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1.
Cell ; 186(5): 1039-1049.e17, 2023 03 02.
Article in English | MEDLINE | ID: mdl-36764293

ABSTRACT

Hsp60 chaperonins and their Hsp10 cofactors assist protein folding in all living cells, constituting the paradigmatic example of molecular chaperones. Despite extensive investigations of their structure and mechanism, crucial questions regarding how these chaperonins promote folding remain unsolved. Here, we report that the bacterial Hsp60 chaperonin GroEL forms a stable, functionally relevant complex with the chaperedoxin CnoX, a protein combining a chaperone and a redox function. Binding of GroES (Hsp10 cofactor) to GroEL induces CnoX release. Cryoelectron microscopy provided crucial structural information on the GroEL-CnoX complex, showing that CnoX binds GroEL outside the substrate-binding site via a highly conserved C-terminal α-helix. Furthermore, we identified complexes in which CnoX, bound to GroEL, forms mixed disulfides with GroEL substrates, indicating that CnoX likely functions as a redox quality-control plugin for GroEL. Proteins sharing structural features with CnoX exist in eukaryotes, suggesting that Hsp60 molecular plugins have been conserved through evolution.


Subject(s)
Molecular Chaperones , Protein Folding , Cryoelectron Microscopy , Molecular Chaperones/metabolism , Oxidation-Reduction , Chaperonins/chemistry , Chaperonins/metabolism , Chaperonin 60/chemistry , Chaperonin 10/metabolism
2.
Cell ; 186(26): 5812-5825.e21, 2023 12 21.
Article in English | MEDLINE | ID: mdl-38056462

ABSTRACT

Acyl-coenzyme A (acyl-CoA) species are cofactors for numerous enzymes that acylate thousands of proteins. Here, we describe an enzyme that uses S-nitroso-CoA (SNO-CoA) as its cofactor to S-nitrosylate multiple proteins (SNO-CoA-assisted nitrosylase, SCAN). Separate domains in SCAN mediate SNO-CoA and substrate binding, allowing SCAN to selectively catalyze SNO transfer from SNO-CoA to SCAN to multiple protein targets, including the insulin receptor (INSR) and insulin receptor substrate 1 (IRS1). Insulin-stimulated S-nitrosylation of INSR/IRS1 by SCAN reduces insulin signaling physiologically, whereas increased SCAN activity in obesity causes INSR/IRS1 hypernitrosylation and insulin resistance. SCAN-deficient mice are thus protected from diabetes. In human skeletal muscle and adipose tissue, SCAN expression increases with body mass index and correlates with INSR S-nitrosylation. S-nitrosylation by SCAN/SNO-CoA thus defines a new enzyme class, a unique mode of receptor tyrosine kinase regulation, and a revised paradigm for NO function in physiology and disease.


Subject(s)
Insulin , Oxidoreductases Acting on CH-CH Group Donors , Signal Transduction , Animals , Humans , Mice , Acyl Coenzyme A/metabolism , Adipose Tissue/metabolism , Insulin Resistance , Nitric Oxide/metabolism , Oxidoreductases Acting on CH-CH Group Donors/metabolism
3.
Cell ; 185(24): 4526-4540.e18, 2022 11 23.
Article in English | MEDLINE | ID: mdl-36347253

ABSTRACT

Low-molecular-weight (LMW) thiols are small-molecule antioxidants required for the maintenance of intracellular redox homeostasis. However, many host-associated microbes, including the gastric pathogen Helicobacter pylori, unexpectedly lack LMW-thiol biosynthetic pathways. Using reactivity-guided metabolomics, we identified the unusual LMW thiol ergothioneine (EGT) in H. pylori. Dietary EGT accumulates to millimolar levels in human tissues and has been broadly implicated in mitigating disease risk. Although certain microorganisms synthesize EGT, we discovered that H. pylori acquires this LMW thiol from the host environment using a highly selective ATP-binding cassette transporter-EgtUV. EgtUV confers a competitive colonization advantage in vivo and is widely conserved in gastrointestinal microbes. Furthermore, we found that human fecal bacteria metabolize EGT, which may contribute to production of the disease-associated metabolite trimethylamine N-oxide. Collectively, our findings illustrate a previously unappreciated mechanism of microbial redox regulation in the gut and suggest that inter-kingdom competition for dietary EGT may broadly impact human health.


Subject(s)
Ergothioneine , Humans , Ergothioneine/metabolism , Antioxidants/metabolism , Oxidation-Reduction , Sulfhydryl Compounds , Molecular Weight
4.
Cell ; 184(16): 4268-4283.e20, 2021 08 05.
Article in English | MEDLINE | ID: mdl-34233163

ABSTRACT

Ultraviolet (UV) light and incompletely understood genetic and epigenetic variations determine skin color. Here we describe an UV- and microphthalmia-associated transcription factor (MITF)-independent mechanism of skin pigmentation. Targeting the mitochondrial redox-regulating enzyme nicotinamide nucleotide transhydrogenase (NNT) resulted in cellular redox changes that affect tyrosinase degradation. These changes regulate melanosome maturation and, consequently, eumelanin levels and pigmentation. Topical application of small-molecule inhibitors yielded skin darkening in human skin, and mice with decreased NNT function displayed increased pigmentation. Additionally, genetic modification of NNT in zebrafish alters melanocytic pigmentation. Analysis of four diverse human cohorts revealed significant associations of skin color, tanning, and sun protection use with various single-nucleotide polymorphisms within NNT. NNT levels were independent of UVB irradiation and redox modulation. Individuals with postinflammatory hyperpigmentation or lentigines displayed decreased skin NNT levels, suggesting an NNT-driven, redox-dependent pigmentation mechanism that can be targeted with NNT-modifying topical drugs for medical and cosmetic purposes.


Subject(s)
Microphthalmia-Associated Transcription Factor/metabolism , NADP Transhydrogenases/metabolism , Skin Pigmentation/radiation effects , Ultraviolet Rays , Animals , Cell Line , Cohort Studies , Cyclic AMP/metabolism , DNA Damage , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/pharmacology , Genetic Predisposition to Disease , Humans , Melanocytes/drug effects , Melanocytes/metabolism , Melanosomes/drug effects , Melanosomes/metabolism , Melanosomes/radiation effects , Mice , Mice, Inbred C57BL , Mitochondria/drug effects , Mitochondria/metabolism , Monophenol Monooxygenase/genetics , Monophenol Monooxygenase/metabolism , NADP Transhydrogenases/antagonists & inhibitors , Oxidation-Reduction/drug effects , Oxidation-Reduction/radiation effects , Polymorphism, Single Nucleotide/genetics , Proteasome Endopeptidase Complex/metabolism , Proteolysis/drug effects , Proteolysis/radiation effects , RNA, Messenger/genetics , RNA, Messenger/metabolism , Skin Pigmentation/drug effects , Skin Pigmentation/genetics , Ubiquitin/metabolism , Zebrafish
5.
Cell ; 180(2): 278-295.e23, 2020 01 23.
Article in English | MEDLINE | ID: mdl-31978345

ABSTRACT

Mutations in FAMIN cause arthritis and inflammatory bowel disease in early childhood, and a common genetic variant increases the risk for Crohn's disease and leprosy. We developed an unbiased liquid chromatography-mass spectrometry screen for enzymatic activity of this orphan protein. We report that FAMIN phosphorolytically cleaves adenosine into adenine and ribose-1-phosphate. Such activity was considered absent from eukaryotic metabolism. FAMIN and its prokaryotic orthologs additionally have adenosine deaminase, purine nucleoside phosphorylase, and S-methyl-5'-thioadenosine phosphorylase activity, hence, combine activities of the namesake enzymes of central purine metabolism. FAMIN enables in macrophages a purine nucleotide cycle (PNC) between adenosine and inosine monophosphate and adenylosuccinate, which consumes aspartate and releases fumarate in a manner involving fatty acid oxidation and ATP-citrate lyase activity. This macrophage PNC synchronizes mitochondrial activity with glycolysis by balancing electron transfer to mitochondria, thereby supporting glycolytic activity and promoting oxidative phosphorylation and mitochondrial H+ and phosphate recycling.


Subject(s)
Intracellular Signaling Peptides and Proteins/genetics , Intracellular Signaling Peptides and Proteins/metabolism , Adenine/metabolism , Adenosine/metabolism , Adenosine Deaminase/metabolism , Chromatography, Liquid/methods , HEK293 Cells , Hep G2 Cells , Humans , Intracellular Signaling Peptides and Proteins/physiology , Mass Spectrometry/methods , Multifunctional Enzymes/genetics , Phosphorylation , Proteins/genetics , Purine Nucleotides/metabolism , Purines/metabolism
6.
Annu Rev Biochem ; 88: 605-633, 2019 06 20.
Article in English | MEDLINE | ID: mdl-31018111

ABSTRACT

Reactive oxygen species (ROS) encompass a collection of intricately linked chemical entities characterized by individually distinct physicochemical properties and biological reactivities. Although excessive ROS generation is well known to underpin disease development, it has become increasingly evident that ROS also play central roles in redox regulation and normal physiology. A major challenge in uncovering the relevant biological mechanisms and deconvoluting the apparently paradoxical roles of distinct ROS in human health and disease lies in the selective and sensitive detection of these transient species in the complex biological milieu. Small-molecule-based fluorescent sensors enable molecular imaging of ROS with great spatial and temporal resolution and have thus been appreciated as excellent tools for aiding discoveries in modern redox biology. We review a selection of state-of-the-art sensors with demonstrated utility in biological systems. By providing a systematic overview based on underlying chemical sensing mechanisms, we wish to highlight the strengths and weaknesses in prior sensor works and propose some guiding principles for the development of future probes.


Subject(s)
Biosensing Techniques/methods , Reactive Oxygen Species/analysis , Fluorescent Dyes , Optical Imaging , Oxidation-Reduction , Oxidative Stress
7.
Annu Rev Biochem ; 88: 1-24, 2019 06 20.
Article in English | MEDLINE | ID: mdl-31220975

ABSTRACT

This first serious attempt at an autobiographical accounting has forced me to sit still long enough to compile my thoughts about a long personal and scientific journey. I especially hope that my trajectory will be of interest and perhaps beneficial to much younger women who are just getting started in their careers. To paraphrase from Virginia Woolf's writings in A Room of One's Own at the beginning of the 20th century, "for most of history Anonymous was a Woman." However, Ms. Woolf is also quoted as saying "nothing has really happened until it has been described," a harbinger of the enormous historical changes that were about to be enacted and recorded by women in the sciences and other disciplines. The progress in my chosen field of study-the chemical basis of enzyme action-has also been remarkable, from the first description of an enzyme's 3D structure to a growing and deep understanding of the origins of enzyme catalysis.


Subject(s)
Coenzymes/chemistry , Enzymes/chemistry , Women, Working/history , Biocatalysis , Career Choice , Coenzymes/metabolism , Enzyme Assays , Enzymes/metabolism , Female , History, 20th Century , History, 21st Century , Humans , Kinetics , Quantum Theory
8.
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
9.
Cell ; 179(5): 1222-1238.e17, 2019 11 14.
Article in English | MEDLINE | ID: mdl-31730859

ABSTRACT

Mitochondrial dysfunction is associated with a spectrum of human conditions, ranging from rare, inborn errors of metabolism to the aging process. To identify pathways that modify mitochondrial dysfunction, we performed genome-wide CRISPR screens in the presence of small-molecule mitochondrial inhibitors. We report a compendium of chemical-genetic interactions involving 191 distinct genetic modifiers, including 38 that are synthetic sick/lethal and 63 that are suppressors. Genes involved in glycolysis (PFKP), pentose phosphate pathway (G6PD), and defense against lipid peroxidation (GPX4) scored high as synthetic sick/lethal. A surprisingly large fraction of suppressors are pathway intrinsic and encode mitochondrial proteins. A striking example of such "intra-organelle" buffering is the alleviation of a chemical defect in complex V by simultaneous inhibition of complex I, which benefits cells by rebalancing redox cofactors, increasing reductive carboxylation, and promoting glycolysis. Perhaps paradoxically, certain forms of mitochondrial dysfunction may best be buffered with "second site" inhibitors to the organelle.


Subject(s)
Genes, Modifier , Mitochondria/genetics , Mitochondria/pathology , Autoantigens/metabolism , Cell Death/drug effects , Cytosol/drug effects , Cytosol/metabolism , Electron Transport Complex I/metabolism , Epistasis, Genetic/drug effects , Ferroptosis/drug effects , Ferroptosis/genetics , Genome , Glutathione Peroxidase/metabolism , Glycolysis/drug effects , Glycolysis/genetics , Humans , K562 Cells , Mitochondria/drug effects , Oligomycins/toxicity , Oxidation-Reduction , Oxidative Phosphorylation/drug effects , Pentose Phosphate Pathway/drug effects , Pentose Phosphate Pathway/genetics , Reactive Oxygen Species/metabolism , Ribonucleoproteins/metabolism , SS-B Antigen
10.
Cell ; 178(4): 807-819.e21, 2019 08 08.
Article in English | MEDLINE | ID: mdl-31398338

ABSTRACT

The NRF2 transcription factor controls a cell stress program that is implicated in cancer and there is great interest in targeting NRF2 for therapy. We show that NRF2 activity depends on Fructosamine-3-kinase (FN3K)-a kinase that triggers protein de-glycation. In its absence, NRF2 is extensively glycated, unstable, and defective at binding to small MAF proteins and transcriptional activation. Moreover, the development of hepatocellular carcinoma triggered by MYC and Keap1 inactivation depends on FN3K in vivo. N-acetyl cysteine treatment partially rescues the effects of FN3K loss on NRF2 driven tumor phenotypes indicating a key role for NRF2-mediated redox balance. Mass spectrometry reveals that other proteins undergo FN3K-sensitive glycation, including translation factors, heat shock proteins, and histones. How glycation affects their functions remains to be defined. In summary, our study reveals a surprising role for the glycation of cellular proteins and implicates FN3K as targetable modulator of NRF2 activity in cancer.


Subject(s)
Carcinoma, Hepatocellular/metabolism , Liver Neoplasms/metabolism , NF-E2-Related Factor 2/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , Animals , Carcinoma, Hepatocellular/pathology , Female , Gene Knockdown Techniques , Glucose/metabolism , Glycosylation , HEK293 Cells , Hep G2 Cells , Heterografts , Humans , Kelch-Like ECH-Associated Protein 1/metabolism , Liver Neoplasms/pathology , Mice , Mice, Inbred C57BL , Mice, Inbred NOD , Mice, Nude , Mice, SCID , Phosphotransferases (Alcohol Group Acceptor)/genetics , Proto-Oncogene Proteins c-myc/metabolism , Transduction, Genetic
11.
Cell ; 173(2): 470-484.e18, 2018 04 05.
Article in English | MEDLINE | ID: mdl-29551267

ABSTRACT

B cell activation during normal immune responses and oncogenic transformation impose increased metabolic demands on B cells and their ability to retain redox homeostasis. While the serine/threonine-protein phosphatase 2A (PP2A) was identified as a tumor suppressor in multiple types of cancer, our genetic studies revealed an essential role of PP2A in B cell tumors. Thereby, PP2A redirects glucose carbon utilization from glycolysis to the pentose phosphate pathway (PPP) to salvage oxidative stress. This unique vulnerability reflects constitutively low PPP activity in B cells and transcriptional repression of G6PD and other key PPP enzymes by the B cell transcription factors PAX5 and IKZF1. Reflecting B-cell-specific transcriptional PPP-repression, glucose carbon utilization in B cells is heavily skewed in favor of glycolysis resulting in lack of PPP-dependent antioxidant protection. These findings reveal a gatekeeper function of the PPP in a broad range of B cell malignancies that can be efficiently targeted by small molecule inhibition of PP2A and G6PD.


Subject(s)
Carbon/metabolism , Glucose/metabolism , Precursor Cell Lymphoblastic Leukemia-Lymphoma/pathology , Animals , B-Lymphocytes/cytology , B-Lymphocytes/metabolism , Cell Line, Tumor , Cell Survival , Glucosephosphate Dehydrogenase/genetics , Glucosephosphate Dehydrogenase/metabolism , Glycolysis , Humans , Ikaros Transcription Factor/genetics , Ikaros Transcription Factor/metabolism , Mice , Mice, Inbred C57BL , Mice, Inbred NOD , Oxidative Stress , PAX5 Transcription Factor/genetics , PAX5 Transcription Factor/metabolism , Pentose Phosphate Pathway , Precursor Cell Lymphoblastic Leukemia-Lymphoma/metabolism , Protein Phosphatase 2/deficiency , Protein Phosphatase 2/genetics , Protein Phosphatase 2/metabolism , Proto-Oncogene Proteins c-bcl-2/metabolism , Transcription, Genetic
12.
Annu Rev Biochem ; 86: 777-797, 2017 06 20.
Article in English | MEDLINE | ID: mdl-28654321

ABSTRACT

Severe changes in the environmental redox potential, and resulting alterations in the oxidation states of intracellular metabolites and enzymes, have historically been considered negative stressors, requiring responses that are strictly defensive. However, recent work in diverse organisms has revealed that more subtle changes in the intracellular redox state can act as signals, eliciting responses with benefits beyond defense and detoxification. Changes in redox state have been shown to influence or trigger chromosome segregation, sporulation, aerotaxis, and social behaviors, including luminescence as well as biofilm establishment and dispersal. Connections between redox state and complex behavior allow bacteria to link developmental choices with metabolic state and coordinate appropriate responses. Promising future directions for this area of study include metabolomic analysis of species- and condition-dependent changes in metabolite oxidation states and elucidation of the mechanisms whereby the redox state influences circadian regulation.


Subject(s)
Biofilms/growth & development , Escherichia coli Proteins/metabolism , Gene Expression Regulation, Bacterial , Membrane Proteins/metabolism , Protein Kinases/metabolism , Protein Serine-Threonine Kinases/metabolism , Spores, Bacterial/metabolism , Aliivibrio fischeri/genetics , Aliivibrio fischeri/growth & development , Aliivibrio fischeri/metabolism , Bacillus subtilis/genetics , Bacillus subtilis/growth & development , Bacillus subtilis/metabolism , Caulobacter crescentus/genetics , Caulobacter crescentus/growth & development , Caulobacter crescentus/metabolism , Escherichia coli/genetics , Escherichia coli/growth & development , Escherichia coli/metabolism , Escherichia coli Proteins/genetics , Glutathione/metabolism , Membrane Proteins/genetics , Oxidation-Reduction , Protein Kinases/genetics , Protein Serine-Threonine Kinases/genetics , Pseudomonas aeruginosa/genetics , Pseudomonas aeruginosa/growth & development , Pseudomonas aeruginosa/metabolism , Signal Transduction , Spores, Bacterial/genetics , Spores, Bacterial/growth & development , Streptomyces/genetics , Streptomyces/growth & development , Streptomyces/metabolism
13.
Annu Rev Biochem ; 86: 715-748, 2017 06 20.
Article in English | MEDLINE | ID: mdl-28441057

ABSTRACT

Oxidative stress is two sided: Whereas excessive oxidant challenge causes damage to biomolecules, maintenance of a physiological level of oxidant challenge, termed oxidative eustress, is essential for governing life processes through redox signaling. Recent interest has focused on the intricate ways by which redox signaling integrates these converse properties. Redox balance is maintained by prevention, interception, and repair, and concomitantly the regulatory potential of molecular thiol-driven master switches such as Nrf2/Keap1 or NF-κB/IκB is used for system-wide oxidative stress response. Nonradical species such as hydrogen peroxide (H2O2) or singlet molecular oxygen, rather than free-radical species, perform major second messenger functions. Chemokine-controlled NADPH oxidases and metabolically controlled mitochondrial sources of H2O2 as well as glutathione- and thioredoxin-related pathways, with powerful enzymatic back-up systems, are responsible for fine-tuning physiological redox signaling. This makes for a rich research field spanning from biochemistry and cell biology into nutritional sciences, environmental medicine, and molecular knowledge-based redox medicine.


Subject(s)
Kelch-Like ECH-Associated Protein 1/metabolism , Mitochondria/metabolism , NADPH Oxidases/metabolism , NF-E2-Related Factor 2/metabolism , NF-kappa B/metabolism , Oxidative Stress , Gene Expression Regulation , Glutathione/metabolism , Humans , Hydrogen Peroxide/metabolism , Kelch-Like ECH-Associated Protein 1/genetics , NADPH Oxidases/genetics , NF-E2-Related Factor 2/genetics , NF-KappaB Inhibitor alpha/genetics , NF-KappaB Inhibitor alpha/metabolism , NF-kappa B/genetics , Oxidation-Reduction , Signal Transduction , Singlet Oxygen/metabolism , Thioredoxins/genetics , Thioredoxins/metabolism
14.
Cell ; 171(3): 628-641.e26, 2017 Oct 19.
Article in English | MEDLINE | ID: mdl-29053969

ABSTRACT

Ferroptosis is a form of programmed cell death that is pathogenic to several acute and chronic diseases and executed via oxygenation of polyunsaturated phosphatidylethanolamines (PE) by 15-lipoxygenases (15-LO) that normally use free polyunsaturated fatty acids as substrates. Mechanisms of the altered 15-LO substrate specificity are enigmatic. We sought a common ferroptosis regulator for 15LO. We discovered that PEBP1, a scaffold protein inhibitor of protein kinase cascades, complexes with two 15LO isoforms, 15LO1 and 15LO2, and changes their substrate competence to generate hydroperoxy-PE. Inadequate reduction of hydroperoxy-PE due to insufficiency or dysfunction of a selenoperoxidase, GPX4, leads to ferroptosis. We demonstrated the importance of PEBP1-dependent regulatory mechanisms of ferroptotic death in airway epithelial cells in asthma, kidney epithelial cells in renal failure, and cortical and hippocampal neurons in brain trauma. As master regulators of ferroptotic cell death with profound implications for human disease, PEBP1/15LO complexes represent a new target for drug discovery.


Subject(s)
Acute Kidney Injury/pathology , Asthma/pathology , Brain Injuries, Traumatic/pathology , Cell Death , Phosphatidylethanolamine Binding Protein/metabolism , Acute Kidney Injury/metabolism , Animals , Apoptosis , Asthma/metabolism , Brain Injuries, Traumatic/metabolism , Cell Death/drug effects , Cell Line , Humans , Isoenzymes/metabolism , Lipoxygenase/chemistry , Lipoxygenase/metabolism , Mice , Models, Molecular , Oxazolidinones/pharmacology , Oxidation-Reduction , Phosphatidylethanolamine Binding Protein/chemistry
15.
Annu Rev Biochem ; 85: 765-92, 2016 Jun 02.
Article in English | MEDLINE | ID: mdl-27050287

ABSTRACT

Neutrophils are essential for killing bacteria and other microorganisms, and they also have a significant role in regulating the inflammatory response. Stimulated neutrophils activate their NADPH oxidase (NOX2) to generate large amounts of superoxide, which acts as a precursor of hydrogen peroxide and other reactive oxygen species that are generated by their heme enzyme myeloperoxidase. When neutrophils engulf bacteria they enclose them in small vesicles (phagosomes) into which superoxide is released by activated NOX2 on the internalized neutrophil membrane. The superoxide dismutates to hydrogen peroxide, which is used by myeloperoxidase to generate other oxidants, including the highly microbicidal species hypochlorous acid. NOX activation occurs at other sites in the cell, where it is considered to have a regulatory function. Neutrophils also release oxidants, which can modify extracellular targets and affect the function of neighboring cells. We discuss the identity and chemical properties of the specific oxidants produced by neutrophils in different situations, and what is known about oxidative mechanisms of microbial killing, inflammatory tissue damage, and signaling.


Subject(s)
Chloramines/metabolism , Hydrogen Peroxide/metabolism , Hypochlorous Acid/metabolism , Neutrophils/immunology , Superoxides/metabolism , Thiocyanates/metabolism , Cell Membrane/drug effects , Cells, Cultured , Chloramines/immunology , Gene Expression , Humans , Hydrogen Peroxide/immunology , Hypochlorous Acid/immunology , Membrane Glycoproteins/agonists , Membrane Glycoproteins/genetics , Membrane Glycoproteins/immunology , NADPH Oxidase 2 , NADPH Oxidases/genetics , NADPH Oxidases/immunology , Neutrophils/cytology , Neutrophils/drug effects , Oxidation-Reduction , Peroxidase/genetics , Peroxidase/immunology , Signal Transduction , Superoxides/immunology , Tetradecanoylphorbol Acetate/pharmacology , Thiocyanates/immunology , Zymosan/pharmacology
16.
Mol Cell ; 83(17): 3140-3154.e7, 2023 09 07.
Article in English | MEDLINE | ID: mdl-37572670

ABSTRACT

Peroxiredoxins (Prdxs) utilize reversibly oxidized cysteine residues to reduce peroxides and promote H2O2 signal transduction, including H2O2-induced activation of P38 MAPK. Prdxs form H2O2-induced disulfide complexes with many proteins, including multiple kinases involved in P38 MAPK signaling. Here, we show that a genetically encoded fusion between a Prdx and P38 MAPK is sufficient to hyperactivate the kinase in yeast and human cells by a mechanism that does not require the H2O2-sensing cysteine of the Prdx. We demonstrate that a P38-Prdx fusion protein compensates for loss of the yeast scaffold protein Mcs4 and MAP3K activity, driving yeast into mitosis. Based on our findings, we propose that the H2O2-induced formation of Prdx-MAPK disulfide complexes provides an alternative scaffold and signaling platform for MAPKK-MAPK signaling. The demonstration that formation of a complex with a Prdx is sufficient to modify the activity of a kinase has broad implications for peroxide-based signal transduction in eukaryotes.


Subject(s)
Peroxiredoxins , p38 Mitogen-Activated Protein Kinases , Humans , Cysteine/metabolism , Disulfides , Hydrogen Peroxide/pharmacology , Hydrogen Peroxide/metabolism , Oxidation-Reduction , p38 Mitogen-Activated Protein Kinases/genetics , p38 Mitogen-Activated Protein Kinases/metabolism , Peroxiredoxins/genetics , Peroxiredoxins/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism
17.
Mol Cell ; 83(6): 942-960.e9, 2023 03 16.
Article in English | MEDLINE | ID: mdl-36893757

ABSTRACT

Oxygen is toxic across all three domains of life. Yet, the underlying molecular mechanisms remain largely unknown. Here, we systematically investigate the major cellular pathways affected by excess molecular oxygen. We find that hyperoxia destabilizes a specific subset of Fe-S cluster (ISC)-containing proteins, resulting in impaired diphthamide synthesis, purine metabolism, nucleotide excision repair, and electron transport chain (ETC) function. Our findings translate to primary human lung cells and a mouse model of pulmonary oxygen toxicity. We demonstrate that the ETC is the most vulnerable to damage, resulting in decreased mitochondrial oxygen consumption. This leads to further tissue hyperoxia and cyclic damage of the additional ISC-containing pathways. In support of this model, primary ETC dysfunction in the Ndufs4 KO mouse model causes lung tissue hyperoxia and dramatically increases sensitivity to hyperoxia-mediated ISC damage. This work has important implications for hyperoxia pathologies, including bronchopulmonary dysplasia, ischemia-reperfusion injury, aging, and mitochondrial disorders.


Subject(s)
Hyperoxia , Mitochondrial Diseases , Animals , Humans , Mice , Electron Transport Complex I/metabolism , Hyperoxia/metabolism , Hyperoxia/pathology , Lung/metabolism , Mitochondria/metabolism , Mitochondrial Diseases/metabolism , Oxygen/metabolism
18.
Mol Cell ; 83(19): 3502-3519.e11, 2023 Oct 05.
Article in English | MEDLINE | ID: mdl-37751742

ABSTRACT

Cyst(e)ine is a key precursor for the synthesis of glutathione (GSH), which protects cancer cells from oxidative stress. Cyst(e)ine is stored in lysosomes, but its role in redox regulation is unclear. Here, we show that breast cancer cells upregulate major facilitator superfamily domain containing 12 (MFSD12) to increase lysosomal cyst(e)ine storage, which is released by cystinosin (CTNS) to maintain GSH levels and buffer oxidative stress. We find that mTORC1 regulates MFSD12 by directly phosphorylating residue T254, while mTORC1 inhibition enhances lysosome acidification that activates CTNS. This switch modulates lysosomal cyst(e)ine levels in response to oxidative stress, fine-tuning redox homeostasis to enhance cell fitness. MFSD12-T254A mutant inhibits MFSD12 function and suppresses tumor progression. Moreover, MFSD12 overexpression correlates with poor neoadjuvant chemotherapy response and prognosis in breast cancer patients. Our findings reveal the critical role of lysosomal cyst(e)ine storage in adaptive redox homeostasis and suggest that MFSD12 is a potential therapeutic target.

19.
Annu Rev Biochem ; 84: 923-46, 2015.
Article in English | MEDLINE | ID: mdl-25784051

ABSTRACT

Polysaccharide monooxygenases (PMOs), also known as lytic PMOs (LPMOs), enhance the depolymerization of recalcitrant polysaccharides by hydrolytic enzymes and are found in the majority of cellulolytic fungi and actinomycete bacteria. For more than a decade, PMOs were incorrectly annotated as family 61 glycoside hydrolases (GH61s) or family 33 carbohydrate-binding modules (CBM33s). PMOs have an unusual surface-exposed active site with a tightly bound Cu(II) ion that catalyzes the regioselective hydroxylation of crystalline cellulose, leading to glycosidic bond cleavage. The genomes of some cellulolytic fungi contain more than 20 genes encoding cellulose-active PMOs, suggesting a diversity of biological activities. PMOs show great promise in reducing the cost of conversion of lignocellulosic biomass to fermentable sugars; however, many questions remain about their reaction mechanism and biological function. This review addresses, in depth, the structural and mechanistic aspects of oxidative depolymerization of cellulose by PMOs and considers their biological function and phylogenetic diversity.


Subject(s)
Cellulose/metabolism , Mixed Function Oxygenases/chemistry , Mixed Function Oxygenases/metabolism , Bacteria/metabolism , Fungi/enzymology , Fungi/metabolism , Phylogeny , Plant Cells/chemistry , Plant Cells/metabolism , Plants/metabolism , Polysaccharides/metabolism
20.
Immunity ; 54(5): 976-987.e7, 2021 05 11.
Article in English | MEDLINE | ID: mdl-33979589

ABSTRACT

Aerobic glycolysis-the Warburg effect-converts glucose to lactate via the enzyme lactate dehydrogenase A (LDHA) and is a metabolic feature of effector T cells. Cells generate ATP through various mechanisms and Warburg metabolism is comparatively an energy-inefficient glucose catabolism pathway. Here, we examined the effect of ATP generated via aerobic glycolysis in antigen-driven T cell responses. Cd4CreLdhafl/fl mice were resistant to Th17-cell-mediated experimental autoimmune encephalomyelitis and exhibited defective T cell activation, migration, proliferation, and differentiation. LDHA deficiency crippled cellular redox balance and inhibited ATP production, diminishing PI3K-dependent activation of Akt kinase and thereby phosphorylation-mediated inhibition of Foxo1, a transcriptional repressor of T cell activation programs. Th17-cell-specific expression of an Akt-insensitive Foxo1 recapitulated the defects seen in Cd4CreLdhafl/fl mice. Induction of LDHA required PI3K signaling and LDHA deficiency impaired PI3K-catalyzed PIP3 generation. Thus, Warburg metabolism augments glycolytic ATP production, fueling a PI3K-centered positive feedback regulatory circuit that drives effector T cell responses.


Subject(s)
Adenosine Triphosphate/metabolism , Phosphatidylinositol 3-Kinase/metabolism , Signal Transduction/physiology , Th17 Cells/metabolism , Animals , Cell Differentiation/physiology , Cell Line , Cell Proliferation/physiology , Female , Gene Expression Regulation, Neoplastic/physiology , Glucose/metabolism , Glycogen Storage Disease/metabolism , Glycolysis/physiology , L-Lactate Dehydrogenase/deficiency , L-Lactate Dehydrogenase/metabolism , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic
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