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1.
Immunity ; 2024 Jun 19.
Article in English | MEDLINE | ID: mdl-38906145

ABSTRACT

Tissues are exposed to diverse inflammatory challenges that shape future inflammatory responses. While cellular metabolism regulates immune function, how metabolism programs and stabilizes immune states within tissues and tunes susceptibility to inflammation is poorly understood. Here, we describe an innate immune metabolic switch that programs long-term intestinal tolerance. Intestinal interleukin-18 (IL-18) stimulation elicited tolerogenic macrophages by preventing their proinflammatory glycolytic polarization via metabolic reprogramming to fatty acid oxidation (FAO). FAO reprogramming was triggered by IL-18 activation of SLC12A3 (NCC), leading to sodium influx, release of mitochondrial DNA, and activation of stimulator of interferon genes (STING). FAO was maintained in macrophages by a bistable switch that encoded memory of IL-18 stimulation and by intercellular positive feedback that sustained the production of macrophage-derived 2'3'-cyclic GMP-AMP (cGAMP) and epithelial-derived IL-18. Thus, a tissue-reinforced metabolic switch encodes durable immune tolerance in the gut and may enable reconstructing compromised immune tolerance in chronic inflammation.

2.
Cell ; 174(4): 831-842.e12, 2018 08 09.
Article in English | MEDLINE | ID: mdl-30057115

ABSTRACT

Overnutrition disrupts circadian metabolic rhythms by mechanisms that are not well understood. Here, we show that diet-induced obesity (DIO) causes massive remodeling of circadian enhancer activity in mouse liver, triggering synchronous high-amplitude circadian rhythms of both fatty acid (FA) synthesis and oxidation. SREBP expression was rhythmically induced by DIO, leading to circadian FA synthesis and, surprisingly, FA oxidation (FAO). DIO similarly caused a high-amplitude circadian rhythm of PPARα, which was also required for FAO. Provision of a pharmacological activator of PPARα abrogated the requirement of SREBP for FAO (but not FA synthesis), suggesting that SREBP indirectly controls FAO via production of endogenous PPARα ligands. The high-amplitude rhythm of PPARα imparted time-of-day-dependent responsiveness to lipid-lowering drugs. Thus, acquisition of rhythmicity for non-core clock components PPARα and SREBP1 remodels metabolic gene transcription in response to overnutrition and enables a chronopharmacological approach to metabolic disorders.


Subject(s)
Circadian Rhythm , Diet/adverse effects , Liver/metabolism , Obesity/metabolism , PPAR alpha/metabolism , Sterol Regulatory Element Binding Protein 1/metabolism , Animals , Gene Expression Regulation , Lipid Metabolism , Lipogenesis , Liver/drug effects , Male , Mice , Mice, Inbred C57BL , Obesity/etiology , Obesity/pathology , PPAR alpha/genetics , Sterol Regulatory Element Binding Protein 1/genetics
3.
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
4.
Immunity ; 51(2): 285-297.e5, 2019 08 20.
Article in English | MEDLINE | ID: mdl-31272808

ABSTRACT

Interactions with the microbiota influence many aspects of immunity, including immune cell development, differentiation, and function. Here, we examined the impact of the microbiota on CD8+ T cell memory. Antigen-activated CD8+ T cells transferred into germ-free mice failed to transition into long-lived memory cells and had transcriptional impairments in core genes associated with oxidative metabolism. The microbiota-derived short-chain fatty acid (SCFA) butyrate promoted cellular metabolism, enhanced memory potential of activated CD8+ T cells, and SCFAs were required for optimal recall responses upon antigen re-encounter. Mechanistic experiments revealed that butyrate uncoupled the tricarboxylic acid cycle from glycolytic input in CD8+ T cells, which allowed preferential fueling of oxidative phosphorylation through sustained glutamine utilization and fatty acid catabolism. Our findings reveal a role for the microbiota in promoting CD8+ T cell long-term survival as memory cells and suggest that microbial metabolites guide the metabolic rewiring of activated CD8+ T cells to enable this transition.


Subject(s)
Butyrates/metabolism , CD8-Positive T-Lymphocytes/immunology , Fatty Acids, Volatile/metabolism , Immunologic Memory , Microbiota/immunology , Adoptive Transfer , Animals , Antigens/immunology , Cell Differentiation , Cells, Cultured , Glycolysis , Humans , Lymphocyte Activation , Mice , Mice, Inbred C57BL , Mice, Knockout , Oxidation-Reduction
5.
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
6.
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
7.
EMBO J ; 42(11): e111901, 2023 06 01.
Article in English | MEDLINE | ID: mdl-36917141

ABSTRACT

Changes in mitochondrial morphology are associated with nutrient utilization, but the precise causalities and the underlying mechanisms remain unknown. Here, using cellular models representing a wide variety of mitochondrial shapes, we show a strong linear correlation between mitochondrial fragmentation and increased fatty acid oxidation (FAO) rates. Forced mitochondrial elongation following MFN2 over-expression or DRP1 depletion diminishes FAO, while forced fragmentation upon knockdown or knockout of MFN2 augments FAO as evident from respirometry and metabolic tracing. Remarkably, the genetic induction of fragmentation phenocopies distinct cell type-specific biological functions of enhanced FAO. These include stimulation of gluconeogenesis in hepatocytes, induction of insulin secretion in islet ß-cells exposed to fatty acids, and survival of FAO-dependent lymphoma subtypes. We find that fragmentation increases long-chain but not short-chain FAO, identifying carnitine O-palmitoyltransferase 1 (CPT1) as the downstream effector of mitochondrial morphology in regulation of FAO. Mechanistically, we determined that fragmentation reduces malonyl-CoA inhibition of CPT1, while elongation increases CPT1 sensitivity to malonyl-CoA inhibition. Overall, these findings underscore a physiologic role for fragmentation as a mechanism whereby cellular fuel preference and FAO capacity are determined.


Subject(s)
Fatty Acids , Malonyl Coenzyme A , Fatty Acids/metabolism , Malonyl Coenzyme A/metabolism , Malonyl Coenzyme A/pharmacology , Carnitine O-Palmitoyltransferase/genetics , Carnitine O-Palmitoyltransferase/metabolism , Oxidation-Reduction , Mitochondria/metabolism
8.
Immunity ; 48(1): 147-160.e7, 2018 01 16.
Article in English | MEDLINE | ID: mdl-29343435

ABSTRACT

Despite recent advances, many cancers remain refractory to available immunotherapeutic strategies. Emerging evidence indicates that the tolerization of local dendritic cells (DCs) within the tumor microenvironment promotes immune evasion. Here, we have described a mechanism by which melanomas establish a site of immune privilege via a paracrine Wnt5a-ß-catenin-peroxisome proliferator-activated receptor-γ (PPAR-γ) signaling pathway that drives fatty acid oxidation (FAO) in DCs by upregulating the expression of the carnitine palmitoyltransferase-1A (CPT1A) fatty acid transporter. This FAO shift increased the protoporphyrin IX prosthetic group of indoleamine 2,3-dioxgenase-1 (IDO) while suppressing interleukin(IL)-6 and IL-12 cytokine expression, culminating in enhanced IDO activity and the generation of regulatory T cells. We demonstrated that blockade of this pathway augmented anti-melanoma immunity, enhanced the activity of anti-PD-1 antibody immunotherapy, and suppressed disease progression in a transgenic melanoma model. This work implicates a role for tumor-mediated metabolic reprogramming of local DCs in immune evasion and immunotherapy resistance.


Subject(s)
Dendritic Cells/metabolism , Melanoma/immunology , Wnt-5a Protein/metabolism , beta Catenin/metabolism , Animals , Cell Line , Dendritic Cells/immunology , Enzyme-Linked Immunosorbent Assay , Fatty Acids/metabolism , Female , Flow Cytometry , Immunoblotting , Male , Melanoma/metabolism , Mice , Mice, Transgenic , PPAR gamma/metabolism , Paracrine Communication/physiology , Polymerase Chain Reaction , Signal Transduction/physiology
9.
Immunity ; 47(3): 466-480.e5, 2017 09 19.
Article in English | MEDLINE | ID: mdl-28916263

ABSTRACT

Neutrophils are critical and short-lived mediators of innate immunity that require constant replenishment. Their differentiation in the bone marrow requires extensive cytoplasmic and nuclear remodeling, but the processes governing these energy-consuming changes are unknown. While previous studies show that autophagy is required for differentiation of other blood cell lineages, its function during granulopoiesis has remained elusive. Here, we have shown that metabolism and autophagy are developmentally programmed and essential for neutrophil differentiation in vivo. Atg7-deficient neutrophil precursors had increased glycolytic activity but impaired mitochondrial respiration, decreased ATP production, and accumulated lipid droplets. Inhibiting autophagy-mediated lipid degradation or fatty acid oxidation alone was sufficient to cause defective differentiation, while administration of fatty acids or pyruvate for mitochondrial respiration rescued differentiation in autophagy-deficient neutrophil precursors. Together, we show that autophagy-mediated lipolysis provides free fatty acids to support a mitochondrial respiration pathway essential to neutrophil differentiation.


Subject(s)
Autophagy , Cell Differentiation , Fatty Acids, Nonesterified/metabolism , Neutrophils/cytology , Neutrophils/metabolism , Adaptation, Biological , Animals , Cluster Analysis , Energy Metabolism , Gene Expression Profiling , Gene Knockout Techniques , Glucose/metabolism , Lipid Metabolism , Lipolysis , Myelopoiesis , Neutrophils/ultrastructure , Oxidation-Reduction , Pyruvic Acid/metabolism
10.
Mol Cell ; 69(4): 689-698.e7, 2018 02 15.
Article in English | MEDLINE | ID: mdl-29429925

ABSTRACT

Endothelial-to-mesenchymal transition (EndoMT) is a cellular process often initiated by the transforming growth factor ß (TGF-ß) family of ligands. Although required for normal heart valve development, deregulated EndoMT is linked to a wide range of pathological conditions. Here, we demonstrate that endothelial fatty acid oxidation (FAO) is a critical in vitro and in vivo regulator of EndoMT. We further show that this FAO-dependent metabolic regulation of EndoMT occurs through alterations in intracellular acetyl-CoA levels. Disruption of FAO via conditional deletion of endothelial carnitine palmitoyltransferase II (Cpt2E-KO) augments the magnitude of embryonic EndoMT, resulting in thickening of cardiac valves. Consistent with the known pathological effects of EndoMT, adult Cpt2E-KO mice demonstrate increased permeability in multiple vascular beds. Taken together, these results demonstrate that endothelial FAO is required to maintain endothelial cell fate and that therapeutic manipulation of endothelial metabolism could provide the basis for treating a growing number of EndoMT-linked pathological conditions.


Subject(s)
Carnitine O-Palmitoyltransferase/physiology , Endothelium, Vascular/metabolism , Epithelial-Mesenchymal Transition , Fatty Acids/chemistry , 3-Hydroxyacyl CoA Dehydrogenases , Acetyl Coenzyme A/metabolism , Acetyl-CoA C-Acyltransferase , Animals , Carbon-Carbon Double Bond Isomerases , Cells, Cultured , Endothelium, Vascular/cytology , Enoyl-CoA Hydratase , Female , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Oxidation-Reduction , Racemases and Epimerases , Signal Transduction , Transforming Growth Factor beta/metabolism
11.
Mol Cell ; 69(3): 480-492.e7, 2018 02 01.
Article in English | MEDLINE | ID: mdl-29395065

ABSTRACT

Fatty acid oxidation (FAO) is crucial for cells to overcome metabolic stress by providing ATP and NADPH. However, the mechanism by which FAO is regulated in tumors remains elusive. Here we show that Nur77 is required for the metabolic adaptation of melanoma cells by protecting FAO. Glucose deprivation activates ERK2 to phosphorylate and induce Nur77 translocation to the mitochondria, where Nur77 binds to TPß, a rate-limiting enzyme in FAO. Although TPß activity is normally inhibited by oxidation under glucose deprivation, the Nur77-TPß association results in Nur77 self-sacrifice to protect TPß from oxidation. FAO is therefore able to maintain NADPH and ATP levels and prevent ROS increase and cell death. The Nur77-TPß interaction further promotes melanoma metastasis by facilitating circulating melanoma cell survival. This study demonstrates a novel regulatory function of Nur77 with linkage of the FAO-NADPH-ROS pathway during metabolic stress, suggesting Nur77 as a potential therapeutic target in melanoma.


Subject(s)
Melanoma/metabolism , Nuclear Receptor Subfamily 4, Group A, Member 1/metabolism , Animals , Cell Survival/physiology , Fatty Acids/metabolism , Glucose/metabolism , HEK293 Cells , Humans , Lipid Metabolism , Melanoma/pathology , Mice , Mice, Inbred BALB C , Mice, Nude , Mitochondria/metabolism , Mitochondrial Trifunctional Protein, beta Subunit/metabolism , Mitogen-Activated Protein Kinase 1/metabolism , Oxidative Stress/physiology , Reactive Oxygen Species/metabolism
12.
Proc Natl Acad Sci U S A ; 120(6): e2219630120, 2023 02 07.
Article in English | MEDLINE | ID: mdl-36716379

ABSTRACT

Endothelial progenitor cells (EPCs) play an important role in vascular repair and re-endothelialization after vessel injury. EPCs in blood vessels are subjected to cyclic stretch (CS) due to the pulsatile pressure, but the role of CS in metabolic reprogramming of EPC, particularly its vascular homing and repair, is largely unknown. In the current study, physiological CS applied to EPCs at a magnitude of 10% and a frequency of 1 Hz significantly promoted their vascular adhesion and endothelial differentiation. CS enhanced mitochondrial elongation and oxidative phosphorylation (OXPHOS), as well as adenosine triphosphate production. Metabolomic study and Ultra-high performance liquid chromatography-mass spectrometry assay revealed that CS significantly decreased the content of long-chain fatty acids (LCFAs) and markedly induced long-chain fatty acyl-CoA synthetase 1 (Acsl1), which in turn facilitated the catabolism of LCFAs in mitochondria via fatty acid ß-oxidation and OXPHOS. In a rat carotid artery injury model, transplantation of EPCs overexpressing Acsl1 enhanced the adhesion and re-endothelialization of EPCs in vivo. MRI and vascular morphology staining showed that Acsl1 overexpression in EPCs improved vascular repair and inhibited vascular stenosis. This study reveals a mechanotransduction mechanism by which physiological CS enhances endothelial repair via EPC patency.


Subject(s)
Endothelial Progenitor Cells , Rats , Animals , Mechanotransduction, Cellular , Cell Differentiation , Mitochondria/metabolism , Fatty Acids/metabolism
13.
Proc Natl Acad Sci U S A ; 120(41): e2221653120, 2023 10 10.
Article in English | MEDLINE | ID: mdl-37788309

ABSTRACT

Fatty acid oxidation (FAO) fuels many cancers. However, knowledge of pathways that drive FAO in cancer remains unclear. Here, we revealed that valosin-containing protein (VCP) upregulates FAO to promote colorectal cancer growth. Mechanistically, nuclear VCP binds to histone deacetylase 1 (HDAC1) and facilitates its degradation, thus promoting the transcription of FAO genes, including the rate-limiting enzyme carnitine palmitoyltransferase 1A (CPT1A). FAO is an alternative fuel for cancer cells in environments exhibiting limited glucose availability. We observed that a VCP inhibitor blocked the upregulation of FAO activity and CPT1A expression triggered by metformin in colorectal cancer (CRC) cells. Combined VCP inhibitor and metformin prove more effective than either agent alone in culture and in vivo. Our study illustrates the molecular mechanism underlying the regulation of FAO by nuclear VCP and demonstrates the potential therapeutic utility of VCP inhibitor and metformin combination treatment for colorectal cancer.


Subject(s)
Colorectal Neoplasms , Metformin , Humans , Valosin Containing Protein/genetics , Valosin Containing Protein/metabolism , Neoplastic Processes , Colorectal Neoplasms/drug therapy , Colorectal Neoplasms/genetics , Colorectal Neoplasms/metabolism , Fatty Acids/metabolism , Metformin/pharmacology , Carnitine O-Palmitoyltransferase/metabolism , Oxidation-Reduction
14.
Proc Natl Acad Sci U S A ; 120(39): e2302878120, 2023 09 26.
Article in English | MEDLINE | ID: mdl-37722058

ABSTRACT

Although tumor-intrinsic fatty acid ß-oxidation (FAO) is implicated in multiple aspects of tumorigenesis and progression, the impact of this metabolic pathway on cancer cell susceptibility to immunotherapy remains unknown. Here, we report that cytotoxicity of killer T cells induces activation of FAO and upregulation of carnitine palmitoyltransferase 1A (CPT1A), the rate-limiting enzyme of FAO in cancer cells. The repression of CPT1A activity or expression renders cancer cells more susceptible to destruction by cytotoxic T lymphocytes. Our mechanistic studies reveal that FAO deficiency abrogates the prosurvival signaling in cancer cells under immune cytolytic stress. Furthermore, we identify T cell-derived IFN-γ as a major factor responsible for induction of CPT1A and FAO in an AMPK-dependent manner, indicating a dynamic interplay between immune effector cells and tumor targets. While cancer growth in the absence of CPT1A remains largely unaffected, established tumors upon FAO inhibition become significantly more responsive to cellular immunotherapies including chimeric antigen receptor-engineered human T cells. Together, these findings uncover a mode of cancer resistance and immune editing that can facilitate immune escape and limit the benefits of immunotherapies.


Subject(s)
Carnitine O-Palmitoyltransferase , Neoplasms , Humans , Carnitine O-Palmitoyltransferase/genetics , Cytotoxicity, Immunologic , Fatty Acids , Lipid Metabolism , Neoplasms/therapy , T-Lymphocytes, Cytotoxic
15.
Annu Rev Physiol ; 84: 209-227, 2022 02 10.
Article in English | MEDLINE | ID: mdl-35143330

ABSTRACT

Noncommunicable diseases are chronic diseases that contribute to death worldwide, but these diseases can be prevented and mitigated with regular exercise. Exercise activates signaling molecules and the transcriptional network to promote physiological adaptations, such as fiber type transformation, angiogenesis, and mitochondrial biogenesis. AMP-activated protein kinase (AMPK) is a master regulator that senses the energy state, promotes metabolism for glucose and fatty acid utilization, and mediates beneficial cellular adaptations in many vital tissues and organs. This review focuses on the current, integrative understanding of the role of exercise-induced activation of AMPK in the regulation of system metabolism and promotion of health benefits.


Subject(s)
AMP-Activated Protein Kinases , Exercise , AMP-Activated Protein Kinases/metabolism , Adaptation, Physiological/physiology , Energy Metabolism/physiology , Exercise/physiology , Glucose/metabolism , Humans , Muscle, Skeletal/metabolism , Signal Transduction
16.
J Biol Chem ; 300(7): 107426, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38823637

ABSTRACT

Skeletal muscle is heterogeneous tissue, composed of fast-twitch fibers primarily relying on glycolysis and slow-twitch fibers primarily relying on oxidative phosphorylation. The relative expression and balance of glycolysis and oxidative phosphorylation in skeletal muscle are crucial for muscle growth and skeletal muscle metabolism. Here, we employed multi-omics approaches including transcriptomics, proteomics, phosphoproteomics, and metabolomics to unravel the role of circMYLK4, a differentially expressed circRNA in fast and slow-twitch muscle fibers, in muscle fiber metabolism. We discovered that circMYLK4 inhibits glycolysis and promotes mitochondrial oxidative phosphorylation. Mechanistically, circMYLK4 interacts with the voltage-gated calcium channel auxiliary subunit CACNA2D2, leading to the inhibition of Ca2+ release from the sarcoplasmic reticulum. The decrease in cytoplasmic Ca2+ concentration inhibits the expression of key enzymes, PHKB and PHKG1, involved in glycogen breakdown, thereby suppressing glycolysis. On the other hand, the increased fatty acid ß-oxidation enhances the tricarboxylic acid cycle and mitochondrial oxidative phosphorylation. In general, circMYLK4 plays an indispensable role in maintaining the metabolic homeostasis of skeletal muscle.


Subject(s)
Glycolysis , Oxidative Phosphorylation , Animals , Mice , Energy Metabolism , Calcium Channels/metabolism , Calcium Channels/genetics , Muscle, Skeletal/metabolism , Humans , Calcium/metabolism , Male
17.
J Biol Chem ; 300(4): 107159, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38479602

ABSTRACT

In the present study, we examined the mitochondrial hydrogen peroxide (mH2O2) generating capacity of α-ketoglutarate dehydrogenase (KGDH) and compared it to components of the electron transport chain using liver mitochondria isolated from male and female C57BL6N mice. We show for the first time there are some sex dimorphisms in the production of mH2O2 by electron transport chain complexes I and III when mitochondria are fueled with different substrates. However, in our investigations into these sex effects, we made the unexpected and compelling discovery that 1) KGDH serves as a major mH2O2 supplier in male and female liver mitochondria and 2) KGDH can form mH2O2 when liver mitochondria are energized with fatty acids but only when malate is used to prime the Krebs cycle. Surprisingly, 2-keto-3-methylvaleric acid (KMV), a site-specific inhibitor for KGDH, nearly abolished mH2O2 generation in both male and female liver mitochondria oxidizing palmitoyl-carnitine. KMV inhibited mH2O2 production in liver mitochondria from male and female mice oxidizing myristoyl-, octanoyl-, or butyryl-carnitine as well. S1QEL 1.1 (S1) and S3QEL 2 (S3), compounds that inhibit reactive oxygen species generation by complexes I and III, respectively, without interfering with OxPhos and respiration, had a negligible effect on the rate of mH2O2 production when pyruvate or acyl-carnitines were used as fuels. However, inclusion of KMV in reaction mixtures containing S1 and/or S3 almost abolished mH2O2 generation. Together, our findings suggest KGDH is the main mH2O2 generator in liver mitochondria, even when fatty acids are used as fuel.


Subject(s)
Fatty Acids , Hydrogen Peroxide , Ketoglutarate Dehydrogenase Complex , Mitochondria, Liver , Animals , Female , Male , Mice , Electron Transport Complex I/metabolism , Electron Transport Complex III/metabolism , Fatty Acids/metabolism , Hydrogen Peroxide/metabolism , Ketoglutarate Dehydrogenase Complex/metabolism , Mice, Inbred C57BL , Mitochondria, Liver/metabolism , Oxidation-Reduction
18.
J Biol Chem ; 300(1): 105470, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38118236

ABSTRACT

The prevailing notion that reduced cofactors NADH and FADH2 transfer electrons from the tricarboxylic acid cycle to the mitochondrial electron transfer system creates ambiguities regarding respiratory Complex II (CII). CII is the only membrane-bound enzyme in the tricarboxylic acid cycle and is part of the electron transfer system of the mitochondrial inner membrane feeding electrons into the coenzyme Q-junction. The succinate dehydrogenase subunit SDHA of CII oxidizes succinate and reduces the covalently bound prosthetic group FAD to FADH2 in the canonical forward tricarboxylic acid cycle. However, several graphical representations of the electron transfer system depict FADH2 in the mitochondrial matrix as a substrate to be oxidized by CII. This leads to the false conclusion that FADH2 from the ß-oxidation cycle in fatty acid oxidation feeds electrons into CII. In reality, dehydrogenases of fatty acid oxidation channel electrons to the Q-junction but not through CII. The ambiguities surrounding Complex II in the literature and educational resources call for quality control, to secure scientific standards in current communications of bioenergetics, and ultimately support adequate clinical applications. This review aims to raise awareness of the inherent ambiguity crisis, complementing efforts to address the well-acknowledged issues of credibility and reproducibility.


Subject(s)
Electron Transport Complex II , Electrons , Fatty Acids , Flavin-Adenine Dinucleotide , Succinate Dehydrogenase , Electron Transport , Fatty Acids/chemistry , Fatty Acids/metabolism , Flavin-Adenine Dinucleotide/analogs & derivatives , Flavin-Adenine Dinucleotide/metabolism , Oxidation-Reduction , Reproducibility of Results , Succinate Dehydrogenase/metabolism , Citric Acid Cycle , Mitochondria/metabolism , Ubiquinone/metabolism , Succinic Acid/metabolism , Electron Transport Complex II/metabolism , Energy Metabolism
19.
J Biol Chem ; 300(5): 107291, 2024 May.
Article in English | MEDLINE | ID: mdl-38636661

ABSTRACT

Mutations in the adiponectin receptor 1 gene (AdipoR1) lead to retinitis pigmentosa and are associated with age-related macular degeneration. This study explores the effects of AdipoR1 gene deficiency in mice, revealing a striking decline in ω3 polyunsaturated fatty acids (PUFA), an increase in ω6 fatty acids, and elevated ceramides in the retina. The AdipoR1 deficiency impairs peroxisome proliferator-activated receptor α signaling, which is crucial for FA metabolism, particularly affecting proteins associated with FA transport and oxidation in the retina and retinal pigmented epithelium. Our lipidomic and proteomic analyses indicate changes that could affect membrane composition and viscosity through altered ω3 PUFA transport and synthesis, suggesting a potential influence of AdipoR1 on these properties. Furthermore, we noted a reduction in the Bardet-Biedl syndrome proteins, which are crucial for forming and maintaining photoreceptor outer segments that are PUFA-enriched ciliary structures. Diminution in Bardet-Biedl syndrome-proteins content combined with our electron microscopic observations raises the possibility that AdipoR1 deficiency might impair ciliary function. Treatment with inhibitors of ceramide synthesis led to substantial elevation of ω3 LC-PUFAs, alleviating photoreceptor degeneration and improving retinal function. These results serve as the proof of concept for a ceramide-targeted strategy to treat retinopathies linked to PUFA deficiency, including age-related macular degeneration.


Subject(s)
Ceramides , Receptors, Adiponectin , Retina , Animals , Receptors, Adiponectin/metabolism , Receptors, Adiponectin/genetics , Mice , Ceramides/metabolism , Retina/metabolism , Retina/pathology , Mice, Knockout , Fatty Acids, Unsaturated/metabolism , Retinal Pigment Epithelium/metabolism , Macular Degeneration/metabolism , Macular Degeneration/pathology , Macular Degeneration/genetics
20.
Gastroenterology ; 2024 May 27.
Article in English | MEDLINE | ID: mdl-38810839

ABSTRACT

BACKGROUND & AIMS: Gut dysbiosis and myeloid-derived suppressor cells (MDSCs) are implicated in primary biliary cholangitis (PBC) pathogenesis. However, it remains unknown whether gut microbiota or their metabolites can modulate MDSCs homeostasis to rectify immune dysregulation in PBC. METHODS: We measured fecal short-chain fatty acids levels using targeted gas chromatography-mass spectrometry and analyzed circulating MDSCs using flow cytometry in 2 independent PBC cohorts. Human and murine MDSCs were differentiated in vitro in the presence of butyrate, followed by transcriptomic, epigenetic (CUT&Tag-seq and chromatin immunoprecipitation-quantitative polymerase chain reaction), and metabolic (untargeted liquid chromatography-mass spectrometry, mitochondrial stress test, and isotope tracing) analyses. The in vivo role of butyrate-MDSCs was evaluated in a 2-octynoic acid-bovine serum albumin-induced cholangitis murine model. RESULTS: Decreased butyrate levels and defective MDSC function were found in patients with incomplete response to ursodeoxycholic acid, compared with those with adequate response. Butyrate induced expansion and suppressive activity of MDSCs in a manner dependent on PPARD-driven fatty acid ß-oxidation (FAO). Pharmaceutical inhibition or genetic knockdown of the FAO rate-limiting gene CPT1A abolished the effect of butyrate. Furthermore, butyrate inhibited HDAC3 function, leading to enhanced acetylation of lysine 27 on histone H3 at promoter regions of PPARD and FAO genes in MDSCs. Therapeutically, butyrate administration alleviated immune-mediated cholangitis in mice via MDSCs, and adoptive transfer of butyrate-treated MDSCs also displayed protective efficacy. Importantly, reduced expression of FAO genes and impaired mitochondrial physiology were detected in MDSCs from ursodeoxycholic acid nonresponders, and their impaired suppressive function was restored by butyrate. CONCLUSIONS: We identify a critical role for butyrate in modulation of MDSC homeostasis by orchestrating epigenetic and metabolic crosstalk, proposing a novel therapeutic strategy for treating PBC.

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