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1.
Nature ; 625(7994): 385-392, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38123683

ABSTRACT

Digested dietary fats are taken up by enterocytes where they are assembled into pre-chylomicrons in the endoplasmic reticulum followed by transport to the Golgi for maturation and subsequent secretion to the circulation1. The role of mitochondria in dietary lipid processing is unclear. Here we show that mitochondrial dysfunction in enterocytes inhibits chylomicron production and the transport of dietary lipids to peripheral organs. Mice with specific ablation of the mitochondrial aspartyl-tRNA synthetase DARS2 (ref. 2), the respiratory chain subunit SDHA3 or the assembly factor COX10 (ref. 4) in intestinal epithelial cells showed accumulation of large lipid droplets (LDs) in enterocytes of the proximal small intestine and failed to thrive. Feeding a fat-free diet suppressed the build-up of LDs in DARS2-deficient enterocytes, which shows that the accumulating lipids derive mostly from digested fat. Furthermore, metabolic tracing studies revealed an impaired transport of dietary lipids to peripheral organs in mice lacking DARS2 in intestinal epithelial cells. DARS2 deficiency caused a distinct lack of mature chylomicrons concomitant with a progressive dispersal of the Golgi apparatus in proximal enterocytes. This finding suggests that mitochondrial dysfunction results in impaired trafficking of chylomicrons from the endoplasmic reticulum to the Golgi, which in turn leads to storage of dietary lipids in large cytoplasmic LDs. Taken together, these results reveal a role for mitochondria in dietary lipid transport in enterocytes, which might be relevant for understanding the intestinal defects observed in patients with mitochondrial disorders5.


Subject(s)
Dietary Fats , Enterocytes , Lipid Metabolism , Mitochondria , Animals , Mice , Aspartate-tRNA Ligase/metabolism , Chylomicrons/metabolism , Dietary Fats/metabolism , Electron Transport Complex II/metabolism , Endoplasmic Reticulum/metabolism , Enterocytes/metabolism , Enterocytes/pathology , Epithelial Cells/metabolism , Golgi Apparatus/metabolism , Intestines , Lipid Droplets/metabolism , Mitochondria/metabolism , Mitochondria/pathology
2.
Nature ; 615(7952): 499-506, 2023 03.
Article in English | MEDLINE | ID: mdl-36890229

ABSTRACT

Mutations in fumarate hydratase (FH) cause hereditary leiomyomatosis and renal cell carcinoma1. Loss of FH in the kidney elicits several oncogenic signalling cascades through the accumulation of the oncometabolite fumarate2. However, although the long-term consequences of FH loss have been described, the acute response has not so far been investigated. Here we generated an inducible mouse model to study the chronology of FH loss in the kidney. We show that loss of FH leads to early alterations of mitochondrial morphology and the release of mitochondrial DNA (mtDNA) into the cytosol, where it triggers the activation of the cyclic GMP-AMP synthase (cGAS)-stimulator of interferon genes (STING)-TANK-binding kinase 1 (TBK1) pathway and stimulates an inflammatory response that is also partially dependent on retinoic-acid-inducible gene I (RIG-I). Mechanistically, we show that this phenotype is mediated by fumarate and occurs selectively through mitochondrial-derived vesicles in a manner that depends on sorting nexin 9 (SNX9). These results reveal that increased levels of intracellular fumarate induce a remodelling of the mitochondrial network and the generation of mitochondrial-derived vesicles, which allows the release of mtDNAin the cytosol and subsequent activation of the innate immune response.


Subject(s)
DNA, Mitochondrial , Fumarates , Immunity, Innate , Mitochondria , Animals , Mice , DNA, Mitochondrial/metabolism , Fumarate Hydratase/genetics , Fumarate Hydratase/metabolism , Fumarates/metabolism , Mitochondria/enzymology , Mitochondria/genetics , Mitochondria/metabolism , Mitochondria/pathology , Kidney/enzymology , Kidney/metabolism , Kidney/pathology , Cytosol/metabolism
3.
Nature ; 615(7952): 490-498, 2023 03.
Article in English | MEDLINE | ID: mdl-36890227

ABSTRACT

Metabolic rewiring underlies the effector functions of macrophages1-3, but the mechanisms involved remain incompletely defined. Here, using unbiased metabolomics and stable isotope-assisted tracing, we show that an inflammatory aspartate-argininosuccinate shunt is induced following lipopolysaccharide stimulation. The shunt, supported by increased argininosuccinate synthase (ASS1) expression, also leads to increased cytosolic fumarate levels and fumarate-mediated protein succination. Pharmacological inhibition and genetic ablation of the tricarboxylic acid cycle enzyme fumarate hydratase (FH) further increases intracellular fumarate levels. Mitochondrial respiration is also suppressed and mitochondrial membrane potential increased. RNA sequencing and proteomics analyses demonstrate that there are strong inflammatory effects resulting from FH inhibition. Notably, acute FH inhibition suppresses interleukin-10 expression, which leads to increased tumour necrosis factor secretion, an effect recapitulated by fumarate esters. Moreover, FH inhibition, but not fumarate esters, increases interferon-ß production through mechanisms that are driven by mitochondrial RNA (mtRNA) release and activation of the RNA sensors TLR7, RIG-I and MDA5. This effect is recapitulated endogenously when FH is suppressed following prolonged lipopolysaccharide stimulation. Furthermore, cells from patients with systemic lupus erythematosus also exhibit FH suppression, which indicates a potential pathogenic role for this process in human disease. We therefore identify a protective role for FH in maintaining appropriate macrophage cytokine and interferon responses.


Subject(s)
Fumarate Hydratase , Interferon-beta , Macrophages , Mitochondria , RNA, Mitochondrial , Humans , Argininosuccinate Synthase/metabolism , Argininosuccinic Acid/metabolism , Aspartic Acid/metabolism , Cell Respiration , Cytosol/metabolism , Fumarate Hydratase/antagonists & inhibitors , Fumarate Hydratase/genetics , Fumarate Hydratase/metabolism , Fumarates/metabolism , Interferon-beta/biosynthesis , Interferon-beta/immunology , Lipopolysaccharides/pharmacology , Lipopolysaccharides/metabolism , Lupus Erythematosus, Systemic/enzymology , Macrophages/enzymology , Macrophages/immunology , Macrophages/metabolism , Membrane Potential, Mitochondrial , Metabolomics , Mitochondria/genetics , Mitochondria/metabolism , RNA, Mitochondrial/metabolism
4.
Nature ; 598(7881): 473-478, 2021 10.
Article in English | MEDLINE | ID: mdl-34646017

ABSTRACT

The progression of chronic liver disease to hepatocellular carcinoma is caused by the acquisition of somatic mutations that affect 20-30 cancer genes1-8. Burdens of somatic mutations are higher and clonal expansions larger in chronic liver disease9-13 than in normal liver13-16, which enables positive selection to shape the genomic landscape9-13. Here we analysed somatic mutations from 1,590 genomes across 34 liver samples, including healthy controls, alcohol-related liver disease and non-alcoholic fatty liver disease. Seven of the 29 patients with liver disease had mutations in FOXO1, the major transcription factor in insulin signalling. These mutations affected a single hotspot within the gene, impairing the insulin-mediated nuclear export of FOXO1. Notably, six of the seven patients with FOXO1S22W hotspot mutations showed convergent evolution, with variants acquired independently by up to nine distinct hepatocyte clones per patient. CIDEB, which regulates lipid droplet metabolism in hepatocytes17-19, and GPAM, which produces storage triacylglycerol from free fatty acids20,21, also had a significant excess of mutations. We again observed frequent convergent evolution: up to fourteen independent clones per patient with CIDEB mutations and up to seven clones per patient with GPAM mutations. Mutations in metabolism genes were distributed across multiple anatomical segments of the liver, increased clone size and were seen in both alcohol-related liver disease and non-alcoholic fatty liver disease, but rarely in hepatocellular carcinoma. Master regulators of metabolic pathways are a frequent target of convergent somatic mutation in alcohol-related and non-alcoholic fatty liver disease.


Subject(s)
Liver Diseases/genetics , Liver Diseases/metabolism , Liver/metabolism , Mutation/genetics , Active Transport, Cell Nucleus/genetics , Apoptosis Regulatory Proteins/genetics , Cell Line, Tumor , Chronic Disease , Cohort Studies , Fatty Acids, Nonesterified/metabolism , Female , Forkhead Box Protein O1/genetics , Forkhead Box Protein O1/metabolism , Humans , Insulin Resistance , Liver Diseases, Alcoholic/genetics , Liver Diseases, Alcoholic/metabolism , Male , Non-alcoholic Fatty Liver Disease/genetics , Non-alcoholic Fatty Liver Disease/metabolism , Triglycerides/metabolism
5.
FEBS Lett ; 597(2): 246-261, 2023 Jan.
Article in English | MEDLINE | ID: mdl-36217875

ABSTRACT

The compartmentation and distribution of metabolites between mitochondria and the rest of the cell is a key parameter of cell signalling and pathology. Here, we have developed a rapid fractionation procedure that enables us to take mouse heart and liver from in vivo and within ~ 30 s stabilise the distribution of metabolites between mitochondria and the cytosol by rapid cooling, homogenisation and dilution. This is followed by centrifugation of mitochondria through an oil layer to separate mitochondrial and cytosolic fractions for subsequent metabolic analysis. Using this procedure revealed the in vivo compartmentation of mitochondrial metabolites and will enable the assessment of the distribution of metabolites between the cytosol and mitochondria during a range of situations in vivo.


Subject(s)
Heart , Mitochondria , Mice , Animals , Cytosol/metabolism , Liver/metabolism , Mitochondria, Liver/metabolism , Mitochondria, Heart/metabolism , Cell Fractionation/methods
6.
Antioxid Redox Signal ; 36(7-9): 525-549, 2022 03.
Article in English | MEDLINE | ID: mdl-34715750

ABSTRACT

Aims: Lung cancer is the leading cause of cancer death worldwide, and tobacco smoking is a recognized major risk factor for lung tumor development. We analyzed the effect of tobacco-specific nitrosamines (TSNAs) on human lung adenocarcinoma metabolic reprogramming, an emergent hallmark of carcinogenesis. Results: A series of in vitro and in vivo bioenergetic, proteomic, metabolomic, and tumor biology studies were performed to analyze changes in lung cancer cell metabolism and the consequences for hallmarks of cancer, including tumor growth, cancer cell invasion, and redox signaling. The findings revealed that nicotine-derived nitrosamine ketone (NNK) stimulates mitochondrial function and promotes lung tumor growth in vivo. These malignant properties were acquired from the induction of mitochondrial biogenesis induced by the upregulation and activation of the beta-2 adrenergic receptors (ß2-AR)-cholinergic receptor nicotinic alpha 7 subunit (CHRNAα7)-dependent nitrosamine canonical signaling pathway. The observed NNK metabolic effects were mediated by TFAM overexpression and revealed a key role for mitochondrial reactive oxygen species and Annexin A1 in tumor growth promotion. Conversely, ectopic expression of the mitochondrial antioxidant enzyme manganese superoxide dismutase rescued the reprogramming and malignant metabolic effects of exposure to NNK and overexpression of TFAM, underlining the link between NNK and mitochondrial redox signaling in lung cancer. Innovation: Our findings describe the metabolic changes caused by NNK in a mechanistic framework for understanding how cigarette smoking causes lung cancer. Conclusion: Mitochondria play a role in the promotion of lung cancer induced by tobacco-specific nitrosamines. Antioxid. Redox Signal. 36, 525-549.


Subject(s)
Lung Neoplasms , Nitrosamines , Carcinogens/pharmacology , Humans , Lung Neoplasms/metabolism , Nitrosamines/pharmacology , Oxidation-Reduction , Proteomics , Receptors, Adrenergic/metabolism , Signal Transduction , Nicotiana/adverse effects
7.
Nat Commun ; 13(1): 7830, 2022 12 20.
Article in English | MEDLINE | ID: mdl-36539415

ABSTRACT

Metabolic reprogramming is critical for tumor initiation and progression. However, the exact impact of specific metabolic changes on cancer progression is poorly understood. Here, we integrate multimodal analyses of primary and metastatic clonally-related clear cell renal cancer cells (ccRCC) grown in physiological media to identify key stage-specific metabolic vulnerabilities. We show that a VHL loss-dependent reprogramming of branched-chain amino acid catabolism sustains the de novo biosynthesis of aspartate and arginine enabling tumor cells with the flexibility of partitioning the nitrogen of the amino acids depending on their needs. Importantly, we identify the epigenetic reactivation of argininosuccinate synthase (ASS1), a urea cycle enzyme suppressed in primary ccRCC, as a crucial event for metastatic renal cancer cells to acquire the capability to generate arginine, invade in vitro and metastasize in vivo. Overall, our study uncovers a mechanism of metabolic flexibility occurring during ccRCC progression, paving the way for the development of novel stage-specific therapies.


Subject(s)
Carcinoma, Renal Cell , Kidney Neoplasms , Humans , Carcinoma, Renal Cell/genetics , Amino Acids, Branched-Chain , Nitrogen , Kidney Neoplasms/genetics , Arginine/metabolism , Cell Line, Tumor
8.
Cancers (Basel) ; 13(7)2021 Apr 06.
Article in English | MEDLINE | ID: mdl-33917317

ABSTRACT

Tumor cells display metabolic alterations when compared to non-transformed cells. These characteristics are crucial for tumor development, maintenance and survival providing energy supplies and molecular precursors. Anaplerosis is the property of replenishing the TCA cycle, the hub of carbon metabolism, participating in the biosynthesis of precursors for building blocks or signaling molecules. In advanced prostate cancer, an upshift of succinate-driven oxidative phosphorylation via mitochondrial Complex II was reported. Here, using untargeted metabolomics, we found succinate accumulation mainly in malignant cells and an anaplerotic effect contributing to biosynthesis, amino acid, and carbon metabolism. Succinate also stimulated oxygen consumption. Malignant prostate cells displayed higher mitochondrial affinity for succinate when compared to non-malignant prostate cells and the succinate-driven accumulation of metabolites induced expression of mitochondrial complex subunits and their activities. Moreover, extracellular succinate stimulated migration, invasion, and colony formation. Several enzymes linked to accumulated metabolites in the malignant cells were found upregulated in tumor tissue datasets, particularly NME1 and SHMT2 mRNA expression. High expression of the two genes was associated with shorter disease-free survival in prostate cancer cohorts. Moreover, in-vitro expression of both genes was enhanced in prostate cancer cells upon succinate stimulation. In conclusion, the data indicate that uptake of succinate from the tumor environment has an anaplerotic effect that enhances the malignant potential of prostate cancer cells.

9.
Elife ; 102021 12 23.
Article in English | MEDLINE | ID: mdl-34939929

ABSTRACT

The Tricarboxylic Acid (TCA) Cycle is arguably the most critical metabolic cycle in physiology and exists as an essential interface coordinating cellular metabolism, bioenergetics, and redox homeostasis. Despite decades of research, a comprehensive investigation into the consequences of TCA cycle dysfunction remains elusive. Here, we targeted two TCA cycle enzymes, fumarate hydratase (FH) and succinate dehydrogenase (SDH), and combined metabolomics, transcriptomics, and proteomics analyses to fully appraise the consequences of TCA cycle inhibition (TCAi) in murine kidney epithelial cells. Our comparative approach shows that TCAi elicits a convergent rewiring of redox and amino acid metabolism dependent on the activation of ATF4 and the integrated stress response (ISR). Furthermore, we also uncover a divergent metabolic response, whereby acute FHi, but not SDHi, can maintain asparagine levels via reductive carboxylation and maintenance of cytosolic aspartate synthesis. Our work highlights an important interplay between the TCA cycle, redox biology, and amino acid homeostasis.


Subject(s)
Activating Transcription Factor 4/metabolism , Citric Acid Cycle/physiology , Fumarate Hydratase/metabolism , Succinate Dehydrogenase/metabolism , Amino Acids/metabolism , Animals , Cells, Cultured , Citric Acid Cycle/genetics , Kidney/metabolism , Metabolome , Mice , Oxidation-Reduction , RNA Interference
10.
Cardiovasc Res ; 117(4): 1188-1201, 2021 03 21.
Article in English | MEDLINE | ID: mdl-32766828

ABSTRACT

AIMS: Succinate accumulates several-fold in the ischaemic heart and is then rapidly oxidized upon reperfusion, contributing to reactive oxygen species production by mitochondria. In addition, a significant amount of the accumulated succinate is released from the heart into the circulation at reperfusion, potentially activating the G-protein-coupled succinate receptor (SUCNR1). However, the factors that determine the proportion of succinate oxidation or release, and the mechanism of this release, are not known. METHODS AND RESULTS: To address these questions, we assessed the fate of accumulated succinate upon reperfusion of anoxic cardiomyocytes, and of the ischaemic heart both ex vivo and in vivo. The release of accumulated succinate was selective and was enhanced by acidification of the intracellular milieu. Furthermore, pharmacological inhibition, or haploinsufficiency of the monocarboxylate transporter 1 (MCT1) significantly decreased succinate efflux from the reperfused heart. CONCLUSION: Succinate release upon reperfusion of the ischaemic heart is mediated by MCT1 and is facilitated by the acidification of the myocardium during ischaemia. These findings will allow the signalling interaction between succinate released from reperfused ischaemic myocardium and SUCNR1 to be explored.


Subject(s)
Mitochondria, Heart/metabolism , Monocarboxylic Acid Transporters/metabolism , Myocardial Infarction/therapy , Myocardial Reperfusion Injury/metabolism , Myocardial Reperfusion/adverse effects , Myocytes, Cardiac/metabolism , Succinic Acid/metabolism , Symporters/metabolism , Animals , Cells, Cultured , Disease Models, Animal , Female , Isolated Heart Preparation , Male , Metabolome , Mice, Inbred C57BL , Mice, Knockout , Monocarboxylic Acid Transporters/genetics , Myocardial Infarction/genetics , Myocardial Infarction/metabolism , Myocardial Reperfusion Injury/genetics , Oxidation-Reduction , Rats , Reactive Oxygen Species/metabolism , Receptors, G-Protein-Coupled/metabolism , Sus scrofa , Symporters/genetics , Time Factors
11.
Cell Metab ; 32(5): 829-843.e9, 2020 11 03.
Article in English | MEDLINE | ID: mdl-32966766

ABSTRACT

Like normal hematopoietic stem cells, leukemic stem cells depend on their bone marrow (BM) microenvironment for survival, but the underlying mechanisms remain largely unknown. We have studied the contribution of nestin+ BM mesenchymal stem cells (BMSCs) to MLL-AF9-driven acute myeloid leukemia (AML) development and chemoresistance in vivo. Unlike bulk stroma, nestin+ BMSC numbers are not reduced in AML, but their function changes to support AML cells, at the expense of non-mutated hematopoietic stem cells (HSCs). Nestin+ cell depletion delays leukemogenesis in primary AML mice and selectively decreases AML, but not normal, cells in chimeric mice. Nestin+ BMSCs support survival and chemotherapy relapse of AML through increased oxidative phosphorylation, tricarboxylic acid (TCA) cycle activity, and glutathione (GSH)-mediated antioxidant defense. Therefore, AML cells co-opt energy sources and antioxidant defense mechanisms from BMSCs to survive chemotherapy.


Subject(s)
Antioxidants/metabolism , Bone Marrow/metabolism , Leukemia, Myeloid, Acute/metabolism , Mesenchymal Stem Cells/metabolism , Animals , Antineoplastic Agents/therapeutic use , Cells, Cultured , Energy Metabolism , Female , Humans , Leukemia, Myeloid, Acute/therapy , Male , Mice , Mice, Inbred C57BL , Middle Aged
12.
Cell Rep ; 28(2): 498-511.e5, 2019 07 09.
Article in English | MEDLINE | ID: mdl-31291584

ABSTRACT

Iron is an essential metal that fine-tunes the innate immune response by regulating macrophage function, but an integrative view of transcriptional and metabolic responses to iron perturbation in macrophages is lacking. Here, we induced acute iron chelation in primary human macrophages and measured their transcriptional and metabolic responses. Acute iron deprivation causes an anti-proliferative Warburg transcriptome, characterized by an ATF4-dependent signature. Iron-deprived human macrophages show an inhibition of oxidative phosphorylation and a concomitant increase in glycolysis, a large increase in glucose-derived citrate pools associated with lipid droplet accumulation, and modest levels of itaconate production. LPS polarization increases the itaconate:succinate ratio and decreases pro-inflammatory cytokine production. In rats, acute iron deprivation reduces the severity of macrophage-dependent crescentic glomerulonephritis by limiting glomerular cell proliferation and inducing lipid accumulation in the renal cortex. These results suggest that acute iron deprivation has in vivo protective effects mediated by an anti-inflammatory immunometabolic switch in macrophages.


Subject(s)
Inflammation/drug therapy , Iron Deficiencies , Animals , Humans , Macrophages/metabolism , Male , Rats
13.
Nat Metab ; 1: 966-974, 2019 09 30.
Article in English | MEDLINE | ID: mdl-32395697

ABSTRACT

During heart transplantation, storage in cold preservation solution is thought to protect the organ by slowing metabolism; by providing osmotic support; and by minimising ischaemia-reperfusion (IR) injury upon transplantation into the recipient1,2. Despite its widespread use our understanding of the metabolic changes prevented by cold storage and how warm ischaemia leads to damage is surprisingly poor. Here, we compare the metabolic changes during warm ischaemia (WI) and cold ischaemia (CI) in hearts from mouse, pig, and human. We identify common metabolic alterations during WI and those affected by CI, thereby elucidating mechanisms underlying the benefits of CI, and how WI causes damage. Succinate accumulation is a major feature within ischaemic hearts across species, and CI slows succinate generation, thereby reducing tissue damage upon reperfusion caused by the production of mitochondrial reactive oxygen species (ROS)3,4. Importantly, the inevitable periods of WI during organ procurement lead to the accumulation of damaging levels of succinate during transplantation, despite cooling organs as rapidly as possible. This damage is ameliorated by metabolic inhibitors that prevent succinate accumulation and oxidation. Our findings suggest how WI and CI contribute to transplant outcome and indicate new therapies for improving the quality of transplanted organs.


Subject(s)
Organ Transplantation , Reperfusion Injury/metabolism , Succinic Acid/metabolism , Animals , Humans , Mice , Swine
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