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1.
Cell ; 187(19): 5336-5356.e30, 2024 Sep 19.
Article in English | MEDLINE | ID: mdl-39137777

ABSTRACT

Tumors growing in metabolically challenged environments, such as glioblastoma in the brain, are particularly reliant on crosstalk with their tumor microenvironment (TME) to satisfy their high energetic needs. To study the intricacies of this metabolic interplay, we interrogated the heterogeneity of the glioblastoma TME using single-cell and multi-omics analyses and identified metabolically rewired tumor-associated macrophage (TAM) subpopulations with pro-tumorigenic properties. These TAM subsets, termed lipid-laden macrophages (LLMs) to reflect their cholesterol accumulation, are epigenetically rewired, display immunosuppressive features, and are enriched in the aggressive mesenchymal glioblastoma subtype. Engulfment of cholesterol-rich myelin debris endows subsets of TAMs to acquire an LLM phenotype. Subsequently, LLMs directly transfer myelin-derived lipids to cancer cells in an LXR/Abca1-dependent manner, thereby fueling the heightened metabolic demands of mesenchymal glioblastoma. Our work provides an in-depth understanding of the immune-metabolic interplay during glioblastoma progression, thereby laying a framework to unveil targetable metabolic vulnerabilities in glioblastoma.


Subject(s)
Brain Neoplasms , Glioblastoma , Myelin Sheath , Tumor Microenvironment , Humans , Myelin Sheath/metabolism , Brain Neoplasms/metabolism , Brain Neoplasms/pathology , Glioblastoma/metabolism , Glioblastoma/pathology , Animals , Mice , Tumor-Associated Macrophages/metabolism , Tumor-Associated Macrophages/immunology , Cholesterol/metabolism , Liver X Receptors/metabolism , Macrophages/metabolism , Cell Line, Tumor , ATP Binding Cassette Transporter 1/metabolism , Female , Male
2.
Cell ; 184(14): 3689-3701.e22, 2021 07 08.
Article in English | MEDLINE | ID: mdl-34139175

ABSTRACT

The cholesterol-sensing protein Scap induces cholesterol synthesis by transporting membrane-bound transcription factors called sterol regulatory element-binding proteins (SREBPs) from the endoplasmic reticulum (ER) to the Golgi apparatus for proteolytic activation. Transport requires interaction between Scap's two ER luminal loops (L1 and L7), which flank an intramembrane sterol-sensing domain (SSD). Cholesterol inhibits Scap transport by binding to L1, which triggers Scap's binding to Insig, an ER retention protein. Here we used cryoelectron microscopy (cryo-EM) to elucidate two structures of full-length chicken Scap: (1) a wild-type free of Insigs and (2) mutant Scap bound to chicken Insig without cholesterol. Strikingly, L1 and L7 intertwine tightly to form a globular domain that acts as a luminal platform connecting the SSD to the rest of Scap. In the presence of Insig, this platform undergoes a large rotation accompanied by rearrangement of Scap's transmembrane helices. We postulate that this conformational change halts Scap transport of SREBPs and inhibits cholesterol synthesis.


Subject(s)
Cholesterol/metabolism , Membrane Proteins/chemistry , Membrane Proteins/metabolism , Amino Acid Sequence , Animals , Antibodies/metabolism , Chickens , Membrane Proteins/isolation & purification , Membrane Proteins/ultrastructure , Models, Biological , Models, Molecular , Protein Binding , Protein Domains , Protein Structure, Secondary , Structure-Activity Relationship
3.
Cell ; 179(1): 236-250.e18, 2019 09 19.
Article in English | MEDLINE | ID: mdl-31495571

ABSTRACT

Immunotherapy has revolutionized cancer treatment, yet most patients do not respond. Here, we investigated mechanisms of response by profiling the proteome of clinical samples from advanced stage melanoma patients undergoing either tumor infiltrating lymphocyte (TIL)-based or anti- programmed death 1 (PD1) immunotherapy. Using high-resolution mass spectrometry, we quantified over 10,300 proteins in total and ∼4,500 proteins across most samples in each dataset. Statistical analyses revealed higher oxidative phosphorylation and lipid metabolism in responders than in non-responders in both treatments. To elucidate the effects of the metabolic state on the immune response, we examined melanoma cells upon metabolic perturbations or CRISPR-Cas9 knockouts. These experiments indicated lipid metabolism as a regulatory mechanism that increases melanoma immunogenicity by elevating antigen presentation, thereby increasing sensitivity to T cell mediated killing both in vitro and in vivo. Altogether, our proteomic analyses revealed association between the melanoma metabolic state and the response to immunotherapy, which can be the basis for future improvement of therapeutic response.


Subject(s)
Immunotherapy/methods , Melanoma/metabolism , Melanoma/therapy , Mitochondria/metabolism , Proteomics/methods , Skin Neoplasms/metabolism , Skin Neoplasms/therapy , Adoptive Transfer/methods , Adult , Aged , Aged, 80 and over , Animals , Cell Line, Tumor , Cohort Studies , Female , Humans , Lipid Metabolism/immunology , Lymphocytes, Tumor-Infiltrating/immunology , Male , Mice , Mice, Inbred C57BL , Middle Aged , Programmed Cell Death 1 Receptor/antagonists & inhibitors , T-Lymphocytes/immunology , Treatment Outcome , Young Adult
4.
Cell ; 174(3): 700-715.e18, 2018 07 26.
Article in English | MEDLINE | ID: mdl-29937227

ABSTRACT

The inner nuclear membrane (INM) encases the genome and is fused with the outer nuclear membrane (ONM) to form the nuclear envelope. The ONM is contiguous with the endoplasmic reticulum (ER), the main site of phospholipid synthesis. In contrast to the ER and ONM, evidence for a metabolic activity of the INM has been lacking. Here, we show that the INM is an adaptable membrane territory capable of lipid metabolism. S. cerevisiae cells target enzymes to the INM that can promote lipid storage. Lipid storage involves the synthesis of nuclear lipid droplets from the INM and is characterized by lipid exchange through Seipin-dependent membrane bridges. We identify the genetic circuit for nuclear lipid droplet synthesis and a role of these organelles in regulating this circuit by sequestration of a transcription factor. Our findings suggest a link between INM metabolism and genome regulation and have potential relevance for human lipodystrophy.


Subject(s)
Lipid Droplets/metabolism , Membrane Lipids/metabolism , Nuclear Envelope/metabolism , Cell Nucleus , Diglycerides/metabolism , Endoplasmic Reticulum , Lipid Droplets/physiology , Lipid Metabolism/physiology , Lipids , Membrane Proteins , Phosphatidic Acids/metabolism , Saccharomyces cerevisiae/metabolism
5.
Annu Rev Cell Dev Biol ; 35: 85-109, 2019 10 06.
Article in English | MEDLINE | ID: mdl-31590585

ABSTRACT

Phospholipids are synthesized primarily within the endoplasmic reticulum and are subsequently distributed to various subcellular membranes to maintain the unique lipid composition of specific organelles. As a result, in most cases, the steady-state localization of membrane phospholipids does not match their site of synthesis. This raises the question of how diverse lipid species reach their final membrane destinations and what molecular processes provide the energy to maintain the lipid gradients that exist between various membrane compartments. Recent studies have highlighted the role of inositol phospholipids in the nonvesicular transport of lipids at membrane contact sites. This review attempts to summarize our current understanding of these complex lipid dynamics and highlights their implications for defining future research directions.


Subject(s)
Biological Transport , Endoplasmic Reticulum/metabolism , Lipid Metabolism , Animals , Humans , Lipids/biosynthesis , Lipids/chemistry , Organelles/chemistry , Organelles/metabolism
6.
Immunity ; 56(11): 2492-2507.e10, 2023 Nov 14.
Article in English | MEDLINE | ID: mdl-37890481

ABSTRACT

Lipid metabolism has been associated with the cyclic guanosine monophosphate (GMP)-AMP synthase (cGAS) stimulator of interferon genes (STING) DNA-sensing pathway, but our understanding of how these signals are integrated into a cohesive immunometabolic program is lacking. Here, we have identified liver X receptor (LXR) agonists as potent inhibitors of STING signaling. We show that stimulation of lipid metabolism by LXR agonists specifically suppressed cyclic GMP-AMP (cGAMP)-STING signaling. Moreover, we developed cyclic dinucleotide-conjugated beads to biochemically isolate host effectors for cGAMP inhibition, and we found that LXR ligands stimulated the expression of sphingomyelin phosphodiesterase acid-like 3A (SMPDL3A), which is a 2'3'-cGAMP-degrading enzyme. Results of crystal structures suggest that cGAMP analog induces dimerization of SMPDL3A, and the dimerization is critical for cGAMP degradation. Additionally, we have provided evidence that SMPDL3A cleaves cGAMP to restrict STING signaling in cell culture and mouse models. Our results reveal SMPDL3A as a cGAMP-specific nuclease and demonstrate a mechanism for how LXR-associated lipid metabolism modulates STING-mediated innate immunity.


Subject(s)
Lipid Metabolism , Nucleotidyltransferases , Animals , Mice , Liver X Receptors/metabolism , Nucleotidyltransferases/metabolism , DNA , Nucleotides, Cyclic/metabolism , Immunity, Innate
7.
Cell ; 170(1): 199-212.e20, 2017 Jun 29.
Article in English | MEDLINE | ID: mdl-28666119

ABSTRACT

Type 2 diabetes (T2D) affects Latinos at twice the rate seen in populations of European descent. We recently identified a risk haplotype spanning SLC16A11 that explains ∼20% of the increased T2D prevalence in Mexico. Here, through genetic fine-mapping, we define a set of tightly linked variants likely to contain the causal allele(s). We show that variants on the T2D-associated haplotype have two distinct effects: (1) decreasing SLC16A11 expression in liver and (2) disrupting a key interaction with basigin, thereby reducing cell-surface localization. Both independent mechanisms reduce SLC16A11 function and suggest SLC16A11 is the causal gene at this locus. To gain insight into how SLC16A11 disruption impacts T2D risk, we demonstrate that SLC16A11 is a proton-coupled monocarboxylate transporter and that genetic perturbation of SLC16A11 induces changes in fatty acid and lipid metabolism that are associated with increased T2D risk. Our findings suggest that increasing SLC16A11 function could be therapeutically beneficial for T2D. VIDEO ABSTRACT.


Subject(s)
Diabetes Mellitus, Type 2/metabolism , Monocarboxylic Acid Transporters/genetics , Monocarboxylic Acid Transporters/metabolism , Basigin/metabolism , Cell Membrane/metabolism , Chromosomes, Human, Pair 17/metabolism , Gene Knockdown Techniques , Haplotypes , Hepatocytes/metabolism , Heterozygote , Histone Code , Humans , Liver/metabolism , Models, Molecular , Monocarboxylic Acid Transporters/chemistry
8.
Physiol Rev ; 104(2): 727-764, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-37882731

ABSTRACT

The multifunctional membrane glycoprotein CD36 is expressed in different types of cells and plays a key regulatory role in cellular lipid metabolism, especially in cardiac muscle. CD36 facilitates the cellular uptake of long-chain fatty acids, mediates lipid signaling, and regulates storage and oxidation of lipids in various tissues with active lipid metabolism. CD36 deficiency leads to marked impairments in peripheral lipid metabolism, which consequently impact on the cellular utilization of multiple different fuels because of the integrated nature of metabolism. The functional presence of CD36 at the plasma membrane is regulated by its reversible subcellular recycling from and to endosomes and is under the control of mechanical, hormonal, and nutritional factors. Aberrations in this dynamic role of CD36 are causally associated with various metabolic diseases, in particular insulin resistance, diabetic cardiomyopathy, and cardiac hypertrophy. Recent research in cardiac muscle has disclosed the endosomal proton pump vacuolar-type H+-ATPase (v-ATPase) as a key enzyme regulating subcellular CD36 recycling and being the site of interaction between various substrates to determine cellular substrate preference. In addition, evidence is accumulating that interventions targeting CD36 directly or modulating its subcellular recycling are effective for the treatment of metabolic diseases. In conclusion, subcellular CD36 localization is the major adaptive regulator of cellular uptake and metabolism of long-chain fatty acids and appears a suitable target for metabolic modulation therapy to mend failing hearts.


Subject(s)
Insulin Resistance , Lipid Metabolism , Humans , Myocardium/metabolism , Heart , Fatty Acids/metabolism , CD36 Antigens/metabolism
9.
Mol Cell ; 83(16): 3010-3026.e8, 2023 08 17.
Article in English | MEDLINE | ID: mdl-37595559

ABSTRACT

The mechanistic target of rapamycin complex 1 (mTORC1) is a master regulator of cell growth that stimulates macromolecule synthesis through transcription, RNA processing, and post-translational modification of metabolic enzymes. However, the mechanisms of how mTORC1 orchestrates multiple steps of gene expression programs remain unclear. Here, we identify family with sequence similarity 120A (FAM120A) as a transcription co-activator that couples transcription and splicing of de novo lipid synthesis enzymes downstream of mTORC1-serine/arginine-rich protein kinase 2 (SRPK2) signaling. The mTORC1-activated SRPK2 phosphorylates splicing factor serine/arginine-rich splicing factor 1 (SRSF1), enhancing its binding to FAM120A. FAM120A directly interacts with a lipogenic transcription factor SREBP1 at active promoters, thereby bridging the newly transcribed lipogenic genes from RNA polymerase II to the SRSF1 and U1-70K-containing RNA-splicing machinery. This mTORC1-regulated, multi-protein complex promotes efficient splicing and stability of lipogenic transcripts, resulting in fatty acid synthesis and cancer cell proliferation. These results elucidate FAM120A as a critical transcription co-factor that connects mTORC1-dependent gene regulation programs for anabolic cell growth.


Subject(s)
Arginine , Lipogenesis , Sterol Regulatory Element Binding Protein 1 , Lipogenesis/genetics , Mechanistic Target of Rapamycin Complex 1/genetics , RNA Splicing Factors , Sterol Regulatory Element Binding Protein 1/metabolism , Humans , Sterol Regulatory Element Binding Proteins/metabolism
10.
Mol Cell ; 82(12): 2215-2227, 2022 06 16.
Article in English | MEDLINE | ID: mdl-35390277

ABSTRACT

Ferroptosis, a newly emerged form of regulated necrotic cell death, has been demonstrated to play an important role in multiple diseases including cancer, neurodegeneration, and ischemic organ injury. Mounting evidence also suggests its potential physiological function in tumor suppression and immunity. The execution of ferroptosis is driven by iron-dependent phospholipid peroxidation. As such, the metabolism of biological lipids regulates ferroptosis via controlling phospholipid peroxidation, as well as various other cellular processes relevant to phospholipid peroxidation. In this review, we provide a comprehensive analysis by focusing on how lipid metabolism impacts the initiation, propagation, and termination of phospholipid peroxidation; how multiple signal transduction pathways communicate with ferroptosis via modulating lipid metabolism; and how such intimate cross talk of ferroptosis with lipid metabolism and related signaling pathways can be exploited for the development of rational therapeutic strategies.


Subject(s)
Ferroptosis , Ferroptosis/genetics , Iron/metabolism , Lipid Metabolism , Lipid Peroxidation , Phospholipids
11.
Genes Dev ; 36(21-24): 1129-1144, 2022.
Article in English | MEDLINE | ID: mdl-36522129

ABSTRACT

GATA4 is a transcription factor known for its crucial role in the development of many tissues, including the liver; however, its role in adult liver metabolism is unknown. Here, using high-throughput sequencing technologies, we identified GATA4 as a transcriptional regulator of metabolism in the liver. GATA4 expression is elevated in response to refeeding, and its occupancy is increased at enhancers of genes linked to fatty acid and lipoprotein metabolism. Knocking out GATA4 in the adult liver (Gata4LKO) decreased transcriptional activity at GATA4 binding sites, especially during feeding. Gata4LKO mice have reduced plasma HDL cholesterol and increased liver triglyceride levels. The expression of a panel of GATA4 binding genes involved in hepatic cholesterol export and triglyceride hydrolysis was down-regulated in Gata4LKO mice. We further demonstrate that GATA4 collaborates with LXR nuclear receptors in the liver. GATA4 and LXRs share a number of binding sites, and GATA4 was required for the full transcriptional response to LXR activation. Collectively, these results show that hepatic GATA4 contributes to the transcriptional control of hepatic and systemic lipid homeostasis.


Subject(s)
Liver , Orphan Nuclear Receptors , Mice , Animals , Orphan Nuclear Receptors/metabolism , Liver X Receptors/genetics , Liver X Receptors/metabolism , Liver/metabolism , Homeostasis/genetics , Cholesterol , Triglycerides/metabolism , Lipid Metabolism , Mice, Inbred C57BL , GATA4 Transcription Factor/genetics , GATA4 Transcription Factor/metabolism
12.
Mol Cell ; 81(18): 3708-3730, 2021 09 16.
Article in English | MEDLINE | ID: mdl-34547235

ABSTRACT

Lipids play crucial roles in signal transduction, contribute to the structural integrity of cellular membranes, and regulate energy metabolism. Questions remain as to which lipid species maintain metabolic homeostasis and which disrupt essential cellular functions, leading to metabolic disorders. Here, we discuss recent advances in understanding lipid metabolism with a focus on catabolism, synthesis, and signaling. Technical advances, including functional genomics, metabolomics, lipidomics, lipid-protein interaction maps, and advances in mass spectrometry, have uncovered new ways to prioritize molecular mechanisms mediating lipid function. By reviewing what is known about the distinct effects of specific lipid species in physiological pathways, we provide a framework for understanding newly identified targets regulating lipid homeostasis with implications for ameliorating metabolic diseases.


Subject(s)
Lipid Metabolism/physiology , Metabolic Diseases/metabolism , Signal Transduction/physiology , Animals , Chromatin/metabolism , Disease , Energy Metabolism/physiology , Health , Homeostasis/physiology , Humans , Immunity/physiology , Lipidomics/methods , Lipids/physiology , Metabolic Diseases/physiopathology , Metabolomics/methods , Microbiota/physiology
13.
Genes Dev ; 35(7-8): 449-469, 2021 04 01.
Article in English | MEDLINE | ID: mdl-33861720

ABSTRACT

Our cells are comprised of billions of proteins, lipids, and other small molecules packed into their respective subcellular organelles, with the daunting task of maintaining cellular homeostasis over a lifetime. However, it is becoming increasingly evident that organelles do not act as autonomous discrete units but rather as interconnected hubs that engage in extensive communication through membrane contacts. In the last few years, our understanding of how these contacts coordinate organelle function has redefined our view of the cell. This review aims to present novel findings on the cellular interorganelle communication network and how its dysfunction may contribute to aging and neurodegeneration. The consequences of disturbed interorganellar communication are intimately linked with age-related pathologies. Given that both aging and neurodegenerative diseases are characterized by the concomitant failure of multiple cellular pathways, coordination of organelle communication and function could represent an emerging regulatory mechanism critical for long-term cellular homeostasis. We anticipate that defining the relationships between interorganelle communication, aging, and neurodegeneration will open new avenues for therapeutics.


Subject(s)
Cellular Senescence , Neurodegenerative Diseases/physiopathology , Organelles/pathology , Animals , Humans , Neurodegenerative Diseases/therapy , Organelles/physiology , Signal Transduction
14.
Physiol Rev ; 101(3): 1371-1426, 2021 07 01.
Article in English | MEDLINE | ID: mdl-33599151

ABSTRACT

Cells metabolize nutrients for biosynthetic and bioenergetic needs to fuel growth and proliferation. The uptake of nutrients from the environment and their intracellular metabolism is a highly controlled process that involves cross talk between growth signaling and metabolic pathways. Despite constant fluctuations in nutrient availability and environmental signals, normal cells restore metabolic homeostasis to maintain cellular functions and prevent disease. A central signaling molecule that integrates growth with metabolism is the mechanistic target of rapamycin (mTOR). mTOR is a protein kinase that responds to levels of nutrients and growth signals. mTOR forms two protein complexes, mTORC1, which is sensitive to rapamycin, and mTORC2, which is not directly inhibited by this drug. Rapamycin has facilitated the discovery of the various functions of mTORC1 in metabolism. Genetic models that disrupt either mTORC1 or mTORC2 have expanded our knowledge of their cellular, tissue, as well as systemic functions in metabolism. Nevertheless, our knowledge of the regulation and functions of mTORC2, particularly in metabolism, has lagged behind. Since mTOR is an important target for cancer, aging, and other metabolism-related pathologies, understanding the distinct and overlapping regulation and functions of the two mTOR complexes is vital for the development of more effective therapeutic strategies. This review discusses the key discoveries and recent findings on the regulation and metabolic functions of the mTOR complexes. We highlight findings from cancer models but also discuss other examples of the mTOR-mediated metabolic reprogramming occurring in stem and immune cells, type 2 diabetes/obesity, neurodegenerative disorders, and aging.


Subject(s)
Glycolysis/physiology , Lipid Metabolism/physiology , Mechanistic Target of Rapamycin Complex 1/metabolism , Mechanistic Target of Rapamycin Complex 2/metabolism , Animals , Humans , Signal Transduction/physiology
15.
EMBO J ; 43(7): 1187-1213, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38383863

ABSTRACT

Histone modifications commonly integrate environmental cues with cellular metabolic outputs by affecting gene expression. However, chromatin modifications such as acetylation do not always correlate with transcription, pointing towards an alternative role of histone modifications in cellular metabolism. Using an approach that integrates mass spectrometry-based histone modification mapping and metabolomics with stable isotope tracers, we demonstrate that elevated lipids in acetyltransferase-depleted hepatocytes result from carbon atoms derived from deacetylation of hyperacetylated histone H4 flowing towards fatty acids. Consistently, enhanced lipid synthesis in acetyltransferase-depleted hepatocytes is dependent on histone deacetylases and acetyl-CoA synthetase ACSS2, but not on the substrate specificity of the acetyltransferases. Furthermore, we show that during diet-induced lipid synthesis the levels of hyperacetylated histone H4 decrease in hepatocytes and in mouse liver. In addition, overexpression of acetyltransferases can reverse diet-induced lipogenesis by blocking lipid droplet accumulation and maintaining the levels of hyperacetylated histone H4. Overall, these findings highlight hyperacetylated histones as a metabolite reservoir that can directly contribute carbon to lipid synthesis, constituting a novel function of chromatin in cellular metabolism.


Subject(s)
Carbon , Histones , Animals , Mice , Histones/metabolism , Carbon/metabolism , Lipogenesis , Chromatin , Acetyltransferases/metabolism , Lipids , Acetylation , Histone Acetyltransferases/genetics , Histone Acetyltransferases/metabolism
16.
Immunity ; 50(2): 446-461.e9, 2019 02 19.
Article in English | MEDLINE | ID: mdl-30709742

ABSTRACT

Production of interleukin-17 (IL-17) and IL-22 by T helper 17 (Th17) cells and group 3 innate lymphoid cells (ILC3s) in response to the gut microbiota ensures maintenance of intestinal barrier function. Here, we examined the mechanisms whereby the immune system detects microbiota in the steady state. A Syk-kinase-coupled signaling pathway in dendritic cells (DCs) was critical for commensal-dependent production of IL-17 and IL-22 by CD4+ T cells. The Syk-coupled C-type lectin receptor Mincle detected mucosal-resident commensals in the Peyer's patches (PPs), triggered IL-6 and IL-23p19 expression, and thereby regulated function of intestinal Th17- and IL-17-secreting ILCs. Mice deficient in Mincle or with selective depletion of Syk in CD11c+ cells had impaired production of intestinal RegIIIγ and IgA and increased systemic translocation of gut microbiota. Consequently, Mincle deficiency led to liver inflammation and deregulated lipid metabolism. Thus, sensing of commensals by Mincle and Syk signaling in CD11c+ cells reinforces intestinal immune barrier and promotes host-microbiota mutualism, preventing systemic inflammation.


Subject(s)
Dendritic Cells/immunology , Gastrointestinal Microbiome/immunology , Interleukin-17/immunology , Interleukins/immunology , Lectins, C-Type/immunology , Membrane Proteins/immunology , Syk Kinase/immunology , Animals , Dendritic Cells/metabolism , Gastrointestinal Microbiome/physiology , Humans , Interleukin-17/metabolism , Interleukins/metabolism , Intestinal Mucosa/immunology , Intestinal Mucosa/metabolism , Intestinal Mucosa/microbiology , Lectins, C-Type/genetics , Lectins, C-Type/metabolism , Membrane Proteins/genetics , Membrane Proteins/metabolism , Mice, Inbred C57BL , Mice, Knockout , Peyer's Patches/immunology , Peyer's Patches/metabolism , Peyer's Patches/microbiology , Signal Transduction/immunology , Syk Kinase/genetics , Syk Kinase/metabolism , Th17 Cells/immunology , Th17 Cells/metabolism , Interleukin-22
17.
Mol Cell ; 79(1): 30-42.e4, 2020 07 02.
Article in English | MEDLINE | ID: mdl-32473093

ABSTRACT

Autophagy is activated by prolonged fasting but cannot overcome the ensuing hepatic lipid overload, resulting in fatty liver. Here, we describe a peroxisome-lysosome metabolic link that restricts autophagic degradation of lipids. Acyl-CoA oxidase 1 (Acox1), the enzyme that catalyzes the first step in peroxisomal ß-oxidation, is enriched in liver and further increases with fasting or high-fat diet (HFD). Liver-specific Acox1 knockout (Acox1-LKO) protected mice against hepatic steatosis caused by starvation or HFD due to induction of autophagic degradation of lipid droplets. Hepatic Acox1 deficiency markedly lowered total cytosolic acetyl-CoA levels, which led to decreased Raptor acetylation and reduced lysosomal localization of mTOR, resulting in impaired activation of mTORC1, a central regulator of autophagy. Dichloroacetic acid treatment elevated acetyl-CoA levels, restored mTORC1 activation, inhibited autophagy, and increased hepatic triglycerides in Acox1-LKO mice. These results identify peroxisome-derived acetyl-CoA as a key metabolic regulator of autophagy that controls hepatic lipid homeostasis.


Subject(s)
Acetyl Coenzyme A/metabolism , Acyl-CoA Oxidase/physiology , Autophagy , Fatty Acids/chemistry , Fatty Liver/pathology , Mechanistic Target of Rapamycin Complex 1/metabolism , Peroxisomes/chemistry , Acetylation , Animals , Autophagy-Related Protein 5/physiology , Diet, High-Fat/adverse effects , Fasting , Fatty Liver/etiology , Fatty Liver/metabolism , Female , Male , Mechanistic Target of Rapamycin Complex 1/genetics , Mice , Mice, Knockout , Mitochondria/metabolism , Oxidation-Reduction , Peroxisomes/metabolism , Regulatory-Associated Protein of mTOR/genetics , Regulatory-Associated Protein of mTOR/metabolism
18.
Genes Dev ; 34(11-12): 751-766, 2020 06 01.
Article in English | MEDLINE | ID: mdl-32273287

ABSTRACT

Human cancers with activating RAS mutations are typically highly aggressive and treatment-refractory, yet RAS mutation itself is insufficient for tumorigenesis, due in part to profound metabolic stress induced by RAS activation. Here we show that loss of REDD1, a stress-induced metabolic regulator, is sufficient to reprogram lipid metabolism and drive progression of RAS mutant cancers. Redd1 deletion in genetically engineered mouse models (GEMMs) of KRAS-dependent pancreatic and lung adenocarcinomas converts preneoplastic lesions into invasive and metastatic carcinomas. Metabolic profiling reveals that REDD1-deficient/RAS mutant cells exhibit enhanced uptake of lysophospholipids and lipid storage, coupled to augmented fatty acid oxidation that sustains both ATP levels and ROS-detoxifying NADPH. Mechanistically, REDD1 loss triggers HIF-dependent activation of a lipid storage pathway involving PPARγ and the prometastatic factor CD36. Correspondingly, decreased REDD1 expression and a signature of REDD1 loss predict poor outcomes selectively in RAS mutant but not RAS wild-type human lung and pancreas carcinomas. Collectively, our findings reveal the REDD1-mediated stress response as a novel tumor suppressor whose loss defines a RAS mutant tumor subset characterized by reprogramming of lipid metabolism, invasive and metastatic progression, and poor prognosis. This work thus provides new mechanistic and clinically relevant insights into the phenotypic heterogeneity and metabolic rewiring that underlies these common cancers.


Subject(s)
Lipid Metabolism/genetics , Transcription Factors/genetics , Transcription Factors/metabolism , ras Proteins/genetics , Animals , Cell Line, Tumor , Disease Progression , Fatty Acids/metabolism , HEK293 Cells , Humans , Mice , Mice, SCID , Mutation , Oxidation-Reduction
19.
Genes Dev ; 34(7-8): 526-543, 2020 04 01.
Article in English | MEDLINE | ID: mdl-32079652

ABSTRACT

MDM2 and MDMX, negative regulators of the tumor suppressor p53, can work separately and as a heteromeric complex to restrain p53's functions. MDM2 also has pro-oncogenic roles in cells, tissues, and animals that are independent of p53. There is less information available about p53-independent roles of MDMX or the MDM2-MDMX complex. We found that MDM2 and MDMX facilitate ferroptosis in cells with or without p53. Using small molecules, RNA interference reagents, and mutant forms of MDMX, we found that MDM2 and MDMX, likely working in part as a complex, normally facilitate ferroptotic death. We observed that MDM2 and MDMX alter the lipid profile of cells to favor ferroptosis. Inhibition of MDM2 or MDMX leads to increased levels of FSP1 protein and a consequent increase in the levels of coenzyme Q10, an endogenous lipophilic antioxidant. This suggests that MDM2 and MDMX normally prevent cells from mounting an adequate defense against lipid peroxidation and thereby promote ferroptosis. Moreover, we found that PPARα activity is essential for MDM2 and MDMX to promote ferroptosis, suggesting that the MDM2-MDMX complex regulates lipids through altering PPARα activity. These findings reveal the complexity of cellular responses to MDM2 and MDMX and suggest that MDM2-MDMX inhibition might be useful for preventing degenerative diseases involving ferroptosis. Furthermore, they suggest that MDM2/MDMX amplification may predict sensitivity of some cancers to ferroptosis inducers.


Subject(s)
Cell Cycle Proteins/metabolism , Ferroptosis/genetics , Lipid Metabolism/genetics , PPAR alpha/metabolism , Proto-Oncogene Proteins c-mdm2/metabolism , Proto-Oncogene Proteins/metabolism , Animals , Brain/metabolism , Brain/physiopathology , Cell Cycle Proteins/genetics , Glioblastoma/physiopathology , HCT116 Cells , Humans , Mutation , Proto-Oncogene Proteins/genetics , Proto-Oncogene Proteins c-mdm2/antagonists & inhibitors , Proto-Oncogene Proteins c-mdm2/genetics , RNA Interference , Rats , Tumor Suppressor Protein p53/metabolism , Ubiquinone/analogs & derivatives , Ubiquinone/metabolism
20.
Immunol Rev ; 2024 Sep 27.
Article in English | MEDLINE | ID: mdl-39327931

ABSTRACT

Inflammasomes are multiprotein complexes that play a crucial role in regulating immune responses by governing the activation of Caspase-1, the secretion of pro-inflammatory cytokines, and the induction of inflammatory cell death, pyroptosis. The inflammasomes are pivotal in effective host defense against a range of pathogens. Yet, overt activation of inflammasome signaling can be detrimental. The most well-studied NLRP3 inflammasome has the ability to detect a variety of stimuli including pathogen-associated molecular patterns, environmental irritants, and endogenous stimuli released from dying cells. Additionally, NLRP3 acts as a key sensor of cellular homeostasis and can be activated by disturbances in diverse metabolic pathways. Consequently, NLRP3 is considered a key player linking metabolic dysregulation to numerous inflammatory disorders such as gout, diabetes, and atherosclerosis. Recently, compelling studies have highlighted a connection between lipids and the regulation of NLRP3 inflammasome. Lipids are integral to cellular processes that serve not only in maintaining the structural integrity and subcellular compartmentalization, but also in contributing to physiological equilibrium. Certain lipid species are known to define NLRP3 subcellular localization, therefore directly influencing the site of inflammasome assembly and activation. For instance, phosphatidylinositol 4-phosphate plays a crucial role in NLRP3 localization to the trans Golgi network. Moreover, new evidence has demonstrated the roles of lipid biosynthesis and trafficking in activation of the NLRP3 inflammasome. This review summarizes and discusses these emerging and varied roles of lipid metabolism in inflammasome activation. A deeper understanding of lipid-inflammasome interactions may open new avenues for therapeutic interventions to prevent or treat chronic inflammatory and autoimmune conditions.

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