nitrosylation of INSR/IRS1 by SCAN reduces insulin signaling physiologically, whereas increased SCAN activity in obesity causes INSR/IRS1 hypernitrosylation and insulin resistance. SCAN-deficient mice are thus protected from diabetes. In human skeletal muscle and adipose tissue, SCAN expression increases with body mass index and correlates with INSR S-nitrosylation. S-nitrosylation by SCAN/SNO-CoA thus defines a new enzyme class, a unique mode of receptor tyrosine kinase regulation, and a revised paradigm for NO function in physiology and disease.


Subject(s)
Insulin , Oxidoreductases Acting on CH-CH Group Donors , Signal Transduction , Animals , Humans , Mice , Acyl Coenzyme A/metabolism , Adipose Tissue/metabolism , Insulin Resistance , Nitric Oxide/metabolism , Oxidoreductases Acting on CH-CH Group Donors/metabolism
2.
Cell ; 185(3): 513-529.e21, 2022 02 03.
Article in English | MEDLINE | ID: mdl-35120663

ABSTRACT

The human gut microbiota resides within a diverse chemical environment challenging our ability to understand the forces shaping this ecosystem. Here, we reveal that fitness of the Bacteroidales, the dominant order of bacteria in the human gut, is an emergent property of glycans and one specific metabolite, butyrate. Distinct sugars serve as strain-variable fitness switches activating context-dependent inhibitory functions of butyrate. Differential fitness effects of butyrate within the Bacteroides are mediated by species-level variation in Acyl-CoA thioesterase activity and nucleotide polymorphisms regulating an Acyl-CoA transferase. Using in vivo multi-omic profiles, we demonstrate Bacteroides fitness in the human gut is associated together, but not independently, with Acyl-CoA transferase expression and butyrate. Our data reveal that each strain of the Bacteroides exists within a unique fitness landscape based on the interaction of chemical components unpredictable by the effect of each part alone mediated by flexibility in the core genome.


Subject(s)
Gastrointestinal Microbiome , Metabolome , Polysaccharides/metabolism , Acyl Coenzyme A/metabolism , Amino Acid Sequence , Amino Acids, Branched-Chain/metabolism , Bacteroidetes/drug effects , Bacteroidetes/genetics , Bacteroidetes/growth & development , Butyrates/chemistry , Butyrates/pharmacology , Coenzyme A-Transferases/chemistry , Coenzyme A-Transferases/metabolism , Gastrointestinal Microbiome/drug effects , Gastrointestinal Microbiome/genetics , Genetic Variation/drug effects , Hydrogen-Ion Concentration , Metabolome/drug effects , Metabolome/genetics , Polymorphism, Single Nucleotide/genetics , Promoter Regions, Genetic/genetics , Species Specificity , Stress, Physiological/drug effects , Stress, Physiological/genetics , Transcription, Genetic/drug effects
3.
Mol Cell ; 82(2): 447-462.e6, 2022 01 20.
Article in English | MEDLINE | ID: mdl-34856123

ABSTRACT

Quantitative subcellular metabolomic measurements can explain the roles of metabolites in cellular processes but are subject to multiple confounding factors. We developed stable isotope labeling of essential nutrients in cell culture-subcellular fractionation (SILEC-SF), which uses isotope-labeled internal standard controls that are present throughout fractionation and processing to quantify acyl-coenzyme A (acyl-CoA) thioesters in subcellular compartments by liquid chromatography-mass spectrometry. We tested SILEC-SF in a range of sample types and examined the compartmentalized responses to oxygen tension, cellular differentiation, and nutrient availability. Application of SILEC-SF to the challenging analysis of the nuclear compartment revealed a nuclear acyl-CoA profile distinct from that of the cytosol, with notable nuclear enrichment of propionyl-CoA. Using isotope tracing, we identified the branched chain amino acid isoleucine as a major metabolic source of nuclear propionyl-CoA and histone propionylation, thus revealing a new mechanism of crosstalk between metabolism and the epigenome.


Subject(s)
Acyl Coenzyme A/metabolism , Cell Compartmentation , Cell Nucleus/metabolism , Energy Metabolism , Histones/metabolism , Metabolomics , Protein Processing, Post-Translational , Animals , Cell Differentiation , Chromatography, Liquid , Cytosol/metabolism , Epigenesis, Genetic , Hep G2 Cells , Humans , Isoleucine , Metabolome , Mice , Mitochondria/metabolism , Oxygen/metabolism , Spectrometry, Mass, Electrospray Ionization
4.
Mol Cell ; 82(21): 4099-4115.e9, 2022 11 03.
Article in English | MEDLINE | ID: mdl-36208627

ABSTRACT

Nonalcoholic fatty liver disease (NAFLD) is characterized by excessive hepatic lipid accumulation, which can progress to nonalcoholic steatohepatitis (NASH). Histone deacetylase Sirtuin 6 (SIRT6) regulates NAFLD by regulating metabolism-related gene expression, but an extrachromosomal role for SIRT6 in NAFLD development remains elusive. We investigated whether SIRT6 functions on NAFLD in the cytoplasm. We found that SIRT6 binds saturated fatty acids, especially palmitic acid. This binding leads to its nuclear export, where it deacetylates long-chain acyl-CoA synthase 5 (ACSL5), thereby facilitating fatty acid oxidation. High-fat diet-induced NAFLD is suppressed by ACSL5 hepatic overexpression but is exacerbated by its depletion. As confirmation, overexpression of a deacetylated ACSL5 mimic attenuated NAFLD in Sirt6 liver-specific knockout mice. Moreover, NASH-hepatic tissues from both patients and diet-fed mice exhibited significantly reduced cytoplasmic SIRT6 levels and increased ACSL5 acetylation. The SIRT6/ACSL5 signaling pathway has a critical role in NAFLD progression and might constitute an avenue for therapeutic intervention.


Subject(s)
Non-alcoholic Fatty Liver Disease , Sirtuins , Mice , Animals , Non-alcoholic Fatty Liver Disease/genetics , Non-alcoholic Fatty Liver Disease/metabolism , Acyl Coenzyme A/metabolism , Mice, Inbred C57BL , Liver/metabolism , Lipid Metabolism , Mice, Knockout , Fatty Acids/metabolism , Sirtuins/genetics , Sirtuins/metabolism , Cytoplasm/metabolism
5.
Nat Rev Mol Cell Biol ; 18(2): 90-101, 2017 02.
Article in English | MEDLINE | ID: mdl-27924077

ABSTRACT

Eight types of short-chain Lys acylations have recently been identified on histones: propionylation, butyrylation, 2-hydroxyisobutyrylation, succinylation, malonylation, glutarylation, crotonylation and ß-hydroxybutyrylation. Emerging evidence suggests that these histone modifications affect gene expression and are structurally and functionally different from the widely studied histone Lys acetylation. In this Review, we discuss the regulation of non-acetyl histone acylation by enzymatic and metabolic mechanisms, the acylation 'reader' proteins that mediate the effects of different acylations and their physiological functions, which include signal-dependent gene activation, spermatogenesis, tissue injury and metabolic stress. We propose a model to explain our present understanding of how differential histone acylation is regulated by the metabolism of the different acyl-CoA forms, which in turn modulates the regulation of gene expression.


Subject(s)
Gene Expression Regulation , Histones/chemistry , Histones/metabolism , Acetyl Coenzyme A/metabolism , Acyl Coenzyme A/metabolism , Acylation , Animals , Fatty Acids, Volatile/metabolism , Histones/genetics , Humans , Lysine/metabolism , Male , Protein Domains , Protein Processing, Post-Translational , Spermatogenesis , Stress, Physiological
6.
EMBO J ; 43(12): 2337-2367, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38649537

ABSTRACT

Mitochondria are cellular powerhouses that generate energy through the electron transport chain (ETC). The mitochondrial genome (mtDNA) encodes essential ETC proteins in a compartmentalized manner, however, the mechanism underlying metabolic regulation of mtDNA function remains unknown. Here, we report that expression of tricarboxylic acid cycle enzyme succinate-CoA ligase SUCLG1 strongly correlates with ETC genes across various TCGA cancer transcriptomes. Mechanistically, SUCLG1 restricts succinyl-CoA levels to suppress the succinylation of mitochondrial RNA polymerase (POLRMT). Lysine 622 succinylation disrupts the interaction of POLRMT with mtDNA and mitochondrial transcription factors. SUCLG1-mediated POLRMT hyposuccinylation maintains mtDNA transcription, mitochondrial biogenesis, and leukemia cell proliferation. Specifically, leukemia-promoting FMS-like tyrosine kinase 3 (FLT3) mutations modulate nuclear transcription and upregulate SUCLG1 expression to reduce succinyl-CoA and POLRMT succinylation, resulting in enhanced mitobiogenesis. In line, genetic depletion of POLRMT or SUCLG1 significantly delays disease progression in mouse and humanized leukemia models. Importantly, succinyl-CoA level and POLRMT succinylation are downregulated in FLT3-mutated clinical leukemia samples, linking enhanced mitobiogenesis to cancer progression. Together, SUCLG1 connects succinyl-CoA with POLRMT succinylation to modulate mitochondrial function and cancer development.


Subject(s)
Organelle Biogenesis , Succinate-CoA Ligases , Animals , Humans , Mice , Acyl Coenzyme A/metabolism , Acyl Coenzyme A/genetics , Cell Line, Tumor , Cell Proliferation , Disease Progression , DNA, Mitochondrial/metabolism , DNA, Mitochondrial/genetics , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/genetics , Leukemia/metabolism , Leukemia/genetics , Leukemia/pathology , Mitochondria/metabolism , Mitochondria/genetics , Mitochondrial Proteins/metabolism , Mitochondrial Proteins/genetics , Succinate-CoA Ligases/metabolism , Succinate-CoA Ligases/genetics
7.
Mol Cell ; 76(6): 909-921.e3, 2019 12 19.
Article in English | MEDLINE | ID: mdl-31676231

ABSTRACT

Metabolic signaling to chromatin often underlies how adaptive transcriptional responses are controlled. While intermediary metabolites serve as co-factors for histone-modifying enzymes during metabolic flux, how these modifications contribute to transcriptional responses is poorly understood. Here, we utilize the highly synchronized yeast metabolic cycle (YMC) and find that fatty acid ß-oxidation genes are periodically expressed coincident with the ß-oxidation byproduct histone crotonylation. Specifically, we found that H3K9 crotonylation peaks when H3K9 acetylation declines and energy resources become limited. During this metabolic state, pro-growth gene expression is dampened; however, mutation of the Taf14 YEATS domain, a H3K9 crotonylation reader, results in de-repression of these genes. Conversely, exogenous addition of crotonic acid results in increased histone crotonylation, constitutive repression of pro-growth genes, and disrupted YMC oscillations. Together, our findings expose an unexpected link between metabolic flux and transcription and demonstrate that histone crotonylation and Taf14 participate in the repression of energy-demanding gene expression.


Subject(s)
Acyl Coenzyme A/metabolism , Energy Metabolism , Gene Expression Regulation, Fungal , Histones/metabolism , Protein Processing, Post-Translational , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Transcription Factor TFIID/metabolism , Energy Metabolism/genetics , Fatty Acids/metabolism , Histones/genetics , Homeostasis , Lysine , Oxidation-Reduction , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics , Signal Transduction , Transcription Factor TFIID/genetics , Transcription, Genetic
8.
Trends Biochem Sci ; 47(9): 732-735, 2022 09.
Article in English | MEDLINE | ID: mdl-35418348

ABSTRACT

Alternative histone acylations integrate gene expression with cellular metabolic states. Recent measurements of cellular acyl-coenzyme A (acyl-CoA) pools highlight the potential that histone post-translational modifications (PTMs) contribute directly to the regulation of metabolite pools. A metabolite-centric view throws new light onto roles and evolution of histone PTMs.


Subject(s)
Chromatin , Histones , Acyl Coenzyme A/metabolism , Acylation , Histones/metabolism , Protein Processing, Post-Translational
9.
Nature ; 581(7808): 329-332, 2020 05.
Article in English | MEDLINE | ID: mdl-32433610

ABSTRACT

Diacylglycerol O-acyltransferase 1 (DGAT1) synthesizes triacylglycerides and is required for dietary fat absorption and fat storage in humans1. DGAT1 belongs to the membrane-bound O-acyltransferase (MBOAT) superfamily, members of which are found in all kingdoms of life and are involved in the acylation of lipids and proteins2,3. How human DGAT1 and other mammalian members of the MBOAT family recognize their substrates and catalyse their reactions is unknown. The absence of three-dimensional structures also hampers rational targeting of DGAT1 for therapeutic purposes. Here we present the cryo-electron microscopy structure of human DGAT1 in complex with an oleoyl-CoA substrate. Each DGAT1 protomer has nine transmembrane helices, eight of which form a conserved structural fold that we name the MBOAT fold. The MBOAT fold in DGAT1 forms a hollow chamber in the membrane that encloses highly conserved catalytic residues. The chamber has separate entrances for each of the two substrates, fatty acyl-CoA and diacylglycerol. DGAT1 can exist as either a homodimer or a homotetramer and the two forms have similar enzymatic activity. The N terminus of DGAT1 interacts with the neighbouring protomer and these interactions are required for enzymatic activity.


Subject(s)
Cryoelectron Microscopy , Diacylglycerol O-Acyltransferase/chemistry , Diacylglycerol O-Acyltransferase/metabolism , Acyl Coenzyme A/chemistry , Acyl Coenzyme A/metabolism , Binding Sites , Diacylglycerol O-Acyltransferase/genetics , Diacylglycerol O-Acyltransferase/ultrastructure , Diglycerides/metabolism , Humans , Models, Molecular , Protein Multimerization , Structure-Activity Relationship , Triglycerides/metabolism
10.
Nature ; 581(7808): 323-328, 2020 05.
Article in English | MEDLINE | ID: mdl-32433611

ABSTRACT

Triacylglycerols store metabolic energy in organisms and have industrial uses as foods and fuels. Excessive accumulation of triacylglycerols in humans causes obesity and is associated with metabolic diseases1. Triacylglycerol synthesis is catalysed by acyl-CoA diacylglycerol acyltransferase (DGAT) enzymes2-4, the structures and catalytic mechanisms of which remain unknown. Here we determined the structure of dimeric human DGAT1, a member of the membrane-bound O-acyltransferase (MBOAT) family, by cryo-electron microscopy at approximately 3.0 Å resolution. DGAT1 forms a homodimer through N-terminal segments and a hydrophobic interface, with putative active sites within the membrane region. A structure obtained with oleoyl-CoA substrate resolved at approximately 3.2 Å shows that the CoA moiety binds DGAT1 on the cytosolic side and the acyl group lies deep within a hydrophobic channel, positioning the acyl-CoA thioester bond near an invariant catalytic histidine residue. The reaction centre is located inside a large cavity, which opens laterally to the membrane bilayer, providing lipid access to the active site. A lipid-like density-possibly representing an acyl-acceptor molecule-is located within the reaction centre, orthogonal to acyl-CoA. Insights provided by the DGAT1 structures, together with mutagenesis and functional studies, provide the basis for a model of the catalysis of triacylglycerol synthesis by DGAT.


Subject(s)
Biocatalysis , Cryoelectron Microscopy , Diacylglycerol O-Acyltransferase/metabolism , Diacylglycerol O-Acyltransferase/ultrastructure , Triglycerides/biosynthesis , Acyl Coenzyme A/chemistry , Acyl Coenzyme A/metabolism , Acyl Coenzyme A/ultrastructure , Acyltransferases/chemistry , Acyltransferases/metabolism , Catalytic Domain , Cell Membrane/chemistry , Cell Membrane/metabolism , Diacylglycerol O-Acyltransferase/chemistry , Histidine/chemistry , Histidine/metabolism , Humans , Hydrophobic and Hydrophilic Interactions , Models, Molecular , Protein Multimerization , Substrate Specificity
11.
Mol Microbiol ; 121(6): 1164-1181, 2024 06.
Article in English | MEDLINE | ID: mdl-38676355

ABSTRACT

Latent tuberculosis, caused by dormant Mycobacterium tuberculosis (Mtb), poses a threat to global health through the incubation of undiagnosed infections within the community. Dormant Mtb, which is phenotypically tolerant to antibiotics, accumulates triacylglycerol (TAG) utilizing fatty acids obtained from macrophage lipid droplets. TAG is vital to mycobacteria, serving as a cell envelope component and energy reservoir during latency. TAG synthesis occurs by sequential acylation of glycerol-3-phosphate, wherein the second acylation step is catalyzed by acylglycerol-3-phosphate acyltransferase (AGPAT), resulting in the production of phosphatidic acid (PA), a precursor for the synthesis of TAG and various phospholipids. Here, we have characterized a putative acyltransferase of Mtb encoded by Rv3816c. We found that Rv3816c has all four characteristic motifs of AGPAT, exists as a membrane-bound enzyme, and functions as 1-acylglycerol-3-phosphate acyltransferase. The enzyme could transfer the acyl group to acylglycerol-3-phosphate (LPA) from monounsaturated fatty acyl-coenzyme A of chain length 16 or 18 to produce PA. Complementation of Escherichia coli PlsC mutant in vivo by Rv3816c confirmed that it functions as AGPAT. Its active site mutants, H43A and D48A, were incapable of transferring the acyl group to LPA in vitro and were not able to rescue the growth defect of E. coli PlsC mutant in vivo. Identifying Rv3816c as AGPAT and comparing its properties with other AGPAT homologs is not only a step toward understanding the TAG biosynthesis in mycobacteria but has the potential to explore it as a drug target.


Subject(s)
Mycobacterium tuberculosis , Triglycerides , Mycobacterium tuberculosis/enzymology , Mycobacterium tuberculosis/genetics , Mycobacterium tuberculosis/metabolism , Triglycerides/biosynthesis , Triglycerides/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , 1-Acylglycerol-3-Phosphate O-Acyltransferase/metabolism , 1-Acylglycerol-3-Phosphate O-Acyltransferase/genetics , Glycerol-3-Phosphate O-Acyltransferase/metabolism , Glycerol-3-Phosphate O-Acyltransferase/genetics , Acyltransferases/metabolism , Acyltransferases/genetics , Acylation , Fatty Acids/metabolism , Fatty Acids/biosynthesis , Phosphatidic Acids/metabolism , Phosphatidic Acids/biosynthesis , Acyl Coenzyme A/metabolism
12.
Mol Cell ; 67(5): 853-866.e5, 2017 Sep 07.
Article in English | MEDLINE | ID: mdl-28803779

ABSTRACT

Lysine crotonylation (Kcr) is a newly identified histone modification that is associated with active transcription in mammalian cells. Here we report that the chromodomain Y-like transcription corepressor CDYL negatively regulates histone Kcr by acting as a crotonyl-CoA hydratase to convert crotonyl-CoA to ß-hydroxybutyryl-CoA. We showed that the negative regulation of histone Kcr by CDYL is intrinsically linked to its transcription repression activity and functionally implemented in the reactivation of sex chromosome-linked genes in round spermatids and genome-wide histone replacement in elongating spermatids. Significantly, Cdyl transgenic mice manifest dysregulation of histone Kcr and reduction of male fertility with a decreased epididymal sperm count and sperm cell motility. Our study uncovers a biochemical pathway in the regulation of histone Kcr and implicates CDYL-regulated histone Kcr in spermatogenesis, adding to the understanding of the physiology of male reproduction and the mechanism of the spermatogenic failure in AZFc (Azoospermia Factor c)-deleted infertile men.


Subject(s)
Acyl Coenzyme A/metabolism , Co-Repressor Proteins/metabolism , Enoyl-CoA Hydratase/metabolism , Histone Acetyltransferases/metabolism , Histones/metabolism , Infertility, Male/enzymology , Protein Processing, Post-Translational , Proteins/metabolism , Spermatogenesis , Spermatozoa/enzymology , Testis/enzymology , Animals , Co-Repressor Proteins/genetics , Enoyl-CoA Hydratase/genetics , Fertility , Genetic Predisposition to Disease , HeLa Cells , Histone Acetyltransferases/genetics , Humans , Hydro-Lyases , Infertility, Male/genetics , Infertility, Male/pathology , Infertility, Male/physiopathology , Kinetics , Lysine , Male , Mice, Inbred C57BL , Mice, Transgenic , Phenotype , Protein Domains , Proteins/genetics , RNA Interference , Sf9 Cells , Sperm Count , Sperm Motility , Spermatozoa/pathology , Testis/pathology , Testis/physiopathology , Transfection
13.
Proc Natl Acad Sci U S A ; 119(7)2022 02 15.
Article in English | MEDLINE | ID: mdl-35140179

ABSTRACT

S-acylation, also known as palmitoylation, is the most abundant form of protein lipidation in humans. This reversible posttranslational modification, which targets thousands of proteins, is catalyzed by 23 members of the DHHC family of integral membrane enzymes. DHHC enzymes use fatty acyl-CoA as the ubiquitous fatty acyl donor and become autoacylated at a catalytic cysteine; this intermediate subsequently transfers the fatty acyl group to a cysteine in the target protein. Protein S-acylation intersects with almost all areas of human physiology, and several DHHC enzymes are considered as possible therapeutic targets against diseases such as cancer. These efforts would greatly benefit from a detailed understanding of the molecular basis for this crucial enzymatic reaction. Here, we combine X-ray crystallography with all-atom molecular dynamics simulations to elucidate the structure of the precatalytic complex of human DHHC20 in complex with palmitoyl CoA. The resulting structure reveals that the fatty acyl chain inserts into a hydrophobic pocket within the transmembrane spanning region of the protein, whereas the CoA headgroup is recognized by the cytosolic domain through polar and ionic interactions. Biochemical experiments corroborate the predictions from our structural model. We show, using both computational and experimental analyses, that palmitoyl CoA acts as a bivalent ligand where the interaction of the DHHC enzyme with both the fatty acyl chain and the CoA headgroup is important for catalytic chemistry to proceed. This bivalency explains how, in the presence of high concentrations of free CoA under physiological conditions, DHHC enzymes can efficiently use palmitoyl CoA as a substrate for autoacylation.


Subject(s)
Acyl Coenzyme A/chemistry , Acyl Coenzyme A/metabolism , Acyltransferases/metabolism , Acyltransferases/genetics , Catalytic Domain , Cell Membrane/enzymology , Gene Expression Regulation, Enzymologic , Humans , Lipoylation , Models, Molecular , Molecular Dynamics Simulation , Mutation , Protein Binding , Protein Conformation , Protein Domains
14.
Proc Natl Acad Sci U S A ; 119(11): e2117013119, 2022 03 15.
Article in English | MEDLINE | ID: mdl-35259022

ABSTRACT

SignificanceThe study provided a long-sought molecular mechanism that could explain the link between fatty acid metabolism and cancer metastasis. Further understanding may lead to new strategies to inhibit cancer metastasis. The chemical proteomic approach developed here will be useful for discovering other regulatory mechanisms of protein function by small molecule metabolites.


Subject(s)
Acyl Coenzyme A/metabolism , NM23 Nucleoside Diphosphate Kinases/antagonists & inhibitors , Neoplasms/metabolism , Neoplasms/pathology , Breast Neoplasms , Endocytosis , Female , Humans , Neoplasm Metastasis , Neoplasms/etiology , Protein Binding , Proteome , Proteomics/methods
15.
Proc Natl Acad Sci U S A ; 119(8)2022 02 22.
Article in English | MEDLINE | ID: mdl-35165190

ABSTRACT

Mycobacterium tuberculosis has a lipid-rich cell envelope that is remodeled throughout infection to enable adaptation within the host. Few transcriptional regulators have been characterized that coordinate synthesis of mycolic acids, the major cell wall lipids of mycobacteria. Here, we show that the mycolic acid desaturase regulator (MadR), a transcriptional repressor of the mycolate desaturase genes desA1 and desA2, controls mycolic acid desaturation and biosynthesis in response to cell envelope stress. A madR-null mutant of M. smegmatis exhibited traits of an impaired cell wall with an altered outer mycomembrane, accumulation of a desaturated α-mycolate, susceptibility to antimycobacterials, and cell surface disruption. Transcriptomic profiling showed that enriched lipid metabolism genes that were significantly down-regulated upon madR deletion included acyl-coenzyme A (aceyl-CoA) dehydrogenases, implicating it in the indirect control of ß-oxidation pathways. Electromobility shift assays and binding affinities suggest a unique acyl-CoA pool-sensing mechanism, whereby MadR is able to bind a range of acyl-CoAs, including those with unsaturated as well as saturated acyl chains. MadR repression of desA1/desA2 is relieved upon binding of saturated acyl-CoAs of chain length C16 to C24, while no impact is observed upon binding of shorter chain and unsaturated acyl-CoAs. We propose this mechanism of regulation as distinct to other mycolic acid and fatty acid synthesis regulators and place MadR as the key regulatory checkpoint that coordinates mycolic acid remodeling during infection in response to host-derived cell surface perturbation.


Subject(s)
Bacterial Proteins/metabolism , Mycobacterium/metabolism , Mycolic Acids/metabolism , Racemases and Epimerases/metabolism , Acyl Coenzyme A/metabolism , Bacterial Proteins/physiology , Cell Wall/metabolism , Fatty Acid Desaturases/metabolism , Fatty Acids/metabolism , Lipid Metabolism/physiology , Mycobacterium Infections , Mycobacterium tuberculosis/metabolism , Racemases and Epimerases/physiology , Transcription Factors/metabolism
16.
Biochemistry ; 63(18): 2352-2368, 2024 Sep 17.
Article in English | MEDLINE | ID: mdl-39206807

ABSTRACT

Fusobacterium nucleatum, a Gram-negative obligate anaerobe, is common to the oral microbiota, but the species is known to infect other sites of the body where it is associated with a range of pathologies. At present, little is known about the mechanisms by which F. nucleatum mitigates against oxidative and nitrosative stress. Inspection of the F. nucleatum subsp. polymorphum ATCC 10953 genome reveals that it encodes a flavodiiron protein (FDP; FNP2073) that is known in other organisms to reduce NO to N2O and/or O2 to H2O. FNP2073 is dicistronic with a gene encoding a multicomponent enzyme termed BCR for butyryl-CoA reductase. BCR is composed of a butyryl-CoA dehydrogenase domain (BCD), the C-terminal domain of the α-subunit of the electron-transfer flavoprotein (Etfα), and a rubredoxin domain. We show that BCR and the FDP form an α4ß4 heterotetramic complex and use butyryl-CoA to selectively reduce O2 to H2O. The FAD associated with the Etfα domain (α-FAD) forms red anionic semiquinone (FAD•-), whereas the FAD present in the BCD domain (δ-FAD) forms the blue-neutral semiquinone (FADH•), indicating that both cofactors participate in one-electron transfers. This was confirmed in stopped-flow studies where the reduction of oxidized BCR with an excess of butyryl-CoA resulted in rapid (<1.6 ms) interflavin electron transfer evidenced by the formation of the FAD•-. Analysis of bacterial genomes revealed that the dicistron is present in obligate anaerobic gut bacteria considered to be beneficial by virtue of their ability to produce butyrate. Thus, BCR-FDP may help to maintain anaerobiosis in the colon.


Subject(s)
Bacterial Proteins , Fusobacterium nucleatum , Oxidation-Reduction , Oxygen , Fusobacterium nucleatum/metabolism , Fusobacterium nucleatum/genetics , Fusobacterium nucleatum/enzymology , Oxygen/metabolism , Oxygen/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Electron-Transferring Flavoproteins/metabolism , Electron-Transferring Flavoproteins/genetics , Electron-Transferring Flavoproteins/chemistry , Electron Transport , Acyl Coenzyme A/metabolism , Butyryl-CoA Dehydrogenase/metabolism , Butyryl-CoA Dehydrogenase/genetics , Butyryl-CoA Dehydrogenase/chemistry
17.
Biochemistry ; 63(17): 2153-2165, 2024 Sep 03.
Article in English | MEDLINE | ID: mdl-39152907

ABSTRACT

Per and polyfluoroalkyl substances (PFAS) are a large family of anthropogenic fluorinated chemicals of increasing environmental concern. Over recent years, numerous microbial communities have been found to be capable of metabolizing some polyfluoroalkyl substances, generating a range of low-molecular-weight PFAS metabolites. One proposed pathway for the microbial breakdown of fluorinated carboxylates includes ß-oxidation, this pathway is initiated by the formation of a CoA adduct. However, until recently no PFAS-CoA adducts had been reported. In a previous study, we were able to use a bacterial medium-chain acyl-CoA synthetase (mACS) to form CoA adducts of fluorinated adducts of propanoic acid and pentanoic acid but were not able to detect any products of fluorinated hexanoic acid analogues. Herein, we expressed and purified a long-chain acyl-CoA synthetase (lACS) and a A461K variant of mACS from the soil bacterium Gordonia sp. strain NB4-1Y and performed an analysis of substrate scope and enzyme kinetics using fluorinated and nonfluorinated carboxylates. We determined that lACS can catalyze the formation of CoA adducts of 1:5 fluorotelomer carboxylic acid (FTCA), 2:4 FTCA and 3:3 FTCA, albeit with generally low turnover rates (<0.02 s-1) compared with the nonfluorinated hexanoic acid (5.39 s-1). In addition, the A461K variant was found to have an 8-fold increase in selectivity toward hexanoic acid compared with wild-type mACS, suggesting that Ala-461 has a mechanistic role in selectivity toward substrate chain length. This provides further evidence to validate the proposed activation step involving the formation of CoA adducts in the enzymatic breakdown of PFAS.


Subject(s)
Caproates , Coenzyme A Ligases , Coenzyme A Ligases/metabolism , Coenzyme A Ligases/genetics , Coenzyme A Ligases/chemistry , Caproates/metabolism , Caproates/chemistry , Gordonia Bacterium/metabolism , Gordonia Bacterium/enzymology , Gordonia Bacterium/genetics , Halogenation , Coenzyme A/metabolism , Coenzyme A/chemistry , Kinetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Acyl Coenzyme A/metabolism , Acyl Coenzyme A/chemistry , Substrate Specificity
18.
J Biol Chem ; 299(1): 102745, 2023 01.
Article in English | MEDLINE | ID: mdl-36436558

ABSTRACT

Nudix hydrolase 7 (NUDT7) is an enzyme that hydrolyzes CoA species, is highly expressed in the liver, and resides in the peroxisomes. Peroxisomes are organelles where the preferential oxidation of dicarboxylic fatty acids occurs and where the hepatic synthesis of the primary bile acids cholic acid and chenodeoxycholic acid is completed. We previously showed that liver-specific overexpression of NUDT7 affects peroxisomal lipid metabolism but does not prevent the increase in total liver CoA levels that occurs during fasting. We generated Nudt7-/- mice to further characterize the role that peroxisomal (acyl-)CoA degradation plays in the modulation of the size and composition of the acyl-CoA pool and in the regulation of hepatic lipid metabolism. Here, we show that deletion of Nudt7 alters the composition of the hepatic acyl-CoA pool in mice fed a low-fat diet, but only in males fed a Western diet does the lack of NUDT7 activity increase total liver CoA levels. This effect is driven by the male-specific accumulation of medium-chain dicarboxylic acyl-CoAs, which are produced from the ß-oxidation of dicarboxylic fatty acids. We also show that, under conditions of elevated synthesis of chenodeoxycholic acid derivatives, Nudt7 deletion promotes the production of tauromuricholic acid, decreasing the hydrophobicity index of the intestinal bile acid pool and increasing fecal cholesterol excretion in male mice. These findings reveal that NUDT7-mediated hydrolysis of acyl-CoA pathway intermediates in liver peroxisomes contributes to the regulation of dicarboxylic fatty acid metabolism and the composition of the bile acid pool.


Subject(s)
Bile Acids and Salts , Diet, Western , Animals , Male , Mice , Acyl Coenzyme A/metabolism , Bile Acids and Salts/metabolism , Chenodeoxycholic Acid , Fatty Acids/metabolism , Liver/metabolism , Oxidation-Reduction , Nudix Hydrolases
19.
Biochem Biophys Res Commun ; 704: 149588, 2024 04 16.
Article in English | MEDLINE | ID: mdl-38422897

ABSTRACT

Very long-chain fatty acids (VLCFAs) are fatty acids with a carbon chain length greater than 18 carbons (>C18) and exhibit various functions, such as in skin barrier formation, liver homeostasis, myelin maintenance, spermatogenesis, retinal function, and anti-inflammation. VLCFAs are absorbed by dietary or elongated from endogenous hexadecanoyl acids (C16). Similar to long-chain fatty acid synthesis, VLCFAs elongation begins with acyl-CoA and malonyl-CoA as sources, and the length of the acyl chain is extended by two carbon units in each cycle. However, the VLCFAs elongation machinery is located in ER membrane and consists of four components, FA elongase (ELOVL), 3-ketoacyl-CoA reductase (KAR), 3-hydroxyacyl-CoA dehydratase (HACD), and trans-2-enoyl-CoA reductase (TECR), which is different with the long-chain fatty acid machinery fatty acid synthase (FAS) complex. Although the critical components in the elongation cycle are identified, the detailed catalytic and regulation mechanisms are still poorly understood. Here, we focused on the structural and biochemical analysis of TECR-associated VLCFA elongation reactions. Firstly, we identified a stable complex of human HACD2-TECR based on extensive in vitro characterizations. Combining computational modeling and biochemical analysis, we confirmed the critical interactions between TECR and HACD1/2. Then, we proposed the putative substrate binding sites and catalytic residues for TECR and HACD2. Besides, we revealed the structural similarities of HACD with ELOVLs and proposed the possible competition mechanism of TECR-associated complex formation.


Subject(s)
Fatty Acid Desaturases , Fatty Acids , Humans , Male , Acyl Coenzyme A/metabolism , Carbon , Fatty Acids/metabolism , Hydro-Lyases/metabolism
20.
BMC Plant Biol ; 24(1): 309, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38649801

ABSTRACT

BACKGROUND: Eicosapentaenoic acid (EPA) and docosahexaenoic acid (DHA), belonging to ω-3 long-chain polyunsaturated fatty acids (ω3-LC-PUFAs), are essential components of human diet. They are mainly supplemented by marine fish consumption, although their native producers are oleaginous microalgae. Currently, increasing demand for fish oils is insufficient to meet the entire global needs, which puts pressure on searching for the alternative solutions. One possibility may be metabolic engineering of plants with an introduced enzymatic pathway producing ω3-LC-PUFAs. RESULT: In this study we focused on the acyl-CoA:diacylglycerol acyltransferase2b (PtDGAT2b) from the diatom Phaeodactylum tricornutum, an enzyme responsible for triacylglycerol (TAG) biosynthesis via acyl-CoA-dependent pathway. Gene encoding PtDGAT2b, incorporated into TAG-deficient yeast strain H1246, was used to confirm its activity and conduct biochemical characterization. PtDGAT2b exhibited a broad acyl-CoA preference with both di-16:0-DAG and di-18:1-DAG, whereas di-18:1-DAG was favored. The highest preference for acyl donors was observed for 16:1-, 10:0- and 12:0-CoA. PtDGAT2b also very efficiently utilized CoA-conjugated ω-3 LC-PUFAs (stearidonic acid, eicosatetraenoic acid and EPA). Additionally, verification of the potential role of PtDGAT2b in planta, through its transient expression in tobacco leaves, indicated increased TAG production with its relative amount increasing to 8%. Its co-expression with the gene combinations aimed at EPA biosynthesis led to, beside elevated TAG accumulation, efficient accumulation of EPA which constituted even 25.1% of synthesized non-native fatty acids (9.2% of all fatty acids in TAG pool). CONCLUSIONS: This set of experiments provides a comprehensive biochemical characterization of DGAT enzyme from marine microalgae. Additionally, this study elucidates that PtDGAT2b can be used successfully in metabolic engineering of plants designed to obtain a boosted TAG level, enriched not only in ω-3 LC-PUFAs but also in medium-chain and ω-7 fatty acids.


Subject(s)
Diacylglycerol O-Acyltransferase , Diatoms , Nicotiana , Diatoms/genetics , Diatoms/enzymology , Diatoms/metabolism , Diacylglycerol O-Acyltransferase/genetics , Diacylglycerol O-Acyltransferase/metabolism , Nicotiana/genetics , Nicotiana/enzymology , Nicotiana/metabolism , Acyl Coenzyme A/metabolism , Plants, Genetically Modified , Triglycerides/biosynthesis , Triglycerides/metabolism , Eicosapentaenoic Acid/biosynthesis , Eicosapentaenoic Acid/metabolism , Fatty Acids, Omega-3/biosynthesis , Fatty Acids, Omega-3/metabolism , Metabolic Engineering
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