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1.
Cell ; 184(4): 969-982.e13, 2021 02 18.
Article in English | MEDLINE | ID: mdl-33571427

ABSTRACT

Iron overload causes progressive organ damage and is associated with arthritis, liver damage, and heart failure. Elevated iron levels are present in 1%-5% of individuals; however, iron overload is undermonitored and underdiagnosed. Genetic factors affecting iron homeostasis are emerging. Individuals with hereditary xerocytosis, a rare disorder with gain-of-function (GOF) mutations in mechanosensitive PIEZO1 ion channel, develop age-onset iron overload. We show that constitutive or macrophage expression of a GOF Piezo1 allele in mice disrupts levels of the iron regulator hepcidin and causes iron overload. We further show that PIEZO1 is a key regulator of macrophage phagocytic activity and subsequent erythrocyte turnover. Strikingly, we find that E756del, a mild GOF PIEZO1 allele present in one-third of individuals of African descent, is strongly associated with increased plasma iron. Our study links macrophage mechanotransduction to iron metabolism and identifies a genetic risk factor for increased iron levels in African Americans.


Subject(s)
Ion Channels/metabolism , Iron/metabolism , Black or African American , Aging/metabolism , Alleles , Animals , Cohort Studies , Erythrocyte Count , Erythropoiesis , Gain of Function Mutation/genetics , Hepatocytes/metabolism , Hepcidins/blood , Hepcidins/metabolism , Humans , Iron/blood , Iron Overload/metabolism , Macrophages/metabolism , Mechanotransduction, Cellular , Mice, Inbred C57BL , Phagocytosis , Phenotype , Stress, Physiological
2.
Annu Rev Biochem ; 89: 471-499, 2020 06 20.
Article in English | MEDLINE | ID: mdl-31935115

ABSTRACT

Mitochondria are essential in most eukaryotes and are involved in numerous biological functions including ATP production, cofactor biosyntheses, apoptosis, lipid synthesis, and steroid metabolism. Work over the past two decades has uncovered the biogenesis of cellular iron-sulfur (Fe/S) proteins as the essential and minimal function of mitochondria. This process is catalyzed by the bacteria-derived iron-sulfur cluster assembly (ISC) machinery and has been dissected into three major steps: de novo synthesis of a [2Fe-2S] cluster on a scaffold protein; Hsp70 chaperone-mediated trafficking of the cluster and insertion into [2Fe-2S] target apoproteins; and catalytic conversion of the [2Fe-2S] into a [4Fe-4S] cluster and subsequent insertion into recipient apoproteins. ISC components of the first two steps are also required for biogenesis of numerous essential cytosolic and nuclear Fe/S proteins, explaining the essentiality of mitochondria. This review summarizes the molecular mechanisms underlying the ISC protein-mediated maturation of mitochondrial Fe/S proteins and the importance for human disease.


Subject(s)
Friedreich Ataxia/genetics , Iron-Sulfur Proteins/genetics , Mitochondria/genetics , Mitochondrial Diseases/genetics , Mitochondrial Proteins/genetics , Molecular Chaperones/genetics , ATP-Binding Cassette Transporters/chemistry , ATP-Binding Cassette Transporters/genetics , ATP-Binding Cassette Transporters/metabolism , Carbon-Sulfur Lyases/chemistry , Carbon-Sulfur Lyases/genetics , Carbon-Sulfur Lyases/metabolism , Ferredoxins/chemistry , Ferredoxins/genetics , Ferredoxins/metabolism , Friedreich Ataxia/metabolism , Friedreich Ataxia/pathology , Gene Expression Regulation , Glutaredoxins/chemistry , Glutaredoxins/genetics , Glutaredoxins/metabolism , Humans , Iron-Binding Proteins/chemistry , Iron-Binding Proteins/genetics , Iron-Binding Proteins/metabolism , Iron-Sulfur Proteins/chemistry , Iron-Sulfur Proteins/metabolism , Mitochondria/metabolism , Mitochondria/pathology , Mitochondrial Diseases/metabolism , Mitochondrial Diseases/pathology , Mitochondrial Proteins/chemistry , Mitochondrial Proteins/metabolism , Models, Molecular , Molecular Chaperones/chemistry , Molecular Chaperones/metabolism , Protein Biosynthesis , Protein Interaction Domains and Motifs , Protein Structure, Secondary , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Frataxin
3.
Cell ; 180(2): 296-310.e18, 2020 01 23.
Article in English | MEDLINE | ID: mdl-31978346

ABSTRACT

Mitochondria and lysosomes are functionally linked, and their interdependent decline is a hallmark of aging and disease. Despite the long-standing connection between these organelles, the function(s) of lysosomes required to sustain mitochondrial health remains unclear. Here, working in yeast, we show that the lysosome-like vacuole maintains mitochondrial respiration by spatially compartmentalizing amino acids. Defects in vacuole function result in a breakdown in intracellular amino acid homeostasis, which drives age-related mitochondrial decline. Among amino acids, we find that cysteine is most toxic for mitochondria and show that elevated non-vacuolar cysteine impairs mitochondrial respiration by limiting intracellular iron availability through an oxidant-based mechanism. Cysteine depletion or iron supplementation restores mitochondrial health in vacuole-impaired cells and prevents mitochondrial decline during aging. These results demonstrate that cysteine toxicity is a major driver of age-related mitochondrial deterioration and identify vacuolar amino acid compartmentation as a cellular strategy to minimize amino acid toxicity.


Subject(s)
Cysteine/toxicity , Iron/metabolism , Mitochondria/metabolism , Amino Acids/metabolism , Cellular Senescence/physiology , Cysteine/metabolism , Homeostasis , Lysosomes/metabolism , Mitochondria/physiology , Mitophagy/physiology , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Vacuolar Proton-Translocating ATPases/metabolism , Vacuoles/metabolism
4.
Cell ; 183(3): 752-770.e22, 2020 10 29.
Article in English | MEDLINE | ID: mdl-33125891

ABSTRACT

A greater understanding of hematopoietic stem cell (HSC) regulation is required for dissecting protective versus detrimental immunity to pathogens that cause chronic infections such as Mycobacterium tuberculosis (Mtb). We have shown that systemic administration of Bacille Calmette-Guérin (BCG) or ß-glucan reprograms HSCs in the bone marrow (BM) via a type II interferon (IFN-II) or interleukin-1 (IL1) response, respectively, which confers protective trained immunity against Mtb. Here, we demonstrate that, unlike BCG or ß-glucan, Mtb reprograms HSCs via an IFN-I response that suppresses myelopoiesis and impairs development of protective trained immunity to Mtb. Mechanistically, IFN-I signaling dysregulates iron metabolism, depolarizes mitochondrial membrane potential, and induces cell death specifically in myeloid progenitors. Additionally, activation of the IFN-I/iron axis in HSCs impairs trained immunity to Mtb infection. These results identify an unanticipated immune evasion strategy of Mtb in the BM that controls the magnitude and intrinsic anti-microbial capacity of innate immunity to infection.


Subject(s)
Hematopoietic Stem Cells/microbiology , Immunity , Mycobacterium tuberculosis/physiology , Myelopoiesis , Animals , Bone Marrow Cells/metabolism , Cell Proliferation , Disease Susceptibility , Homeostasis , Interferon Type I/metabolism , Iron/metabolism , Kinetics , Lung/microbiology , Lung/pathology , Macrophages/immunology , Mice, Inbred C57BL , Myeloid Cells/metabolism , Necrosis , Signal Transduction , Transcription, Genetic , Tuberculosis/immunology , Tuberculosis/microbiology , Tuberculosis/pathology
5.
Cell ; 181(3): 665-673.e10, 2020 04 30.
Article in English | MEDLINE | ID: mdl-32289252

ABSTRACT

A growing number of bacteria are recognized to conduct electrons across their cell envelope, and yet molecular details of the mechanisms supporting this process remain unknown. Here, we report the atomic structure of an outer membrane spanning protein complex, MtrAB, that is representative of a protein family known to transport electrons between the interior and exterior environments of phylogenetically and metabolically diverse microorganisms. The structure is revealed as a naturally insulated biomolecular wire possessing a 10-heme cytochrome, MtrA, insulated from the membrane lipidic environment by embedding within a 26 strand ß-barrel formed by MtrB. MtrAB forms an intimate connection with an extracellular 10-heme cytochrome, MtrC, which presents its hemes across a large surface area for electrical contact with extracellular redox partners, including transition metals and electrodes.


Subject(s)
ATP-Binding Cassette Transporters/ultrastructure , Bacterial Outer Membrane Proteins/ultrastructure , Bacterial Proteins/ultrastructure , RNA-Binding Proteins/ultrastructure , Transcription Factors/ultrastructure , ATP-Binding Cassette Transporters/metabolism , Bacterial Outer Membrane/metabolism , Bacterial Outer Membrane Proteins/metabolism , Bacterial Proteins/metabolism , Cell Membrane/metabolism , Cytochromes/metabolism , Electron Transport/physiology , Electrons , Heme/metabolism , Multiprotein Complexes/ultrastructure , Oxidation-Reduction , RNA-Binding Proteins/metabolism , Transcription Factors/metabolism
6.
Cell ; 181(3): 716-727.e11, 2020 04 30.
Article in English | MEDLINE | ID: mdl-32259488

ABSTRACT

Human cells are able to sense and adapt to variations in oxygen levels. Historically, much research in this field has focused on hypoxia-inducible factor (HIF) signaling and reactive oxygen species (ROS). Here, we perform genome-wide CRISPR growth screens at 21%, 5%, and 1% oxygen to systematically identify gene knockouts with relative fitness defects in high oxygen (213 genes) or low oxygen (109 genes), most without known connection to HIF or ROS. Knockouts of many mitochondrial pathways thought to be essential, including complex I and enzymes in Fe-S biosynthesis, grow relatively well at low oxygen and thus are buffered by hypoxia. In contrast, in certain cell types, knockout of lipid biosynthetic and peroxisomal genes causes fitness defects only in low oxygen. Our resource nominates genetic diseases whose severity may be modulated by oxygen and links hundreds of genes to oxygen homeostasis.


Subject(s)
Lipid Metabolism/genetics , Mitochondria/genetics , Oxygen/metabolism , Transcriptome/genetics , Cell Hypoxia , Genetic Testing/methods , Genome-Wide Association Study/methods , HEK293 Cells , Humans , Hypoxia/metabolism , K562 Cells , Lipid Metabolism/physiology , Lipids/genetics , Lipids/physiology , Mitochondria/metabolism , Reactive Oxygen Species/metabolism , Signal Transduction/physiology
7.
Annu Rev Biochem ; 88: 163-190, 2019 06 20.
Article in English | MEDLINE | ID: mdl-31220976

ABSTRACT

Many DNA-processing enzymes have been shown to contain a [4Fe4S] cluster, a common redox cofactor in biology. Using DNA electrochemistry, we find that binding of the DNA polyanion promotes a negative shift in [4Fe4S] cluster potential, which corresponds thermodynamically to a ∼500-fold increase in DNA-binding affinity for the oxidized [4Fe4S]3+ cluster versus the reduced [4Fe4S]2+ cluster. This redox switch can be activated from a distance using DNA charge transport (DNA CT) chemistry. DNA-processing proteins containing the [4Fe4S] cluster are enumerated, with possible roles for the redox switch highlighted. A model is described where repair proteins may signal one another using DNA-mediated charge transport as a first step in their search for lesions. The redox switch in eukaryotic DNA primases appears to regulate polymerase handoff, and in DNA polymerase δ, the redox switch provides a means to modulate replication in response to oxidative stress. We thus describe redox signaling interactions of DNA-processing [4Fe4S] enzymes, as well as the most interesting potential players to consider in delineating new DNA-mediated redox signaling networks.


Subject(s)
DNA Glycosylases/chemistry , DNA Helicases/chemistry , DNA-Directed DNA Polymerase/chemistry , DNA/chemistry , Endonucleases/chemistry , Genome , Iron-Sulfur Proteins/chemistry , Animals , Bacteria/genetics , Bacteria/metabolism , DNA/metabolism , DNA/ultrastructure , DNA Damage , DNA Glycosylases/metabolism , DNA Glycosylases/ultrastructure , DNA Helicases/metabolism , DNA Helicases/ultrastructure , DNA Repair , DNA Replication , DNA-Directed DNA Polymerase/metabolism , DNA-Directed DNA Polymerase/ultrastructure , Electron Spin Resonance Spectroscopy , Endonucleases/metabolism , Endonucleases/ultrastructure , Iron-Sulfur Proteins/metabolism , Iron-Sulfur Proteins/ultrastructure , Oxidation-Reduction , Protein Binding , Signal Transduction , Thermodynamics
8.
Cell ; 175(2): 571-582.e11, 2018 10 04.
Article in English | MEDLINE | ID: mdl-30146159

ABSTRACT

Elucidating the benefits of individual microbiota-derived molecules in host animals is important for understanding the symbiosis between humans and their microbiota. The bacteria-secreted enterobactin (Ent) is an iron scavenging siderophore with presumed negative effects on hosts. However, the high prevalence of Ent-producing commensal bacteria in the human gut raises the intriguing question regarding a potential host mechanism to beneficially use Ent. We discovered an unexpected and striking role of Ent in supporting growth and the labile iron pool in C. elegans. We show that Ent promotes mitochondrial iron uptake and does so, surprisingly, by binding to the ATP synthase α subunit, which acts inside of mitochondria and independently of ATP synthase. We also demonstrated the conservation of this mechanism in mammalian cells. This study reveals a distinct paradigm for the "iron tug of war" between commensal bacteria and their hosts and an important mechanism for mitochondrial iron uptake and homeostasis.


Subject(s)
Enterobactin/physiology , Iron/metabolism , Siderophores/physiology , Adenosine Triphosphate/metabolism , Animals , Bacterial Proton-Translocating ATPases/metabolism , Bacterial Proton-Translocating ATPases/physiology , Biological Transport , Caenorhabditis elegans/metabolism , Caenorhabditis elegans Proteins/metabolism , Enterobactin/metabolism , Escherichia coli/metabolism , Escherichia coli Proteins/metabolism , Escherichia coli Proteins/physiology , HEK293 Cells , Humans , Iron/physiology , Mitochondria/metabolism
9.
Cell ; 175(5): 1418-1429.e9, 2018 11 15.
Article in English | MEDLINE | ID: mdl-30454649

ABSTRACT

We report here a simple and global strategy to map out gene functions and target pathways of drugs, toxins, or other small molecules based on "homomer dynamics" protein-fragment complementation assays (hdPCA). hdPCA measures changes in self-association (homomerization) of over 3,500 yeast proteins in yeast grown under different conditions. hdPCA complements genetic interaction measurements while eliminating the confounding effects of gene ablation. We demonstrate that hdPCA accurately predicts the effects of two longevity and health span-affecting drugs, the immunosuppressant rapamycin and the type 2 diabetes drug metformin, on cellular pathways. We also discovered an unsuspected global cellular response to metformin that resembles iron deficiency and includes a change in protein-bound iron levels. This discovery opens a new avenue to investigate molecular mechanisms for the prevention or treatment of diabetes, cancers, and other chronic diseases of aging.


Subject(s)
Iron/metabolism , Metalloproteins/metabolism , Metformin/pharmacology , Saccharomyces cerevisiae/metabolism , Sirolimus/pharmacology , Diabetes Mellitus, Type 2/drug therapy , Diabetes Mellitus, Type 2/genetics , Diabetes Mellitus, Type 2/metabolism , Genetic Complementation Test , Humans , Metalloproteins/genetics , Saccharomyces cerevisiae/genetics
10.
Cell ; 175(1): 146-158.e15, 2018 09 20.
Article in English | MEDLINE | ID: mdl-30100182

ABSTRACT

Pathogen virulence exists on a continuum. The strategies that drive symptomatic or asymptomatic infections remain largely unknown. We took advantage of the concept of lethal dose 50 (LD50) to ask which component of individual non-genetic variation between hosts defines whether they survive or succumb to infection. Using the enteric pathogen Citrobacter, we found no difference in pathogen burdens between healthy and symptomatic populations. Iron metabolism-related genes were induced in asymptomatic hosts compared to symptomatic or naive mice. Dietary iron conferred complete protection without influencing pathogen burdens, even at 1000× the lethal dose of Citrobacter. Dietary iron induced insulin resistance, increasing glucose levels in the intestine that were necessary and sufficient to suppress pathogen virulence. A short course of dietary iron drove the selection of attenuated Citrobacter strains that can transmit and asymptomatically colonize naive hosts, demonstrating that environmental factors and cooperative metabolic strategies can drive conversion of pathogens toward commensalism.


Subject(s)
Host-Pathogen Interactions/physiology , Iron/metabolism , Virulence/physiology , Animals , Asymptomatic Infections , Citrobacter rodentium/metabolism , Citrobacter rodentium/pathogenicity , Colitis/drug therapy , Colitis/metabolism , Colon/microbiology , Dietary Supplements , Enterobacteriaceae Infections/drug therapy , Female , Insulin Resistance/physiology , Intestine, Small/microbiology , Iron/pharmacology , Lethal Dose 50 , Male , Mice , Mice, Inbred C3H , Mice, Inbred DBA
11.
Immunity ; 56(2): 353-368.e6, 2023 02 14.
Article in English | MEDLINE | ID: mdl-36736321

ABSTRACT

The severity of T cell-mediated gastrointestinal (GI) diseases such as graft-versus-host disease (GVHD) and inflammatory bowel diseases correlates with a decrease in the diversity of the host gut microbiome composition characterized by loss of obligate anaerobic commensals. The mechanisms underpinning these changes in the microbial structure remain unknown. Here, we show in multiple specific pathogen-free (SPF), gnotobiotic, and germ-free murine models of GI GVHD that the initiation of the intestinal damage by the pathogenic T cells altered ambient oxygen levels in the GI tract and caused dysbiosis. The change in oxygen levels contributed to the severity of intestinal pathology in a host intestinal HIF-1α- and a microbiome-dependent manner. Regulation of intestinal ambient oxygen levels with oral iron chelation mitigated dysbiosis and reduced the severity of the GI GVHD. Thus, targeting ambient intestinal oxygen levels may represent a novel, non-immunosuppressive strategy to mitigate T cell-driven intestinal diseases.


Subject(s)
Gastrointestinal Diseases , Graft vs Host Disease , Hematopoietic Stem Cell Transplantation , Animals , Mice , Dysbiosis , Intestines/pathology , Graft vs Host Disease/pathology
12.
Cell ; 171(2): 273-285, 2017 Oct 05.
Article in English | MEDLINE | ID: mdl-28985560

ABSTRACT

Ferroptosis is a form of regulated cell death characterized by the iron-dependent accumulation of lipid hydroperoxides to lethal levels. Emerging evidence suggests that ferroptosis represents an ancient vulnerability caused by the incorporation of polyunsaturated fatty acids into cellular membranes, and cells have developed complex systems that exploit and defend against this vulnerability in different contexts. The sensitivity to ferroptosis is tightly linked to numerous biological processes, including amino acid, iron, and polyunsaturated fatty acid metabolism, and the biosynthesis of glutathione, phospholipids, NADPH, and coenzyme Q10. Ferroptosis has been implicated in the pathological cell death associated with degenerative diseases (i.e., Alzheimer's, Huntington's, and Parkinson's diseases), carcinogenesis, stroke, intracerebral hemorrhage, traumatic brain injury, ischemia-reperfusion injury, and kidney degeneration in mammals and is also implicated in heat stress in plants. Ferroptosis may also have a tumor-suppressor function that could be harnessed for cancer therapy. This Primer reviews the mechanisms underlying ferroptosis, highlights connections to other areas of biology and medicine, and recommends tools and guidelines for studying this emerging form of regulated cell death.


Subject(s)
Cell Death , Animals , Apoptosis , Humans , Iron/metabolism , Oxidation-Reduction , Reactive Oxygen Species/metabolism
13.
Cell ; 169(7): 1263-1275.e14, 2017 Jun 15.
Article in English | MEDLINE | ID: mdl-28622511

ABSTRACT

Sepsis is an often lethal syndrome resulting from maladaptive immune and metabolic responses to infection, compromising host homeostasis. Disease tolerance is a defense strategy against infection that preserves host homeostasis without exerting a direct negative impact on pathogens. Here, we demonstrate that induction of the iron-sequestering ferritin H chain (FTH) in response to polymicrobial infections is critical to establish disease tolerance to sepsis. The protective effect of FTH is exerted via a mechanism that counters iron-driven oxidative inhibition of the liver glucose-6-phosphatase (G6Pase), and in doing so, sustains endogenous glucose production via liver gluconeogenesis. This is required to prevent the development of hypoglycemia that otherwise compromises disease tolerance to sepsis. FTH overexpression or ferritin administration establish disease tolerance therapeutically. In conclusion, disease tolerance to sepsis relies on a crosstalk between adaptive responses controlling iron and glucose metabolism, required to maintain blood glucose within a physiologic range compatible with host survival.


Subject(s)
Glucose/metabolism , Iron/metabolism , Sepsis/metabolism , Animals , Apoferritins/genetics , Apoferritins/metabolism , Ceruloplasmin/metabolism , Gluconeogenesis , Glucose-6-Phosphatase/metabolism , Mice , Mice, Inbred C57BL
14.
Mol Cell ; 84(6): 1090-1100.e6, 2024 Mar 21.
Article in English | MEDLINE | ID: mdl-38340717

ABSTRACT

To maintain mitochondrial homeostasis, damaged or excessive mitochondria are culled in coordination with the physiological state of the cell. The integrated stress response (ISR) is a signaling network that recognizes diverse cellular stresses, including mitochondrial dysfunction. Because the four ISR branches converge to common outputs, it is unclear whether mitochondrial stress detected by this network can regulate mitophagy, the autophagic degradation of mitochondria. Using a whole-genome screen, we show that the heme-regulated inhibitor (HRI) branch of the ISR selectively induces mitophagy. Activation of the HRI branch results in mitochondrial localization of phosphorylated eukaryotic initiation factor 2, which we show is sufficient to induce mitophagy. The HRI mitophagy pathway operates in parallel with the mitophagy pathway controlled by the Parkinson's disease related genes PINK1 and PARKIN and is mechanistically distinct. Therefore, HRI repurposes machinery that is normally used for translational initiation to trigger mitophagy in response to mitochondrial damage.


Subject(s)
Mitophagy , Protein Kinases , Mitophagy/physiology , Protein Kinases/genetics , Protein Kinases/metabolism , Autophagy/genetics , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/metabolism , Protein Processing, Post-Translational , Signal Transduction
15.
Mol Cell ; 84(4): 802-810.e6, 2024 Feb 15.
Article in English | MEDLINE | ID: mdl-38157846

ABSTRACT

Organelle transporters define metabolic compartmentalization, and how this metabolite transport process can be modulated is poorly explored. Here, we discovered that human SLC25A39, a mitochondrial transporter critical for mitochondrial glutathione uptake, is a short-lived protein under dual regulation at the protein level. Co-immunoprecipitation mass spectrometry and CRISPR knockout (KO) in mammalian cells identified that mitochondrial m-AAA protease AFG3L2 is responsible for degrading SLC25A39 through the matrix loop 1. SLC25A39 senses mitochondrial iron-sulfur cluster using four matrix cysteine residues and inhibits its degradation. SLC25A39 protein regulation is robust in developing and mature neurons. This dual transporter regulation, by protein quality control and metabolic sensing, allows modulating mitochondrial glutathione level in response to iron homeostasis, opening avenues for exploring regulation of metabolic compartmentalization. Neuronal SLC25A39 regulation connects mitochondrial protein quality control, glutathione, and iron homeostasis, which were previously unrelated biochemical features in neurodegeneration.


Subject(s)
Iron , Mitochondria , Animals , Humans , ATPases Associated with Diverse Cellular Activities/metabolism , ATP-Dependent Proteases/metabolism , Iron/metabolism , Mitochondria/genetics , Mitochondria/metabolism , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism , Homeostasis , Glutathione/metabolism , Mammals/metabolism , Mitochondrial Membrane Transport Proteins/genetics , Mitochondrial Membrane Transport Proteins/metabolism
16.
Annu Rev Biochem ; 85: 485-514, 2016 Jun 02.
Article in English | MEDLINE | ID: mdl-27145839

ABSTRACT

Radical S-adenosylmethionine (SAM) enzymes catalyze an astonishing array of complex and chemically challenging reactions across all domains of life. Of approximately 114,000 of these enzymes, 8 are known to be present in humans: MOCS1, molybdenum cofactor biosynthesis; LIAS, lipoic acid biosynthesis; CDK5RAP1, 2-methylthio-N(6)-isopentenyladenosine biosynthesis; CDKAL1, methylthio-N(6)-threonylcarbamoyladenosine biosynthesis; TYW1, wybutosine biosynthesis; ELP3, 5-methoxycarbonylmethyl uridine; and RSAD1 and viperin, both of unknown function. Aberrations in the genes encoding these proteins result in a variety of diseases. In this review, we summarize the biochemical characterization of these 8 radical S-adenosylmethionine enzymes and, in the context of human health, describe the deleterious effects that result from such genetic mutations.


Subject(s)
Diabetes Mellitus, Type 2/genetics , Heart Defects, Congenital/genetics , Metal Metabolism, Inborn Errors/genetics , Mutation , Neurodegenerative Diseases/genetics , S-Adenosylmethionine/metabolism , Carbon-Carbon Lyases , Diabetes Mellitus, Type 2/enzymology , Diabetes Mellitus, Type 2/pathology , Gene Expression , Heart Defects, Congenital/enzymology , Heart Defects, Congenital/pathology , Histone Acetyltransferases/genetics , Histone Acetyltransferases/metabolism , Humans , Intracellular Signaling Peptides and Proteins/genetics , Intracellular Signaling Peptides and Proteins/metabolism , Iron-Sulfur Proteins/genetics , Iron-Sulfur Proteins/metabolism , Metal Metabolism, Inborn Errors/enzymology , Metal Metabolism, Inborn Errors/pathology , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Neurodegenerative Diseases/enzymology , Neurodegenerative Diseases/pathology , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Oxidoreductases/genetics , Oxidoreductases/metabolism , Oxidoreductases Acting on CH-CH Group Donors , Proteins/genetics , Proteins/metabolism , Thioctic Acid/metabolism , tRNA Methyltransferases/genetics , tRNA Methyltransferases/metabolism
17.
Mol Cell ; 83(7): 1030-1042, 2023 04 06.
Article in English | MEDLINE | ID: mdl-36977413

ABSTRACT

It is common to think about and depict biological processes as being governed by fixed pathways with specific components interconnected by concrete positive and negative interactions. However, these models may fail to effectively capture the regulation of cell biological processes that are driven by chemical mechanisms that do not rely absolutely on specific metabolites or proteins. Here, we discuss how ferroptosis, a non-apoptotic cell death mechanism with emerging links to disease, may be best understood as a highly flexible mechanism that can be executed and regulated by many functionally related metabolites and proteins. The inherent plasticity of ferroptosis has implications for how to define and study this mechanism in healthy and diseased cells and organisms.


Subject(s)
Ferroptosis , Ferroptosis/genetics , Cell Death/physiology , Iron/metabolism , Lipid Peroxidation , Phospholipid Hydroperoxide Glutathione Peroxidase/metabolism
18.
Mol Cell ; 83(12): 2059-2076.e6, 2023 Jun 15.
Article in English | MEDLINE | ID: mdl-37327776

ABSTRACT

The heme-regulated kinase HRI is activated under heme/iron deficient conditions; however, the underlying molecular mechanism is incompletely understood. Here, we show that iron-deficiency-induced HRI activation requires the mitochondrial protein DELE1. Notably, mitochondrial import of DELE1 and its subsequent protein stability are regulated by iron availability. Under steady-state conditions, DELE1 is degraded by the mitochondrial matrix-resident protease LONP1 soon after mitochondrial import. Upon iron chelation, DELE1 import is arrested, thereby stabilizing DELE1 on the mitochondrial surface to activate the HRI-mediated integrated stress response (ISR). Ablation of this DELE1-HRI-ISR pathway in an erythroid cell model enhances cell death under iron-limited conditions, suggesting a cell-protective role for this pathway in iron-demanding cell lineages. Our findings highlight mitochondrial import regulation of DELE1 as the core component of a previously unrecognized mitochondrial iron responsive pathway that elicits stress signaling following perturbation of iron homeostasis.


Subject(s)
Iron , eIF-2 Kinase , Iron/metabolism , eIF-2 Kinase/metabolism , Mitochondria/genetics , Mitochondria/metabolism , Erythroid Cells/metabolism , Heme/metabolism , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism
19.
Mol Cell ; 82(15): 2832-2843.e7, 2022 08 04.
Article in English | MEDLINE | ID: mdl-35714613

ABSTRACT

Iron is the most abundant transition metal essential for numerous cellular processes. Although most mammalian cells acquire iron through transferrin receptors, molecular players of iron utilization under iron restriction are incompletely understood. To address this, we performed metabolism-focused CRISPRa gain-of-function screens, which revealed metabolic limitations under stress conditions. Iron restriction screens identified not only expected members of iron utilization pathways but also SLCO2B1, a poorly characterized membrane carrier. SLCO2B1 expression is sufficient to increase intracellular iron, bypass the essentiality of the transferrin receptor, and enable proliferation under iron restriction. Mechanistically, SLCO2B1 mediates heme analog import in cellular assays. Heme uptake by SLCO2B1 provides sufficient iron for proliferation through heme oxygenases. Notably, SLCO2B1 is predominantly expressed in microglia in the brain, and primary Slco2b1-/- mouse microglia exhibit strong defects in heme analog import. Altogether, our work identifies SLCO2B1 as a microglia-enriched plasma membrane heme importer and provides a genetic platform to identify metabolic limitations under stress conditions.


Subject(s)
Heme , Iron , Organic Anion Transporters/metabolism , Animals , Biological Transport , Heme/genetics , Heme/metabolism , Iron/metabolism , Mammals/metabolism , Membrane Transport Proteins/metabolism , Mice , Transcriptional Activation
20.
Mol Cell ; 82(22): 4368-4385.e6, 2022 11 17.
Article in English | MEDLINE | ID: mdl-36400010

ABSTRACT

Efflux is a common mechanism of resistance to antibiotics. We show that efflux itself promotes accumulation of antibiotic-resistance mutations (ARMs). This phenomenon was initially discovered in a bacterial swarm where the linked phenotypes of high efflux and high mutation frequencies spatially segregated to the edge, driven there by motility. We have uncovered and validated a global regulatory network connecting high efflux to downregulation of specific DNA-repair pathways even in non-swarming states. The efflux-DNA repair link was corroborated in a clinical "resistome" database: genomes with mutations that increase efflux exhibit a significant increase in ARMs. Accordingly, efflux inhibitors decreased evolvability to antibiotic resistance. Swarms also revealed how bacterial populations serve as a reservoir of ARMs even in the absence of antibiotic selection pressure. High efflux at the edge births mutants that, despite compromised fitness, survive there because of reduced competition. This finding is relevant to biofilms where efflux activity is high.


Subject(s)
Anti-Bacterial Agents , Bacteria , Drug Resistance, Microbial , Biological Transport , Anti-Bacterial Agents/pharmacology , Bacteria/genetics
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