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1.
Cell ; 175(2): 502-513.e13, 2018 10 04.
Article in English | MEDLINE | ID: mdl-30245009

ABSTRACT

Acetate is a major nutrient that supports acetyl-coenzyme A (Ac-CoA) metabolism and thus lipogenesis and protein acetylation. However, its source is unclear. Here, we report that pyruvate, the end product of glycolysis and key node in central carbon metabolism, quantitatively generates acetate in mammals. This phenomenon becomes more pronounced in the context of nutritional excess, such as during hyperactive glucose metabolism. Conversion of pyruvate to acetate occurs through two mechanisms: (1) coupling to reactive oxygen species (ROS) and (2) neomorphic enzyme activity from keto acid dehydrogenases that enable function as pyruvate decarboxylases. Further, we demonstrate that de novo acetate production sustains Ac-CoA pools and cell proliferation in limited metabolic environments, such as during mitochondrial dysfunction or ATP citrate lyase (ACLY) deficiency. By virtue of de novo acetate production being coupled to mitochondrial metabolism, there are numerous possible regulatory mechanisms and links to pathophysiology.


Subject(s)
Acetates/metabolism , Glucose/metabolism , Pyruvic Acid/metabolism , ATP Citrate (pro-S)-Lyase/physiology , Acetyl Coenzyme A/biosynthesis , Acetyl Coenzyme A/metabolism , Acetylation , Animals , Female , Glycolysis/physiology , Lipogenesis/physiology , Male , Mammals/metabolism , Mice , Mice, Inbred C57BL , Mitochondria/metabolism , Oxidoreductases , Pyruvate Decarboxylase/physiology , Reactive Oxygen Species/metabolism
2.
Cell ; 174(6): 1549-1558.e14, 2018 09 06.
Article in English | MEDLINE | ID: mdl-30100189

ABSTRACT

Engineering microorganisms for production of fuels and chemicals often requires major re-programming of metabolism to ensure high flux toward the product of interest. This is challenging, as millions of years of evolution have resulted in establishment of tight regulation of metabolism for optimal growth in the organism's natural habitat. Here, we show through metabolic engineering that it is possible to alter the metabolism of Saccharomyces cerevisiae from traditional ethanol fermentation to a pure lipogenesis metabolism, resulting in high-level production of free fatty acids. Through metabolic engineering and process design, we altered subcellular metabolic trafficking, fine-tuned NADPH and ATP supply, and decreased carbon flux to biomass, enabling production of 33.4 g/L extracellular free fatty acids. We further demonstrate that lipogenesis metabolism can replace ethanol fermentation by deletion of pyruvate decarboxylase enzymes followed by adaptive laboratory evolution. Genome sequencing of evolved strains showed that pyruvate kinase mutations were essential for this phenotype.


Subject(s)
Fatty Acids, Nonesterified/biosynthesis , Metabolic Engineering , Saccharomyces cerevisiae/metabolism , Acetyl Coenzyme A/metabolism , Glucose/metabolism , Glycolysis , Isocitrate Dehydrogenase/genetics , Isocitrate Dehydrogenase/metabolism , Lipogenesis , NADP/metabolism , Pentose Phosphate Pathway/genetics , Pyruvate Kinase/genetics , Pyruvate Kinase/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism
3.
Cell ; 170(4): 664-677.e11, 2017 Aug 10.
Article in English | MEDLINE | ID: mdl-28802039

ABSTRACT

The process of aging and circadian rhythms are intimately intertwined, but how peripheral clocks involved in metabolic homeostasis contribute to aging remains unknown. Importantly, caloric restriction (CR) extends lifespan in several organisms and rewires circadian metabolism. Using young versus old mice, fed ad libitum or under CR, we reveal reprogramming of the circadian transcriptome in the liver. These age-dependent changes occur in a highly tissue-specific manner, as demonstrated by comparing circadian gene expression in the liver versus epidermal and skeletal muscle stem cells. Moreover, de novo oscillating genes under CR show an enrichment in SIRT1 targets in the liver. This is accompanied by distinct circadian hepatic signatures in NAD+-related metabolites and cyclic global protein acetylation. Strikingly, this oscillation in acetylation is absent in old mice while CR robustly rescues global protein acetylation. Our findings indicate that the clock operates at the crossroad between protein acetylation, liver metabolism, and aging.


Subject(s)
Aging/metabolism , Circadian Rhythm , Liver/metabolism , Metabolic Networks and Pathways , Acetyl Coenzyme A/metabolism , Acetylation , Aging/pathology , Animals , Caloric Restriction , Histones/metabolism , Liver/pathology , Mice , NAD/metabolism , Proteins/metabolism , Sirtuin 1/metabolism , Stem Cells/metabolism , Transcriptome
4.
Mol Cell ; 84(5): 967-980.e10, 2024 Mar 07.
Article in English | MEDLINE | ID: mdl-38242130

ABSTRACT

Histone-modifying enzymes depend on the availability of cofactors, with acetyl-coenzyme A (CoA) being required for histone acetyltransferase (HAT) activity. The discovery that mitochondrial acyl-CoA-producing enzymes translocate to the nucleus suggests that high concentrations of locally synthesized metabolites may impact acylation of histones and other nuclear substrates, thereby controlling gene expression. Here, we show that 2-ketoacid dehydrogenases are stably associated with the Mediator complex, thus providing a local supply of acetyl-CoA and increasing the generation of hyper-acetylated histone tails. Nitric oxide (NO), which is produced in large amounts in lipopolysaccharide-stimulated macrophages, inhibited the activity of Mediator-associated 2-ketoacid dehydrogenases. Elevation of NO levels and the disruption of Mediator complex integrity both affected de novo histone acetylation within a shared set of genomic regions. Our findings indicate that the local supply of acetyl-CoA generated by 2-ketoacid dehydrogenases bound to Mediator is required to maximize acetylation of histone tails at sites of elevated HAT activity.


Subject(s)
Histones , Nitric Oxide , Histones/genetics , Histones/metabolism , Acetyl Coenzyme A/metabolism , Acetylation , Nitric Oxide/metabolism , Mediator Complex/metabolism , Oxidoreductases/metabolism
5.
Nat Immunol ; 20(9): 1186-1195, 2019 09.
Article in English | MEDLINE | ID: mdl-31384058

ABSTRACT

Macrophages are activated during microbial infection to coordinate inflammatory responses and host defense. Here we find that in macrophages activated by bacterial lipopolysaccharide (LPS), mitochondrial glycerol 3-phosphate dehydrogenase (GPD2) regulates glucose oxidation to drive inflammatory responses. GPD2, a component of the glycerol phosphate shuttle, boosts glucose oxidation to fuel the production of acetyl coenzyme A, acetylation of histones and induction of genes encoding inflammatory mediators. While acute exposure to LPS drives macrophage activation, prolonged exposure to LPS triggers tolerance to LPS, where macrophages induce immunosuppression to limit the detrimental effects of sustained inflammation. The shift in the inflammatory response is modulated by GPD2, which coordinates a shutdown of oxidative metabolism; this limits the availability of acetyl coenzyme A for histone acetylation at genes encoding inflammatory mediators and thus contributes to the suppression of inflammatory responses. Therefore, GPD2 and the glycerol phosphate shuttle integrate the extent of microbial stimulation with glucose oxidation to balance the beneficial and detrimental effects of the inflammatory response.


Subject(s)
Glucose/metabolism , Glycerolphosphate Dehydrogenase/metabolism , Macrophage Activation/immunology , Macrophages/immunology , Macrophages/metabolism , Acetyl Coenzyme A/biosynthesis , Acetylation , Animals , Female , Histones/metabolism , Inflammation/pathology , Lipopolysaccharides , Macrophages/cytology , Male , Mice , Mice, Inbred C57BL , Oxidation-Reduction
6.
Immunity ; 54(8): 1683-1697.e3, 2021 08 10.
Article in English | MEDLINE | ID: mdl-34107298

ABSTRACT

Microbe-derived acetate activates the Drosophila immunodeficiency (IMD) pathway in a subset of enteroendocrine cells (EECs) of the anterior midgut. In these cells, the IMD pathway co-regulates expression of antimicrobial and enteroendocrine peptides including tachykinin, a repressor of intestinal lipid synthesis. To determine whether acetate acts on a cell surface pattern recognition receptor or an intracellular target, we asked whether acetate import was essential for IMD signaling. Mutagenesis and RNA interference revealed that the putative monocarboxylic acid transporter Tarag was essential for enhancement of IMD signaling by dietary acetate. Interference with histone deacetylation in EECs augmented transcription of genes regulated by the steroid hormone ecdysone including IMD targets. Reduced expression of the histone acetyltransferase Tip60 decreased IMD signaling and blocked rescue by dietary acetate and other sources of intracellular acetyl-CoA. Thus, microbe-derived acetate induces chromatin remodeling within enteroendocrine cells, co-regulating host metabolism and intestinal innate immunity via a Tip60-steroid hormone axis that is conserved in mammals.


Subject(s)
Drosophila Proteins/metabolism , Drosophila melanogaster/immunology , Enteroendocrine Cells/metabolism , Gastrointestinal Microbiome/immunology , Histone Acetyltransferases/metabolism , Intestines/immunology , Acetates/immunology , Acetyl Coenzyme A/metabolism , Animals , Chromatin Assembly and Disassembly/physiology , Drosophila melanogaster/microbiology , Ecdysone/metabolism , Immunity, Innate/immunology , Intestines/microbiology , Monocarboxylic Acid Transporters/genetics , Monocarboxylic Acid Transporters/metabolism , RNA Interference , Signal Transduction/immunology , Tachykinins/metabolism
7.
Cell ; 160(4): 745-758, 2015 Feb 12.
Article in English | MEDLINE | ID: mdl-25662011

ABSTRACT

Impaired insulin-mediated suppression of hepatic glucose production (HGP) plays a major role in the pathogenesis of type 2 diabetes (T2D), yet the molecular mechanism by which this occurs remains unknown. Using a novel in vivo metabolomics approach, we show that the major mechanism by which insulin suppresses HGP is through reductions in hepatic acetyl CoA by suppression of lipolysis in white adipose tissue (WAT) leading to reductions in pyruvate carboxylase flux. This mechanism was confirmed in mice and rats with genetic ablation of insulin signaling and mice lacking adipose triglyceride lipase. Insulin's ability to suppress hepatic acetyl CoA, PC activity, and lipolysis was lost in high-fat-fed rats, a phenomenon reversible by IL-6 neutralization and inducible by IL-6 infusion. Taken together, these data identify WAT-derived hepatic acetyl CoA as the main regulator of HGP by insulin and link it to inflammation-induced hepatic insulin resistance associated with obesity and T2D.


Subject(s)
Acetyl Coenzyme A/metabolism , Insulin Resistance , Liver/metabolism , Panniculitis/metabolism , Adipose Tissue, White/chemistry , Adolescent , Animals , Diabetes Mellitus, Type 2 , Diet, High-Fat , Glucose/metabolism , Humans , Hyperglycemia , Interleukin-6/analysis , Lipolysis , Male , Mice , Obesity/metabolism , Rats, Sprague-Dawley
8.
Nature ; 630(8016): 466-474, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38839952

ABSTRACT

Histone acetylation regulates gene expression, cell function and cell fate1. Here we study the pattern of histone acetylation in the epithelial tissue of the Drosophila wing disc. H3K18ac, H4K8ac and total lysine acetylation are increased in the outer rim of the disc. This acetylation pattern is controlled by nuclear position, whereby nuclei continuously move from apical to basal locations within the epithelium and exhibit high levels of H3K18ac when they are in proximity to the tissue surface. These surface nuclei have increased levels of acetyl-CoA synthase, which generates the acetyl-CoA for histone acetylation. The carbon source for histone acetylation in the rim is fatty acid ß-oxidation, which is also increased in the rim. Inhibition of fatty acid ß-oxidation causes H3K18ac levels to decrease in the genomic proximity of genes involved in disc development. In summary, there is a physical mark of the outer rim of the wing and other imaginal epithelia in Drosophila that affects gene expression.


Subject(s)
Acetyl Coenzyme A , Cell Nucleus , Chromatin , Drosophila melanogaster , Animals , Acetate-CoA Ligase/metabolism , Acetyl Coenzyme A/metabolism , Acetylation , Biological Transport , Cell Nucleus/genetics , Cell Nucleus/metabolism , Chromatin/metabolism , Chromatin/genetics , Drosophila melanogaster/enzymology , Drosophila melanogaster/genetics , Drosophila melanogaster/growth & development , Drosophila melanogaster/metabolism , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Fatty Acids/chemistry , Fatty Acids/metabolism , Gene Expression Regulation , Histones/chemistry , Histones/metabolism , Imaginal Discs/cytology , Imaginal Discs/growth & development , Imaginal Discs/metabolism , Lysine/metabolism , Oxidation-Reduction , Wings, Animal/cytology , Wings, Animal/growth & development , Wings, Animal/metabolism
9.
Nature ; 627(8005): 865-872, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38509377

ABSTRACT

Disease-associated astrocyte subsets contribute to the pathology of neurologic diseases, including multiple sclerosis and experimental autoimmune encephalomyelitis1-8 (EAE), an experimental model for multiple sclerosis. However, little is known about the stability of these astrocyte subsets and their ability to integrate past stimulation events. Here we report the identification of an epigenetically controlled memory astrocyte subset that exhibits exacerbated pro-inflammatory responses upon rechallenge. Specifically, using a combination of single-cell RNA sequencing, assay for transposase-accessible chromatin with sequencing, chromatin immunoprecipitation with sequencing, focused interrogation of cells by nucleic acid detection and sequencing, and cell-specific in vivo CRISPR-Cas9-based genetic perturbation studies we established that astrocyte memory is controlled by the metabolic enzyme ATP-citrate lyase (ACLY), which produces acetyl coenzyme A (acetyl-CoA) that is used by histone acetyltransferase p300 to control chromatin accessibility. The number of ACLY+p300+ memory astrocytes is increased in acute and chronic EAE models, and their genetic inactivation ameliorated EAE. We also detected the pro-inflammatory memory phenotype in human astrocytes in vitro; single-cell RNA sequencing and immunohistochemistry studies detected increased numbers of ACLY+p300+ astrocytes in chronic multiple sclerosis lesions. In summary, these studies define an epigenetically controlled memory astrocyte subset that promotes CNS pathology in EAE and, potentially, multiple sclerosis. These findings may guide novel therapeutic approaches for multiple sclerosis and other neurologic diseases.


Subject(s)
Astrocytes , Encephalomyelitis, Autoimmune, Experimental , Epigenetic Memory , Multiple Sclerosis , Animals , Female , Humans , Male , Mice , Acetyl Coenzyme A/metabolism , Astrocytes/enzymology , Astrocytes/metabolism , Astrocytes/pathology , ATP Citrate (pro-S)-Lyase/metabolism , Chromatin/genetics , Chromatin/metabolism , Chromatin Assembly and Disassembly , Chromatin Immunoprecipitation Sequencing , CRISPR-Cas Systems , Encephalomyelitis, Autoimmune, Experimental/enzymology , Encephalomyelitis, Autoimmune, Experimental/genetics , Encephalomyelitis, Autoimmune, Experimental/metabolism , Encephalomyelitis, Autoimmune, Experimental/pathology , Inflammation/enzymology , Inflammation/genetics , Inflammation/metabolism , Inflammation/pathology , Multiple Sclerosis/enzymology , Multiple Sclerosis/genetics , Multiple Sclerosis/metabolism , Multiple Sclerosis/pathology , Single-Cell Gene Expression Analysis , Transposases/metabolism
10.
Mol Cell ; 82(21): 4116-4130.e6, 2022 11 03.
Article in English | MEDLINE | ID: mdl-36283412

ABSTRACT

Pyruvate carboxylase (PC) catalyzes the two-step carboxylation of pyruvate to produce oxaloacetate, playing a key role in the maintenance of metabolic homeostasis in cells. Given its involvement in multiple diseases, PC has been regarded as a potential therapeutic target for obesity, diabetes, and cancer. Albeit acetyl-CoA has been recognized as the allosteric regulator of PC for over 60 years, the underlying mechanism of how acetyl-CoA induces PC activation remains enigmatic. Herein, by using time-resolved cryo-electron microscopy, we have captured the snapshots of PC transitional states during its catalytic cycle. These structures and the biochemical studies reveal that acetyl-CoA stabilizes PC in a catalytically competent conformation, which triggers a cascade of events, including ATP hydrolysis and the long-distance communication between the two reactive centers. These findings provide an integrated picture for PC catalysis and unveil the unique allosteric mechanism of acetyl-CoA in an essential biochemical reaction in all kingdoms of life.


Subject(s)
Acetyl-CoA Carboxylase , Pyruvate Carboxylase , Humans , Pyruvate Carboxylase/genetics , Pyruvate Carboxylase/metabolism , Acetyl Coenzyme A/metabolism , Allosteric Regulation , Cryoelectron Microscopy , Molecular Conformation , Acetyl-CoA Carboxylase/metabolism
11.
Mol Cell ; 82(22): 4196-4198, 2022 11 17.
Article in English | MEDLINE | ID: mdl-36400006

ABSTRACT

Using multi-omics approaches, Park et al. show that reduced cellular acetyl-CoA and protein hypoacetylation promote liver cancer growth and dedifferentiation.


Subject(s)
Histones , Liver Neoplasms , Humans , Acetylation , Acetyl Coenzyme A/metabolism , Histones/metabolism , Protein Processing, Post-Translational , Liver Neoplasms/genetics
12.
Mol Cell ; 82(5): 1066-1077.e7, 2022 03 03.
Article in English | MEDLINE | ID: mdl-35245450

ABSTRACT

The mitochondrial pyruvate dehydrogenase complex (PDC) translocates into the nucleus, facilitating histone acetylation by producing acetyl-CoA. We describe a noncanonical pathway for nuclear PDC (nPDC) import that does not involve nuclear pore complexes (NPCs). Mitochondria cluster around the nucleus in response to proliferative stimuli and tether onto the nuclear envelope (NE) via mitofusin-2 (MFN2)-enriched contact points. A decrease in nuclear MFN2 levels decreases mitochondria tethering and nPDC levels. Mitochondrial PDC crosses the NE and interacts with lamin A, forming a ring below the NE before crossing through the lamin layer into the nucleoplasm, in areas away from NPCs. Effective blockage of NPC trafficking does not decrease nPDC levels. The PDC-lamin interaction is maintained during cell division, when lamin depolymerizes and disassembles before reforming daughter nuclear envelopes, providing another pathway for nPDC entry during mitosis. Our work provides a different angle to understanding mitochondria-to-nucleus communication and nuclear metabolism.


Subject(s)
Cell Nucleus , Pyruvate Dehydrogenase Complex , Acetyl Coenzyme A/metabolism , Cell Nucleus/genetics , Cell Nucleus/metabolism , Lamins/metabolism , Mitochondria/genetics , Mitochondria/metabolism , Nuclear Envelope/metabolism , Pyruvate Dehydrogenase Complex/genetics , Pyruvate Dehydrogenase Complex/metabolism
13.
Mol Cell ; 82(22): 4246-4261.e11, 2022 11 17.
Article in English | MEDLINE | ID: mdl-36400009

ABSTRACT

Acetyl-coenzyme A (acetyl-CoA) plays an important role in metabolism, gene expression, signaling, and other cellular processes via transfer of its acetyl group to proteins and metabolites. However, the synthesis and usage of acetyl-CoA in disease states such as cancer are poorly characterized. Here, we investigated global acetyl-CoA synthesis and protein acetylation in a mouse model and patient samples of hepatocellular carcinoma (HCC). Unexpectedly, we found that acetyl-CoA levels are decreased in HCC due to transcriptional downregulation of all six acetyl-CoA biosynthesis pathways. This led to hypo-acetylation specifically of non-histone proteins, including many enzymes in metabolic pathways. Importantly, repression of acetyl-CoA synthesis promoted oncogenic dedifferentiation and proliferation. Mechanistically, acetyl-CoA synthesis was repressed by the transcription factors TEAD2 and E2A, previously unknown to control acetyl-CoA synthesis. Knockdown of TEAD2 and E2A restored acetyl-CoA levels and inhibited tumor growth. Our findings causally link transcriptional reprogramming of acetyl-CoA metabolism, dedifferentiation, and cancer.


Subject(s)
Carcinoma, Hepatocellular , Liver Neoplasms , Mice , Animals , Acetyl Coenzyme A/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Histones/metabolism , Carcinoma, Hepatocellular/genetics , Liver Neoplasms/genetics , Carcinogenesis/genetics , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism
14.
Mol Cell ; 82(1): 60-74.e5, 2022 01 06.
Article in English | MEDLINE | ID: mdl-34995509

ABSTRACT

Acetyl-CoA is a key intermediate situated at the intersection of many metabolic pathways. The reliance of histone acetylation on acetyl-CoA enables the coordination of gene expression with metabolic state. Abundant acetyl-CoA has been linked to the activation of genes involved in cell growth or tumorigenesis through histone acetylation. However, the role of histone acetylation in transcription under low levels of acetyl-CoA remains poorly understood. Here, we use a yeast starvation model to observe the dramatic alteration in the global occupancy of histone acetylation following carbon starvation; the location of histone acetylation marks shifts from growth-promoting genes to gluconeogenic and fat metabolism genes. This reallocation is mediated by both the histone deacetylase Rpd3p and the acetyltransferase Gcn5p, a component of the SAGA transcriptional coactivator. Our findings reveal an unexpected switch in the specificity of histone acetylation to promote pathways that generate acetyl-CoA for oxidation when acetyl-CoA is limiting.


Subject(s)
Gluconeogenesis , Glucose/deficiency , Histones/metabolism , Lipid Metabolism , Protein Processing, Post-Translational , Saccharomyces cerevisiae/metabolism , Acetyl Coenzyme A/metabolism , Acetylation , Gene Expression Regulation, Fungal , Histone Acetyltransferases/genetics , Histone Acetyltransferases/metabolism , Histone Deacetylases/genetics , Histone Deacetylases/metabolism , Lipid Metabolism/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Trans-Activators/genetics , Trans-Activators/metabolism
15.
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
16.
Cell ; 158(1): 9-10, 2014 Jul 03.
Article in English | MEDLINE | ID: mdl-24995972

ABSTRACT

The pyruvate dehydrogenase complex (PDC) catalyzes the conversion of pyruvate into acetyl-CoA, a critical step in metabolism. Sutendra et al. now demonstrate that PDC can translocate from the mitochondria to the nucleus to provide acetyl-CoA necessary for histone acetylation, suggesting a new pathway for mitochondrial-nuclear communication.


Subject(s)
Acetyl Coenzyme A/biosynthesis , Cell Nucleus/metabolism , Pyruvate Dehydrogenase Complex/metabolism , Humans
17.
Cell ; 158(1): 84-97, 2014 Jul 03.
Article in English | MEDLINE | ID: mdl-24995980

ABSTRACT

DNA transcription, replication, and repair are regulated by histone acetylation, a process that requires the generation of acetyl-coenzyme A (CoA). Here, we show that all the subunits of the mitochondrial pyruvate dehydrogenase complex (PDC) are also present and functional in the nucleus of mammalian cells. We found that knockdown of nuclear PDC in isolated functional nuclei decreased the de novo synthesis of acetyl-CoA and acetylation of core histones. Nuclear PDC levels increased in a cell-cycle-dependent manner and in response to serum, epidermal growth factor, or mitochondrial stress; this was accompanied by a corresponding decrease in mitochondrial PDC levels, suggesting a translocation from the mitochondria to the nucleus. Inhibition of nuclear PDC decreased acetylation of specific lysine residues on histones important for G1-S phase progression and expression of S phase markers. Dynamic translocation of mitochondrial PDC to the nucleus provides a pathway for nuclear acetyl-CoA synthesis required for histone acetylation and epigenetic regulation.


Subject(s)
Acetyl Coenzyme A/biosynthesis , Cell Nucleus/metabolism , Pyruvate Dehydrogenase Complex/metabolism , Cell Cycle , Cell Line, Tumor , Cell Nucleus/enzymology , Epigenesis, Genetic , Histones/metabolism , Humans , Mitochondria/enzymology , Mitochondria/metabolism , Protein Transport
18.
Cell ; 159(7): 1591-602, 2014 Dec 18.
Article in English | MEDLINE | ID: mdl-25525877

ABSTRACT

Acetyl-CoA represents a central node of carbon metabolism that plays a key role in bioenergetics, cell proliferation, and the regulation of gene expression. Highly glycolytic or hypoxic tumors must produce sufficient quantities of this metabolite to support cell growth and survival under nutrient-limiting conditions. Here, we show that the nucleocytosolic acetyl-CoA synthetase enzyme, ACSS2, supplies a key source of acetyl-CoA for tumors by capturing acetate as a carbon source. Despite exhibiting no gross deficits in growth or development, adult mice lacking ACSS2 exhibit a significant reduction in tumor burden in two different models of hepatocellular carcinoma. ACSS2 is expressed in a large proportion of human tumors, and its activity is responsible for the majority of cellular acetate uptake into both lipids and histones. These observations may qualify ACSS2 as a targetable metabolic vulnerability of a wide spectrum of tumors.


Subject(s)
Acetate-CoA Ligase/metabolism , Acetates/metabolism , Neoplasms/metabolism , Acetate-CoA Ligase/analysis , Acetate-CoA Ligase/genetics , Acetyl Coenzyme A/metabolism , Animals , Humans , Immunohistochemistry , Liver Neoplasms/metabolism , Mice , Neoplasms/chemistry , Neoplasms/pathology , Positron-Emission Tomography , Triple Negative Breast Neoplasms/chemistry , Triple Negative Breast Neoplasms/pathology
19.
Nature ; 624(7992): 645-652, 2023 Dec.
Article in English | MEDLINE | ID: mdl-38093014

ABSTRACT

People with diabetes feature a life-risking susceptibility to respiratory viral infection, including influenza and SARS-CoV-2 (ref. 1), whose mechanism remains unknown. In acquired and genetic mouse models of diabetes, induced with an acute pulmonary viral infection, we demonstrate that hyperglycaemia leads to impaired costimulatory molecule expression, antigen transport and T cell priming in distinct lung dendritic cell (DC) subsets, driving a defective antiviral adaptive immune response, delayed viral clearance and enhanced mortality. Mechanistically, hyperglycaemia induces an altered metabolic DC circuitry characterized by increased glucose-to-acetyl-CoA shunting and downstream histone acetylation, leading to global chromatin alterations. These, in turn, drive impaired expression of key DC effectors including central antigen presentation-related genes. Either glucose-lowering treatment or pharmacological modulation of histone acetylation rescues DC function and antiviral immunity. Collectively, we highlight a hyperglycaemia-driven metabolic-immune axis orchestrating DC dysfunction during pulmonary viral infection and identify metabolic checkpoints that may be therapeutically exploited in mitigating exacerbated disease in infected diabetics.


Subject(s)
Dendritic Cells , Diabetes Complications , Diabetes Mellitus , Disease Susceptibility , Hyperglycemia , Lung , Virus Diseases , Animals , Mice , Acetyl Coenzyme A/metabolism , Acetylation , Chromatin/genetics , Chromatin/metabolism , Dendritic Cells/immunology , Dendritic Cells/metabolism , Dendritic Cells/pathology , Diabetes Complications/immunology , Diabetes Complications/metabolism , Diabetes Mellitus/genetics , Diabetes Mellitus/immunology , Diabetes Mellitus/metabolism , Glucose/metabolism , Histones/metabolism , Hyperglycemia/complications , Hyperglycemia/immunology , Hyperglycemia/metabolism , Lung/immunology , Lung/metabolism , Lung/virology , T-Lymphocytes/immunology , Virus Diseases/complications , Virus Diseases/immunology , Virus Diseases/mortality , Viruses/immunology , Disease Models, Animal , Humans
20.
Annu Rev Cell Dev Biol ; 31: 473-496, 2015.
Article in English | MEDLINE | ID: mdl-26359776

ABSTRACT

Epigenetic mechanisms by which cells inherit information are, to a large extent, enabled by DNA methylation and posttranslational modifications of histone proteins. These modifications operate both to influence the structure of chromatin per se and to serve as recognition elements for proteins with motifs dedicated to binding particular modifications. Each of these modifications results from an enzyme that consumes one of several important metabolites during catalysis. Likewise, the removal of these marks often results in the consumption of a different metabolite. Therefore, these so-called epigenetic marks have the capacity to integrate the expression state of chromatin with the metabolic state of the cell. This review focuses on the central roles played by acetyl-CoA, S-adenosyl methionine, NAD(+), and a growing list of other acyl-CoA derivatives in epigenetic processes. We also review how metabolites that accumulate as a result of oncogenic mutations are thought to subvert the epigenetic program.


Subject(s)
Epigenesis, Genetic/genetics , Epigenesis, Genetic/physiology , Acetyl Coenzyme A/genetics , Animals , Chromatin/physiology , DNA Methylation/genetics , DNA Methylation/physiology , Humans , NAD/genetics , Protein Processing, Post-Translational/genetics , Protein Processing, Post-Translational/physiology , S-Adenosylmethionine/genetics
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