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1.
Nat Immunol ; 20(1): 29-39, 2019 01.
Article in English | MEDLINE | ID: mdl-30538339

ABSTRACT

Macrophages promote both injury and repair after myocardial infarction, but discriminating functions within mixed populations remains challenging. Here we used fate mapping, parabiosis and single-cell transcriptomics to demonstrate that at steady state, TIMD4+LYVE1+MHC-IIloCCR2- resident cardiac macrophages self-renew with negligible blood monocyte input. Monocytes partially replaced resident TIMD4-LYVE1-MHC-IIhiCCR2- macrophages and fully replaced TIMD4-LYVE1-MHC-IIhiCCR2+ macrophages, revealing a hierarchy of monocyte contribution to functionally distinct macrophage subsets. Ischemic injury reduced TIMD4+ and TIMD4- resident macrophage abundance, whereas CCR2+ monocyte-derived macrophages adopted multiple cell fates within infarcted tissue, including those nearly indistinguishable from resident macrophages. Recruited macrophages did not express TIMD4, highlighting the ability of TIMD4 to track a subset of resident macrophages in the absence of fate mapping. Despite this similarity, inducible depletion of resident macrophages using a Cx3cr1-based system led to impaired cardiac function and promoted adverse remodeling primarily within the peri-infarct zone, revealing a nonredundant, cardioprotective role of resident cardiac macrophages.


Subject(s)
Macrophages/physiology , Myocardial Infarction/immunology , Myocardium/pathology , Animals , CX3C Chemokine Receptor 1/metabolism , Cell Differentiation , Cell Lineage , Cell Self Renewal , Gene Expression Profiling , Histocompatibility Antigens Class II/metabolism , Membrane Proteins/metabolism , Mice , Mice, Transgenic , Parabiosis , Receptors, CCR2/genetics , Receptors, CCR2/metabolism , Single-Cell Analysis , Ventricular Remodeling , Vesicular Transport Proteins/metabolism
2.
Nat Immunol ; 20(5): 664, 2019 May.
Article in English | MEDLINE | ID: mdl-30862954

ABSTRACT

In the version of this article initially published, the equal contribution of the third author was omitted. The footnote links for that author should be "Sara Nejat1,11" and the correct statement is as follows: "11These authors contributed equally: Sarah A. Dick, Jillian A. Macklin, Sara Nejat." The error has been corrected in the HTML and PDF versions of the article.

3.
Immunity ; 54(9): 2057-2071.e6, 2021 09 14.
Article in English | MEDLINE | ID: mdl-34363749

ABSTRACT

Hypertension affects one-third of the world's population, leading to cardiac dysfunction that is modulated by resident and recruited immune cells. Cardiomyocyte growth and increased cardiac mass are essential to withstand hypertensive stress; however, whether immune cells are involved in this compensatory cardioprotective process is unclear. In normotensive animals, single-cell transcriptomics of fate-mapped self-renewing cardiac resident macrophages (RMs) revealed transcriptionally diverse cell states with a core repertoire of reparative gene programs, including high expression of insulin-like growth factor-1 (Igf1). Hypertension drove selective in situ proliferation and transcriptional activation of some cardiac RM states, directly correlating with increased cardiomyocyte growth. During hypertension, inducible ablation of RMs or selective deletion of RM-derived Igf1 prevented adaptive cardiomyocyte growth, and cardiac mass failed to increase, which led to cardiac dysfunction. Single-cell transcriptomics identified a conserved IGF1-expressing macrophage subpopulation in human cardiomyopathy. Here we defined the absolute requirement of RM-produced IGF-1 in cardiac adaptation to hypertension.


Subject(s)
Adaptation, Physiological/physiology , Hypertension/metabolism , Insulin-Like Growth Factor I/metabolism , Macrophages/metabolism , Ventricular Remodeling/physiology , Animals , Heart Failure/etiology , Heart Failure/metabolism , Heart Failure/pathology , Humans , Hypertension/complications , Hypertension/immunology , Infant , Male , Mice , Middle Aged , Myocardium/immunology , Myocardium/metabolism , Myocardium/pathology
4.
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
5.
Immunity ; 47(5): 974-989.e8, 2017 11 21.
Article in English | MEDLINE | ID: mdl-29166591

ABSTRACT

Innate and adaptive immune cells modulate heart failure pathogenesis during viral myocarditis, yet their identities and functions remain poorly defined. We utilized a combination of genetic fate mapping, parabiotic, transcriptional, and functional analyses and demonstrated that the heart contained two major conventional dendritic cell (cDC) subsets, CD103+ and CD11b+, which differentially relied on local proliferation and precursor recruitment to maintain their tissue residency. Following viral infection of the myocardium, cDCs accumulated in the heart coincident with monocyte infiltration and loss of resident reparative embryonic-derived cardiac macrophages. cDC depletion abrogated antigen-specific CD8+ T cell proliferative expansion, transforming subclinical cardiac injury to overt heart failure. These effects were mediated by CD103+ cDCs, which are dependent on the transcription factor BATF3 for their development. Collectively, our findings identified resident cardiac cDC subsets, defined their origins, and revealed an essential role for CD103+ cDCs in antigen-specific T cell responses during subclinical viral myocarditis.


Subject(s)
Antigens, CD/analysis , Cardiovirus Infections/complications , Dendritic Cells/immunology , Encephalomyocarditis virus , Heart Failure/prevention & control , Integrin alpha Chains/analysis , Myocarditis/complications , Animals , CD11b Antigen/analysis , CD8-Positive T-Lymphocytes/immunology , Cardiovirus Infections/immunology , Cell Movement , Female , Hematopoiesis , Immunologic Memory , Male , Mice , Mice, Inbred C57BL , Myocarditis/immunology , Receptors, CCR2/physiology
6.
Am J Pathol ; 194(4): 510-524, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38171450

ABSTRACT

Despite significant advances in medical treatments and drug development, atherosclerotic cardiovascular disease (ASCVD) remains a leading cause of death worldwide. Dysregulated lipid metabolism is a well-established driver of ASCVD. Unfortunately, even with potent lipid-lowering therapies, ASCVD-related deaths have continued to increase over the past decade, highlighting an incomplete understanding of the underlying risk factors and mechanisms of ASCVD. Accumulating evidence over the past decades indicates a correlation between amino acids and disease state. This review explores the emerging role of amino acid metabolism in ASCVD, uncovering novel potential biomarkers, causative factors, and therapeutic targets. Specifically, the significance of arginine and its related metabolites, homoarginine and polyamines, branched-chain amino acids, glycine, and aromatic amino acids, in ASCVD are discussed. These amino acids and their metabolites have been implicated in various processes characteristic of ASCVD, including impaired lipid metabolism, endothelial dysfunction, increased inflammatory response, and necrotic core development. Understanding the complex interplay between dysregulated amino acid metabolism and ASCVD provides new insights that may lead to the development of novel diagnostic and therapeutic approaches. Although further research is needed to uncover the precise mechanisms involved, it is evident that amino acid metabolism plays a role in ASCVD.


Subject(s)
Atherosclerosis , Cardiovascular Diseases , Humans , Risk Factors , Biomarkers , Amino Acids/therapeutic use
7.
Circ Res ; 132(11): e206-e222, 2023 05 26.
Article in English | MEDLINE | ID: mdl-37132383

ABSTRACT

BACKGROUND: Platelet adhesion and aggregation play a crucial role in arterial thrombosis and ischemic stroke. Here, we identify platelet ERO1α (endoplasmic reticulum oxidoreductase 1α) as a novel regulator of Ca2+ signaling and a potential pharmacological target for treating thrombotic diseases. METHODS: Intravital microscopy, animal disease models, and a wide range of cell biological studies were utilized to demonstrate the pathophysiological role of ERO1α in arteriolar and arterial thrombosis and to prove the importance of platelet ERO1α in platelet activation and aggregation. Mass spectrometry, electron microscopy, and biochemical studies were used to investigate the molecular mechanism. We used novel blocking antibodies and small-molecule inhibitors to study whether ERO1α can be targeted to attenuate thrombotic conditions. RESULTS: Megakaryocyte-specific or global deletion of Ero1α in mice similarly reduced platelet thrombus formation in arteriolar and arterial thrombosis without affecting tail bleeding times and blood loss following vascular injury. We observed that platelet ERO1α localized exclusively in the dense tubular system and promoted Ca2+ mobilization, platelet activation, and aggregation. Platelet ERO1α directly interacted with STIM1 (stromal interaction molecule 1) and SERCA2 (sarco/endoplasmic reticulum Ca2+-ATPase 2) and regulated their functions. Such interactions were impaired in mutant STIM1-Cys49/56Ser and mutant SERCA2-Cys875/887Ser. We found that ERO1α modified an allosteric Cys49-Cys56 disulfide bond in STIM1 and a Cys875-Cys887 disulfide bond in SERCA2, contributing to Ca2+ store content and increasing cytosolic Ca2+ levels during platelet activation. Inhibition of Ero1α with small-molecule inhibitors but not blocking antibodies attenuated arteriolar and arterial thrombosis and reduced infarct volume following focal brain ischemia in mice. CONCLUSIONS: Our results suggest that ERO1α acts as a thiol oxidase for Ca2+ signaling molecules, STIM1 and SERCA2, and enhances cytosolic Ca2+ levels, promoting platelet activation and aggregation. Our study provides evidence that ERO1α may be a potential target to reduce thrombotic events.


Subject(s)
Ischemic Stroke , Thrombosis , Animals , Mice , Blood Platelets/metabolism , Calcium Signaling , Disulfides , Ischemic Stroke/metabolism , Platelet Activation
8.
Circ Res ; 133(3): 200-219, 2023 07 21.
Article in English | MEDLINE | ID: mdl-37350264

ABSTRACT

BACKGROUND: The mTOR (mechanistic target of rapamycin) pathway is a complex signaling cascade that regulates cellular growth, proliferation, metabolism, and survival. Although activation of mTOR signaling has been linked to atherosclerosis, its direct role in lesion progression and in plaque macrophages remains poorly understood. We previously demonstrated that mTORC1 (mTOR complex 1) activation promotes atherogenesis through inhibition of autophagy and increased apoptosis in macrophages. METHODS: Using macrophage-specific Rictor- and mTOR-deficient mice, we now dissect the distinct functions of mTORC2 pathways in atherogenesis. RESULTS: In contrast to the atheroprotective effect seen with blockade of macrophage mTORC1, macrophage-specific mTORC2-deficient mice exhibit an atherogenic phenotype, with larger, more complex lesions and increased cell death. In cultured macrophages, we show that mTORC2 signaling inhibits the FoxO1 (forkhead box protein O1) transcription factor, leading to suppression of proinflammatory pathways, especially the inflammasome/IL (interleukin)-1ß response, a key mediator of vascular inflammation and atherosclerosis. In addition, administration of FoxO1 inhibitors efficiently rescued the proinflammatory response caused by mTORC2 deficiency both in vitro and in vivo. Interestingly, collective deletion of macrophage mTOR, which ablates mTORC1- and mTORC2-dependent pathways, leads to minimal change in plaque size or complexity, reflecting the balanced yet opposing roles of these signaling arms. CONCLUSIONS: Our data provide the first mechanistic details of macrophage mTOR signaling in atherosclerosis and suggest that therapeutic measures aimed at modulating mTOR need to account for its dichotomous functions.


Subject(s)
Atherosclerosis , TOR Serine-Threonine Kinases , Mice , Animals , Mechanistic Target of Rapamycin Complex 2 , TOR Serine-Threonine Kinases/metabolism , Macrophages/metabolism , Mechanistic Target of Rapamycin Complex 1/metabolism , Transcription Factors/metabolism , Atherosclerosis/genetics , Atherosclerosis/metabolism
9.
Bioinformatics ; 39(9)2023 09 02.
Article in English | MEDLINE | ID: mdl-37610350

ABSTRACT

MOTIVATION: The method of genome-wide association studies (GWAS) and metabolomics combined provide an quantitative approach to pinpoint metabolic pathways and genes linked to specific diseases; however, such analyses require both genomics and metabolomics datasets from the same individuals/samples. In most cases, this approach is not feasible due to high costs, lack of technical infrastructure, unavailability of samples, and other factors. Therefore, an unmet need exists for a bioinformatics tool that can identify gene loci-associated polymorphic variants for metabolite alterations seen in disease states using standalone metabolomics. RESULTS: Here, we developed a bioinformatics tool, metGWAS 1.0, that integrates independent GWAS data from the GWAS database and standalone metabolomics data using a network-based systems biology approach to identify novel disease/trait-specific metabolite-gene associations. The tool was evaluated using standalone metabolomics datasets extracted from two metabolomics-GWAS case studies. It discovered both the observed and novel gene loci with known single nucleotide polymorphisms when compared to the original studies. AVAILABILITY AND IMPLEMENTATION: The developed metGWAS 1.0 framework is implemented in an R pipeline and available at: https://github.com/saifurbd28/metGWAS-1.0.


Subject(s)
Genome-Wide Association Study , Metabolomics , Humans , Workflow , Computational Biology , Databases, Factual
10.
Arterioscler Thromb Vasc Biol ; 43(9): 1626-1635, 2023 09.
Article in English | MEDLINE | ID: mdl-37381983

ABSTRACT

BACKGROUND: Impairments in carbohydrate, lipid, and amino acid metabolism drive features of plaque instability. However, where these impairments occur within the atheroma remains largely unknown. Therefore, we sought to characterize the spatial distribution of metabolites within stable and unstable atherosclerosis in both the fibrous cap and necrotic core. METHODS: Atherosclerotic tissue specimens from 9 unmatched individuals were scored based on the Stary classification scale and subdivided into stable and unstable atheromas. After performing mass spectrometry imaging on these samples, we identified over 850 metabolite-related peaks. Using MetaboScape, METASPACE, and Human Metabolome Database, we confidently annotated 170 of these metabolites and found over 60 of these were different between stable and unstable atheromas. We then integrated these results with an RNA-sequencing data set comparing stable and unstable human atherosclerosis. RESULTS: Upon integrating our mass spectrometry imaging results with the RNA-sequencing data set, we discovered that pathways related to lipid metabolism and long-chain fatty acids were enriched in stable plaques, whereas reactive oxygen species, aromatic amino acid, and tryptophan metabolism were increased in unstable plaques. In addition, acylcarnitines and acylglycines were increased in stable plaques whereas tryptophan metabolites were enriched in unstable plaques. Evaluating spatial differences in stable plaques revealed lactic acid in the necrotic core, whereas pyruvic acid was elevated in the fibrous cap. In unstable plaques, 5-hydroxyindoleacetic acid was enriched in the fibrous cap. CONCLUSIONS: Our work here represents the first step to defining an atlas of metabolic pathways involved in plaque destabilization in human atherosclerosis. We anticipate this will be a valuable resource and open new avenues of research in cardiovascular disease.


Subject(s)
Atherosclerosis , Plaque, Atherosclerotic , Humans , Plaque, Atherosclerotic/chemistry , Tryptophan , Atherosclerosis/diagnostic imaging , Mass Spectrometry , Necrosis , RNA
11.
Immunity ; 40(1): 91-104, 2014 Jan 16.
Article in English | MEDLINE | ID: mdl-24439267

ABSTRACT

Cardiac macrophages are crucial for tissue repair after cardiac injury but are not well characterized. Here we identify four populations of cardiac macrophages. At steady state, resident macrophages were primarily maintained through local proliferation. However, after macrophage depletion or during cardiac inflammation, Ly6c(hi) monocytes contributed to all four macrophage populations, whereas resident macrophages also expanded numerically through proliferation. Genetic fate mapping revealed that yolk-sac and fetal monocyte progenitors gave rise to the majority of cardiac macrophages, and the heart was among a minority of organs in which substantial numbers of yolk-sac macrophages persisted in adulthood. CCR2 expression and dependence distinguished cardiac macrophages of adult monocyte versus embryonic origin. Transcriptional and functional data revealed that monocyte-derived macrophages coordinate cardiac inflammation, while playing redundant but lesser roles in antigen sampling and efferocytosis. These data highlight the presence of multiple cardiac macrophage subsets, with different functions, origins, and strategies to regulate compartment size.


Subject(s)
Macrophages/immunology , Monocytes/physiology , Myocarditis/immunology , Myocardium/immunology , Animals , Antigen Presentation , Antigens, Ly/metabolism , Cell Death , Cell Differentiation , Cell Lineage , Cells, Cultured , Fetal Development , Heart/embryology , Homeostasis , Mice , Mice, Inbred C57BL , Mice, Transgenic , Myocytes, Cardiac/immunology , Phagocytosis , Receptors, CCR2/metabolism , Transcriptome , Yolk Sac/cytology
12.
Allergy ; 77(7): 2131-2146, 2022 07.
Article in English | MEDLINE | ID: mdl-35038351

ABSTRACT

BACKGROUND: NLRP3-driven inflammatory responses by circulating and lung-resident monocytes are critical drivers of asthma pathogenesis. Autophagy restrains NLRP3-induced monocyte activation in asthma models. Yet, the effects of autophagy and its master regulator, transcription factor EB (TFEB), on monocyte responses in human asthma remain unexplored. Here, we investigated whether activation of autophagy and TFEB signaling suppress inflammatory monocyte responses in asthmatic individuals. METHODS: Peripheral blood CD14+ monocytes from asthmatic patients (n = 83) and healthy controls (n = 46) were stimulated with LPS/ATP to induce NLRP3 activation with or without the autophagy inducer, rapamycin. ASC specks, caspase-1 activation, IL-1ß and IL-18 levels, mitochondrial function, ROS release, and mTORC1 signaling were examined. Autophagy was evaluated by LC3 puncta formation, p62/SQSTM1 degradation and TFEB activation. In a severe asthma (SA) model, we investigated the role of NLRP3 signaling using Nlrp3-/- mice and/or MCC950 administration, and the effects of TFEB activation using myeloid-specific TFEB-overexpressing mice or administration of the TFEB activator, trehalose. RESULTS: We observed increased NLRP3 inflammasome activation, concomitant with impaired autophagy in circulating monocytes that correlated with asthma severity. SA patients also exhibited mitochondrial dysfunction and ROS accumulation. Autophagy failed to inhibit NLRP3-driven monocyte responses, due to defective TFEB activation and excessive mTORC1 signaling. NLRP3 blockade restrained inflammatory cytokine release and linked airway disease. TFEB activation restored impaired autophagy, attenuated NLRP3-driven pulmonary inflammation, and ameliorated SA phenotype. CONCLUSIONS: Our studies uncover a crucial role for TFEB-mediated reprogramming of monocyte inflammatory responses, raising the prospect that this pathway can be therapeutically harnessed for the management of SA.


Subject(s)
Asthma , Basic Helix-Loop-Helix Leucine Zipper Transcription Factors , NLR Family, Pyrin Domain-Containing 3 Protein , Animals , Asthma/metabolism , Autophagy , Basic Helix-Loop-Helix Leucine Zipper Transcription Factors/genetics , Basic Helix-Loop-Helix Leucine Zipper Transcription Factors/metabolism , Inflammasomes/metabolism , Mechanistic Target of Rapamycin Complex 1/metabolism , Mice , NLR Family, Pyrin Domain-Containing 3 Protein/genetics , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Reactive Oxygen Species/metabolism
13.
Immunity ; 36(6): 933-46, 2012 Jun 29.
Article in English | MEDLINE | ID: mdl-22749352

ABSTRACT

The mitochondrial protein MAVS (also known as IPS-1, VISA, and CARDIF) interacts with RIG-I-like receptors (RLRs) to induce type I interferon (IFN-I). NLRX1 is a mitochondrial nucleotide-binding, leucine-rich repeats (NLR)-containing protein that attenuates MAVS-RLR signaling. Using Nlrx1(-/-) cells, we confirmed that NLRX1 attenuated IFN-I production, but additionally promoted autophagy during viral infection. This dual function of NLRX1 paralleled the previously described functions of the autophagy-related proteins Atg5-Atg12, but NLRX1 did not associate with Atg5-Atg12. High-throughput quantitative mass spectrometry and endogenous protein-protein interaction revealed an NLRX1-interacting partner, mitochondrial Tu translation elongation factor (TUFM). TUFM interacted with Atg5-Atg12 and Atg16L1 and has similar functions as NLRX1 by inhibiting RLR-induced IFN-I but promoting autophagy. In the absence of NLRX1, increased IFN-I and decreased autophagy provide an advantage for host defense against vesicular stomatitis virus. This study establishes a link between an NLR protein and the viral-induced autophagic machinery via an intermediary partner, TUFM.


Subject(s)
Autophagy/physiology , Interferon Type I/biosynthesis , Mitochondrial Proteins/physiology , Peptide Elongation Factor Tu/physiology , Adaptor Proteins, Signal Transducing/physiology , Amino Acid Sequence , Animals , Autophagy-Related Protein 12 , Autophagy-Related Protein 5 , Autophagy-Related Proteins , Carrier Proteins/physiology , Cytokines/biosynthesis , Cytokines/genetics , DEAD Box Protein 58 , DEAD-box RNA Helicases/physiology , Fibroblasts/metabolism , Gene Expression Regulation/immunology , HEK293 Cells , Humans , Interferon Type I/genetics , Macrophages, Peritoneal/cytology , Macrophages, Peritoneal/immunology , Mice , Microtubule-Associated Proteins/deficiency , Microtubule-Associated Proteins/physiology , Mitochondrial Proteins/chemistry , Mitochondrial Proteins/deficiency , Mitochondrial Proteins/genetics , Molecular Sequence Data , Multiprotein Complexes/physiology , Peptide Elongation Factor Tu/chemistry , Protein Interaction Mapping , Proteins/physiology , Recombinant Fusion Proteins/chemistry , Recombinant Fusion Proteins/physiology , Sequence Alignment , Sequence Homology, Amino Acid , Specific Pathogen-Free Organisms , Vesiculovirus/physiology
14.
Infection ; 49(6): 1163-1186, 2021 Dec.
Article in English | MEDLINE | ID: mdl-34319569

ABSTRACT

PURPOSE: To find out what is known from literature about Long COVID until January 30, 2021. METHODS: We undertook a four-step search with no language restriction. A preliminary search was made to identify the keywords. A search strategy of all electronic databases resulted in 66 eligible studies. A forward and backward search of the references and citations resulted in additional 54 publications. Non-English language articles were translated using Google Translate. We conducted our scoping review based on the PRISMA-ScR Checklist. RESULTS: Of 120 papers, we found only one randomized clinical trial. Of the 67 original studies, 22 were cohort, and 28 were cross-sectional studies. Of the total 120 publications, 49.1% focused on signs and symptoms, 23.3% on management, and 10.8% on pathophysiology. Ten publications focused on imaging studies. The results are also presented extensively in a narrative synthesis in separated sections (nomenclature, diagnosis, pathophysiology, risk factors, signs/symptoms, management). CONCLUSIONS: The controversies in its definition have impaired proper recognition and management. The predominant symptoms were: fatigue, breathlessness, arthralgia, sleep difficulties, and chest pain. Recent reports also point to the risk of long-term sequela with cutaneous, respiratory, cardiovascular, musculoskeletal, mental health, neurologic, and renal involvement in those who survive the acute phase of the illness.


Subject(s)
COVID-19 , COVID-19/complications , Fatigue , Humans , Randomized Controlled Trials as Topic , SARS-CoV-2 , Post-Acute COVID-19 Syndrome
15.
J Allergy Clin Immunol ; 145(2): 502-517.e5, 2020 02.
Article in English | MEDLINE | ID: mdl-31738991

ABSTRACT

BACKGROUND: Allergic asthma is a chronic inflammatory disorder characterized by airway hyperreactivity (AHR) and driven by TH2 cytokine production. Group 2 innate lymphoid cells (ILC2s) secrete high amounts of TH2 cytokines and contribute to the development of AHR. Autophagy is a cellular degradation pathway that recycles cytoplasmic content. However, the role of autophagy in ILC2s remains to be fully elucidated. OBJECTIVE: We characterized the effects of autophagy deficiency on ILC2 effector functions and metabolic balance. METHODS: ILC2s from autophagy-deficient mice were isolated to evaluate proliferation, apoptosis, cytokine secretion, gene expression and cell metabolism. Also, autophagy-deficient ILC2s were adoptively transferred into Rag-/-GC-/- mice, which were then challenged with IL-33 and assessed for AHR and lung inflammation. RESULTS: We demonstrate that autophagy is extensively used by activated ILC2s to maintain their homeostasis and effector functions. Deletion of the critical autophagy gene autophagy-related 5 (Atg5) resulted in decreased cytokine secretion and increased apoptosis. Moreover, lack of autophagy among ILC2s impaired their ability to use fatty acid oxidation and strikingly promoted glycolysis, as evidenced by our transcriptomic and metabolite analyses. This shift of fuel dependency led to impaired homeostasis and TH2 cytokine production, thus inhibiting the development of ILC2-mediated AHR. Notably, this metabolic reprogramming was also associated with an accumulation of dysfunctional mitochondria, producing excessive reactive oxygen species. CONCLUSION: These findings provide new insights into the metabolic profile of ILC2s and suggest that modulation of fuel dependency by autophagy is a potentially new therapeutic approach to target ILC2-dependent inflammation.


Subject(s)
Autophagy/immunology , Homeostasis/immunology , Immunity, Innate/immunology , Lymphocytes/immunology , Lymphocytes/metabolism , Animals , Mice , Respiratory Hypersensitivity/immunology , Respiratory Hypersensitivity/metabolism
16.
Arterioscler Thromb Vasc Biol ; 39(12): 2480-2491, 2019 12.
Article in English | MEDLINE | ID: mdl-31645127

ABSTRACT

OBJECTIVE: LIPA (lysosomal acid lipase) mediates cholesteryl ester hydrolysis, and patients with rare loss-of-function mutations develop hypercholesterolemia and severe disease. Genome-wide association studies of coronary artery disease have identified several tightly linked, common intronic risk variants in LIPA which unexpectedly associate with increased mRNA expression. However, an exonic variant (rs1051338 resulting in T16P) in linkage with intronic variants lies in the signal peptide region and putatively disrupts trafficking. We sought to functionally investigate the net impact of this locus on LIPA and whether rs1051338 could disrupt LIPA processing and function to explain coronary artery disease risk. Approach and Results: In monocytes isolated from a large cohort of healthy individuals, we demonstrate both exonic and intronic risk variants are associated with increased LIPA enzyme activity coincident with the increased transcript levels. To functionally isolate the impact of rs1051338, we studied several in vitro overexpression systems and consistently observed no differences in LIPA expression, processing, activity, or secretion. Further, we characterized a second common exonic coding variant (rs1051339), which is predicted to alter LIPA signal peptide cleavage similarly to rs1051338, yet is not linked to intronic variants. rs1051339 also does not impact LIPA function in vitro and confers no coronary artery disease risk. CONCLUSIONS: Our findings show that common LIPA exonic variants in the signal peptide are of minimal functional significance and suggest coronary artery disease risk is instead associated with increased LIPA function linked to intronic variants. Understanding the mechanisms and cell-specific contexts of LIPA function in the plaque is necessary to understand its association with cardiovascular risk.


Subject(s)
Coronary Artery Disease/genetics , DNA/genetics , Mutation , Sterol Esterase/genetics , Adult , Coronary Artery Disease/metabolism , DNA Mutational Analysis , Female , Genome-Wide Association Study , Humans , Male , Middle Aged , Monocytes/metabolism , Phenotype , Sterol Esterase/metabolism , Young Adult
17.
J Immunol ; 201(7): 2054-2069, 2018 10 01.
Article in English | MEDLINE | ID: mdl-30143592

ABSTRACT

Obesity and diabetes modulate macrophage activation, often leading to prolonged inflammation and dysfunctional tissue repair. Increasing evidence suggests that the NLRP3 inflammasome plays an important role in obesity-associated inflammation. We have previously shown that activation of the lipotoxic inflammasome by excess fatty acids in macrophages occurs via a lysosome-dependent pathway. However, the mechanisms that link cellular lipid metabolism to altered inflammation remain poorly understood. PPARγ is a nuclear receptor transcription factor expressed by macrophages that is known to alter lipid handling, mitochondrial function, and inflammatory cytokine expression. To undercover novel links between metabolic signaling and lipotoxic inflammasome activation, we investigated mouse primary macrophages deficient in PPARγ. Contrary to our expectation, PPARγ knockout (KO) macrophages released significantly less IL-1ß and IL-1α in response to lipotoxic stimulation. The suppression occurred at the transcriptional level and was apparent for multiple activators of the NLRP3 inflammasome. RNA sequencing revealed upregulation of IFN-ß in activated PPARγKO macrophages, and this was confirmed at the protein level. A blocking Ab against the type 1 IFNR restored the release of IL-1ß to wild type levels in PPARγKO cells, confirming the mechanistic link between these events. Conversely, PPARγ activation with rosiglitazone selectively suppressed IFN-ß expression in activated macrophages. Loss of PPARγ also resulted in diminished expression of genes involved in sterol biosynthesis, a pathway known to influence IFN production. Together, these findings demonstrate a cross-talk pathway that influences the interplay between metabolism and inflammation in macrophages.


Subject(s)
Inflammasomes/metabolism , Inflammation/immunology , Interleukin-1alpha/metabolism , Interleukin-1beta/metabolism , Macrophages/physiology , Obesity/immunology , PPAR gamma/genetics , Animals , Cells, Cultured , Interferon Type I/metabolism , Macrophage Activation , Mice , Mice, Inbred C57BL , Mice, Knockout , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Rosiglitazone/pharmacology , Sequence Analysis, RNA
18.
Circ Res ; 130(6): 848-850, 2022 03 18.
Article in English | MEDLINE | ID: mdl-35298303
20.
Curr Opin Lipidol ; 29(3): 203-211, 2018 06.
Article in English | MEDLINE | ID: mdl-29601311

ABSTRACT

PURPOSE OF REVIEW: Intracellular lipid metabolism is a complex interplay of exogenous lipid handling, trafficking, storage, lipolysis, and export. Recent work has implicated the cellular degradative process called autophagy in several aspects of lipid metabolism. We will discuss both the classical and novel roles of autophagy and the autophagic machinery in this setting. RECENT FINDINGS: The delivery of lipid droplets to lysosomes for hydrolysis, named lipophagy, was the first described functional role for autophagy in lipid metabolism. The molecular machinery and regulation of this selective form of macroautophagy is beginning to be discovered and has the potential to shed enormous light on intracellular lipolysis. Yet, the autophagic machinery appears to also be coopted for alternative roles that include interaction with cytosolic lipolysis pathways, supply and expansion of lipid droplets, and lipoprotein trafficking. Additionally, lesser studied forms of autophagy called microautophagy and chaperone-mediated autophagy have distinct roles in lipid handling that also intersect with classical macroautophagy. The integration of current knowledge in these areas into a holistic understanding of intracellular lipid metabolism will be a goal of this review. SUMMARY: As the field of autophagy has evolved and expanded to include functional roles in various aspects of cellular degradation, so has its role in intracellular lipid metabolism. Understanding the mechanisms underlying these classical and alternative roles of autophagy will not only enhance our knowledge in lipid biology but also provide new avenues of translation to human lipid disorders.


Subject(s)
Autophagy , Lipid Droplets/metabolism , Lipid Metabolism Disorders/metabolism , Lipolysis , Lipoproteins/metabolism , Lysosomes/metabolism , Animals , Humans , Lipid Droplets/pathology , Lipid Metabolism Disorders/pathology , Lysosomes/pathology , Protein Transport
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