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1.
J Transl Med ; 22(1): 622, 2024 Jul 04.
Article in English | MEDLINE | ID: mdl-38965536

ABSTRACT

BACKGROUND: Inhibition of kinases is the ever-expanding therapeutic approach to various types of cancer. Typically, assessment of the treatment response is accomplished by standard, volumetric imaging procedures, performed weeks to months after the onset of treatment, given the predominantly cytostatic nature of the kinase inhibitors, at least when used as single agents. Therefore, there is a great clinical need to develop new monitoring approaches to detect the response to kinase inhibition much more promptly. Noninvasive 1H magnetic resonance spectroscopy (MRS) can measure in vitro and in vivo concentration of key metabolites which may potentially serve as biomarkers of response to kinase inhibition. METHODS: We employed mantle cell lymphoma (MCL) cell lines demonstrating markedly diverse sensitivity of inhibition of Bruton's tyrosine kinase (BTK) regarding their growth and studied in-depth effects of the inhibition on various aspects of cell metabolism including metabolite synthesis using metabolomics, glucose and oxidative metabolism by Seahorse XF technology, and concentration of index metabolites lactate, alanine, total choline and taurine by 1H MRS. RESULTS: Effective BTK inhibition profoundly suppressed key cell metabolic pathways, foremost pyrimidine and purine synthesis, the citrate (TCA) cycle, glycolysis, and pyruvate and glutamine/alanine metabolism. It also inhibited glycolysis and amino acid-related oxidative metabolism. Finally, it profoundly and quickly decreased concentration of lactate (a product of mainly glycolysis) and alanine (an indicator of amino acid metabolism) and, less universally total choline both in vitro and in vivo, in the MCL xenotransplant model. The decrease correlated directly with the degree of inhibition of lymphoma cell expansion and tumor growth. CONCLUSIONS: Our results indicate that BTK inhibition exerts a broad and profound suppressive effect on cell metabolism and that the affected index metabolites such as lactate, alanine may serve as early, sensitive, and reliable biomarkers of inhibition in lymphoma patients detectable by noninvasive MRS-based imaging method. This kind of imaging-based detection may also be applicable to other kinase inhibitors, as well as diverse lymphoid and non-lymphoid malignancies.


Subject(s)
Agammaglobulinaemia Tyrosine Kinase , Lymphoma, Mantle-Cell , Protein Kinase Inhibitors , Humans , Cell Line, Tumor , Protein Kinase Inhibitors/pharmacology , Animals , Agammaglobulinaemia Tyrosine Kinase/metabolism , Agammaglobulinaemia Tyrosine Kinase/antagonists & inhibitors , Lymphoma, Mantle-Cell/metabolism , Lymphoma, Mantle-Cell/pathology , Lymphoma, Mantle-Cell/drug therapy , Signal Transduction/drug effects , Biomarkers, Tumor/metabolism , Cell Proliferation/drug effects , Xenograft Model Antitumor Assays , Mice , Biomarkers/metabolism
2.
Res Sq ; 2024 May 07.
Article in English | MEDLINE | ID: mdl-38766088

ABSTRACT

Activated T cells undergo a metabolic shift to aerobic glycolysis to support the energetic demands of proliferation, differentiation, and cytolytic function. Transmembrane glucose flux is facilitated by glucose transporters (GLUT) that play a vital role in T cell metabolic reprogramming and anti-tumour function. GLUT isoforms are regulated at the level of expression and subcellular distribution. GLUTs also display preferential selectivity for carbohydrate macronutrients including glucose, galactose, and fructose. GLUT5, which selectively transports fructose over glucose, has never been explored as a genetic engineering strategy to enhance CAR-T cells in fructose-rich tumour environments. Fructose levels are significantly elevated in the bone marrow and the plasma of acute myeloid leukaemia (AML) patients. Here, we demonstrate that the expression of wild-type GLUT5 restores T cell metabolic fitness in glucose-free, high fructose conditions. We find that fructose supports maximal glycolytic capacity and ATP replenishment rates in GLUT5-expressing T cells. Using steady state tracer technology, we show that 13C6 fructose supports glycolytic reprogramming and TCA anaplerosis in CAR-T cells undergoing log phase expansion. In cytotoxicity assays, GLUT5 rescues T cell cytolytic function in glucose-free medium. The fructose/GLUT5 metabolic axis also supports maximal migratory velocity, which provides mechanistic insight into why GLUT5-expressing CAR-Ts have superior effector function as they undergo "hit-and-run" serial killing. These findings translate to superior anti-tumour function in a xenograft model of AML. In fact, we found that GLUT5 enhances CAR-T cell anti-tumour function in vivo without any need for fructose intervention. Accordingly, we hypothesize that GLUT5 is sufficient to enhance CAR-T resilience by increasing the cells' competitiveness for glucose at physiologic metabolite levels. Our findings have immediate translational relevance by providing the first evidence that GLUT5 confers a competitive edge in a fructose-enriched milieu, and is a novel approach to overcome glucose depletion in hostile tumour microenvironments (TMEs).

3.
Blood Adv ; 8(3): 653-666, 2024 02 13.
Article in English | MEDLINE | ID: mdl-38113468

ABSTRACT

ABSTRACT: Lymphodepletion (LD) is an integral component of chimeric antigen receptor T-cell (CART) immunotherapies. In this study, we compared the safety and efficacy of bendamustine (Benda) to standard fludarabine/cyclophosphamide (Flu/Cy) LD before CD19-directed, CD28-costimulated CART axicabtagene ciloleucel (axi-cel) for patients with large B-cell lymphoma (LBCL) and follicular lymphoma (FL). We analyzed 59 patients diagnosed with LBCL (n = 48) and FL (n = 11) consecutively treated with axi-cel at the University of Pennsylvania. We also analyzed serum samples for cytokine levels and metabolomic changes before and after LD. Flu/Cy and Benda demonstrated similar efficacy, with complete remission rates of 51.4% and 50.0% (P = .981), respectively, and similar progression-free and overall survivals. Any-grade cytokine-release syndrome occurred in 91.9% of patients receiving Flu/Cy vs 72.7% of patients receiving Benda (P = .048); any-grade neurotoxicity after Flu/Cy occurred in 45.9% of patients and after Benda in 18.2% of patients (P = .031). In addition, Flu/Cy was associated with a higher incidence of grade ≥3 neutropenia (100% vs 54.5%; P < .001), infections (78.4% vs 27.3%; P < .001), and neutropenic fever (78.4% vs 13.6%; P < .001). These results were confirmed both in patients with LBCL and those with FL. Mechanistically, patients with Flu/Cy had a greater increase in inflammatory cytokines associated with neurotoxicity and reduced levels of metabolites critical for redox balance and biosynthesis. This study suggests that Benda LD may be a safe alternative to Flu/Cy for CD28-based CART CD19-directed immunotherapy with similar efficacy and reduced toxicities. Benda is associated with reduced levels of inflammatory cytokines and increased anabolic metabolites.


Subject(s)
Biological Products , Cytokines , Lymphoma, Follicular , Humans , Bendamustine Hydrochloride/adverse effects , CD28 Antigens , Immunotherapy, Adoptive/adverse effects , Immunotherapy, Adoptive/methods , Cyclophosphamide
4.
Biochemistry (Mosc) ; 88(Suppl 1): S1-S20, 2023 Jan.
Article in English | MEDLINE | ID: mdl-37069111

ABSTRACT

The Nobel Prize Winner (1931) Dr. Otto H. Warburg had established that the primary energy source of the cancer cell is aerobic glycolysis (the Warburg effect). He also postulated the hypothesis about "the prime cause of cancer", which is a matter of debate nowadays. Contrary to the hypothesis, his discovery was recognized entirely. However, the discovery had almost vanished in the heat of battle about the hypothesis. The prime cause of cancer is essential for the prevention and diagnosis, yet the effects that influence tumor growth are more important for cancer treatment. Due to the Warburg effect, a large amount of data has been accumulated on biochemical changes in the cell and the organism as a whole. Due to the Warburg effect, the recovery of normal biochemistry and oxygen respiration and the restoration of the work of mitochondria of cancer cells can inhibit tumor growth and lead to remission. Here, we review the current knowledge on the inhibition of abnormal glycolysis, neutralization of its consequences, and normalization of biochemical parameters, as well as recovery of oxygen respiration of a cancer cell and mitochondrial function from the point of view of classical biochemistry and organic chemistry.


Subject(s)
Chemistry, Organic , Neoplasms , Humans , Glycolysis/physiology , Energy Metabolism , Neoplasms/therapy , Neoplasms/pathology , Oxygen
5.
NMR Biomed ; 36(4): e4716, 2023 04.
Article in English | MEDLINE | ID: mdl-35196744

ABSTRACT

Bonded cumomers are sets of isotopomers of 13 C-labeled metabolites containing a particular sequence of contiguously or singly labeled carbon atoms. Only these isotopomers contribute to multiplet structure in the 13 C NMR spectrum. We discuss the application of this technique to the study of quantitative tumor metabolism, bioenergetics, and the Warburg effect. The advantages and sensitivity of bonded cumomer analysis over positional enrichment analysis are discussed. When sensitivity requirements are met, bonded cumomer analysis enables the extraction of fluxes through specific metabolic pathways with higher precision. In conjunction with isotopomer control analysis, we evaluate the sensitivity of experimentally measurable metabolite multiplets to determine the robustness of flux analysis in 13 C spectra of tumors. This review examines the role of glycolytic and tricarboxylic acid cycle metabolism with special emphasis on flux through the pentose phosphate pathway (PPP). The impact of reversibility of the nonoxidative branch of the PPP with various 13 C glucose tracers on fine-structure multiplets is analyzed.


Subject(s)
Models, Biological , Neoplasms , Humans , Magnetic Resonance Spectroscopy/methods , Energy Metabolism , Citric Acid Cycle , Glucose/metabolism , Carbon Isotopes/metabolism
7.
Mol Cancer Res ; 17(6): 1365-1377, 2019 06.
Article in English | MEDLINE | ID: mdl-30862686

ABSTRACT

Current methods to evaluate effects of kinase inhibitors in cancer are suboptimal. Analysis of changes in cancer metabolism in response to the inhibitors creates an opportunity for better understanding of the interplay between cell signaling and metabolism and, from the translational perspective, potential early evaluation of response to the inhibitors as well as treatment optimization. We performed genomic, metabolomic, and fluxomic analyses to evaluate the mechanism of action of the Bruton's tyrosine kinase (BTK) inhibitor ibrutinib (IBR) in mantle cell lymphoma (MCL) cells. Our comprehensive analysis of the data generated by these diverse technologies revealed that IBR profoundly affected key metabolic pathways in IBR-sensitive cells including glycolysis, pentose phosphate pathway, TCA cycle, and glutaminolysis while having much less effects on IBR-poorly responsive cells. Changes in 1H magnetic resonance spectroscopy (MRS)-detectable lactate and alanine concentrations emerged as promising biomarkers of response and resistance to IBR as demonstrated from experiments on various MCL cell lines. The metabolic network analysis on the 13C MRS and 13C LC/MS experimental data provided quantitative estimates of various intracellular fluxes and energy contributions. Glutaminolysis contributed over 50% of mitochondrial ATP production. Administration of the glutaminase inhibitor CB-839 induced growth suppression of the IBR-poorly responsive cells. IMPLICATIONS: Our study demonstrates application of the advanced metabolomic/fluxomic techniques for comprehensive, precise, and prompt evaluations of the effects of kinase inhibition in MCL cells and has strong translational implications by potentially permitting early evaluation of cancer patient response versus resistance to kinase inhibitors and on design of novel therapies for overcoming the resistance.


Subject(s)
Agammaglobulinaemia Tyrosine Kinase/metabolism , Lymphoma, Mantle-Cell/drug therapy , Lymphoma, Mantle-Cell/metabolism , Metabolic Networks and Pathways/physiology , Protein Kinase Inhibitors/pharmacology , Protein-Tyrosine Kinases/metabolism , Adenine/analogs & derivatives , Benzeneacetamides/pharmacology , Biomarkers, Tumor/metabolism , Cell Line, Tumor , Glutaminase/metabolism , Humans , Metabolic Networks and Pathways/drug effects , Piperidines , Pyrazoles/pharmacology , Pyrimidines/pharmacology , Signal Transduction/drug effects , Signal Transduction/physiology , Thiadiazoles/pharmacology
8.
NMR Biomed ; 31(12): e4012, 2018 12.
Article in English | MEDLINE | ID: mdl-30276897

ABSTRACT

Carbon-13 NMR spectroscopy (13 C MRS) offers the unique capability to measure brain metabolic rates in vivo. Hyperpolarized 13 C reduces the time required to assess brain metabolism from hours to minutes when compared with conventional 13 C MRS. This study investigates metabolism of hyperpolarized [1-13 C]pyruvate and [2-13 C]pyruvate in the rat brain in vivo under various anesthetics: pentobarbital, isoflurane, α-chloralose, and morphine. The apparent metabolic rate from pyruvate to lactate modeled using time courses obtained after injection of hyperpolarized [1-13 C]pyruvate was significantly greater for isoflurane than for all other anesthetic conditions, and significantly greater for morphine than for α-chloralose. The apparent metabolic rate from pyruvate to bicarbonate was significantly greater for morphine than for all other anesthetic conditions, and significantly lower for pentobarbital than for α-chloralose. Results show that relative TCA cycle rates determined from hyperpolarized 13 C data are consistent with rates previously measured using conventional 13 C MRS under similar anesthetic conditions, and that using morphine for sedation greatly improves detection of downstream metabolic products compared with other anesthetics.


Subject(s)
Anesthesia , Brain/metabolism , Carbon Isotopes/chemistry , Pyruvic Acid/metabolism , Animals , Kinetics , Male , Rats, Sprague-Dawley
9.
Cell Metab ; 26(4): 648-659.e8, 2017 Oct 03.
Article in English | MEDLINE | ID: mdl-28918937

ABSTRACT

Targeted cancer therapies that use genetics are successful, but principles for selectively targeting tumor metabolism that is also dependent on the environment remain unknown. We now show that differences in rate-controlling enzymes during the Warburg effect (WE), the most prominent hallmark of cancer cell metabolism, can be used to predict a response to targeting glucose metabolism. We establish a natural product, koningic acid (KA), to be a selective inhibitor of GAPDH, an enzyme we characterize to have differential control properties over metabolism during the WE. With machine learning and integrated pharmacogenomics and metabolomics, we demonstrate that KA efficacy is not determined by the status of individual genes, but by the quantitative extent of the WE, leading to a therapeutic window in vivo. Thus, the basis of targeting the WE can be encoded by molecular principles that extend beyond the status of individual genes.


Subject(s)
Enzyme Inhibitors/pharmacology , Glucose/metabolism , Glyceraldehyde-3-Phosphate Dehydrogenases/antagonists & inhibitors , Glycolysis/drug effects , Neoplasms/drug therapy , Animals , Cell Line, Tumor , Enzyme Inhibitors/therapeutic use , Glyceraldehyde-3-Phosphate Dehydrogenases/metabolism , Humans , Machine Learning , Metabolic Flux Analysis , Metabolomics , Mice, Inbred C57BL , Models, Biological , Molecular Targeted Therapy , Neoplasms/metabolism , Sesquiterpenes/pharmacology , Sesquiterpenes/therapeutic use , Systems Biology
10.
Biophys J ; 111(5): 1088-100, 2016 Sep 06.
Article in English | MEDLINE | ID: mdl-27602736

ABSTRACT

The Warburg effect, or aerobic glycolysis, is marked by the increased metabolism of glucose to lactate in the presence of oxygen. Despite its widespread prevalence in physiology and cancer biology, the causes and consequences remain incompletely understood. Here, we show that a simple balance of interacting fluxes in glycolysis creates constraints that impose the necessary conditions for glycolytic flux to generate lactate as opposed to entering into the mitochondria. These conditions are determined by cellular redox and energy demands. By analyzing the constraints and sampling the feasible region of the model, we further study how cell proliferation rate and mitochondria-associated NADH oxidizing and ATP producing fluxes are interlinked. Together this analysis illustrates the simplicity of the origins of the Warburg effect by identifying the flux distributions that are necessary for its instantiation.


Subject(s)
Glucose/metabolism , Glycolysis/physiology , Lactic Acid/metabolism , Models, Molecular , Oxygen/metabolism , Adenosine Triphosphate/chemistry , Adenosine Triphosphate/metabolism , Algorithms , Breast Neoplasms/metabolism , Carcinoma/metabolism , Cell Line, Tumor , Cell Proliferation/physiology , Glucose/chemistry , Humans , Lactic Acid/chemistry , Mitochondria/chemistry , Mitochondria/metabolism , NAD/chemistry , NAD/metabolism , Oxidation-Reduction , Oxygen/chemistry
11.
Biochim Biophys Acta ; 1866(2): 151-162, 2016 12.
Article in English | MEDLINE | ID: mdl-27497601

ABSTRACT

Lonidamine (LND) was initially introduced as an antispermatogenic agent. It was later found to have anticancer activity sensitizing tumors to chemo-, radio-, and photodynamic-therapy and hyperthermia. Although the mechanism of action remained unclear, LND treatment has been known to target metabolic pathways in cancer cells. It has been reported to alter the bioenergetics of tumor cells by inhibiting glycolysis and mitochondrial respiration, while indirect evidence suggested that it also inhibited l-lactic acid efflux from cells mediated by members of the proton-linked monocarboxylate transporter (MCT) family and also pyruvate uptake into the mitochondria by the mitochondrial pyruvate carrier (MPC). Recent studies have demonstrated that LND potently inhibits MPC activity in isolated rat liver mitochondria (Ki 2.5µM) and cooperatively inhibits l-lactate transport by MCT1, MCT2 and MCT4 expressed in Xenopus laevis oocytes with K0.5 and Hill coefficient values of 36-40µM and 1.65-1.85, respectively. In rat heart mitochondria LND inhibited the MPC with similar potency and uncoupled oxidation of pyruvate was inhibited more effectively (IC50~7µM) than other substrates including glutamate (IC50~20µM). LND inhibits the succinate-ubiquinone reductase activity of respiratory Complex II without fully blocking succinate dehydrogenase activity. LND also induces cellular reactive oxygen species through Complex II and has been reported to promote cell death by suppression of the pentose phosphate pathway, which resulted in inhibition of NADPH and glutathione generation. We conclude that MPC inhibition is the most sensitive anti-tumour target for LND, with additional inhibitory effects on MCT-mediated l-lactic acid efflux, Complex II and glutamine/glutamate oxidation.


Subject(s)
Antineoplastic Agents/pharmacology , Indazoles/pharmacology , Animals , Hexokinase/antagonists & inhibitors , Humans , Hydrogen-Ion Concentration , Indazoles/toxicity , Membrane Transport Proteins/physiology , Mitochondria/drug effects , Mitochondria/metabolism , Mitochondrial Membrane Transport Proteins , Monocarboxylic Acid Transporters/metabolism , Pyruvic Acid/metabolism
12.
Front Oncol ; 6: 135, 2016.
Article in English | MEDLINE | ID: mdl-27379200

ABSTRACT

We present the first validated metabolic network model for analysis of flux through key pathways of tumor intermediary metabolism, including glycolysis, the oxidative and non-oxidative arms of the pentose pyrophosphate shunt, the TCA cycle as well as its anaplerotic pathways, pyruvate-malate shuttling, glutaminolysis, and fatty acid biosynthesis and oxidation. The model that is called Bonded Cumomer Analysis for application to (13)C magnetic resonance spectroscopy ((13)C MRS) data and Fragmented Cumomer Analysis for mass spectrometric data is a refined and efficient form of isotopomer analysis that can readily be expanded to incorporate glycogen, phospholipid, and other pathways thereby encompassing all the key pathways of tumor intermediary metabolism. Validation was achieved by demonstrating agreement of experimental measurements of the metabolic rates of oxygen consumption, glucose consumption, lactate production, and glutamate pool size with independent measurements of these parameters in cultured human DB-1 melanoma cells. These cumomer models have been applied to studies of DB-1 melanoma and DLCL2 human diffuse large B-cell lymphoma cells in culture and as xenografts in nude mice at 9.4 T. The latter studies demonstrate the potential translation of these methods to in situ studies of human tumor metabolism by MRS with stable (13)C isotopically labeled substrates on instruments operating at high magnetic fields (≥7 T). The melanoma studies indicate that this tumor line obtains 51% of its ATP by mitochondrial metabolism and 49% by glycolytic metabolism under both euglycemic (5 mM glucose) and hyperglycemic conditions (26 mM glucose). While a high level of glutamine uptake is detected corresponding to ~50% of TCA cycle flux under hyperglycemic conditions, and ~100% of TCA cycle flux under euglycemic conditions, glutaminolysis flux and its contributions to ATP synthesis were very small. Studies of human lymphoma cells demonstrated that inhibition of mammalian target of rapamycin (mTOR) signaling produced changes in flux through the glycolytic, pentose shunt, and TCA cycle pathways that were evident within 8 h of treatment and increased at 24 and 48 h. Lactate was demonstrated to be a suitable biomarker of mTOR inhibition that could readily be monitored by (1)H MRS and perhaps also by FDG-PET and hyperpolarized (13)C MRS methods.

13.
Nature ; 532(7598): 255-8, 2016 Apr 14.
Article in English | MEDLINE | ID: mdl-27049945

ABSTRACT

Cells receive growth and survival stimuli through their attachment to an extracellular matrix (ECM). Overcoming the addiction to ECM-induced signals is required for anchorage-independent growth, a property of most malignant cells. Detachment from ECM is associated with enhanced production of reactive oxygen species (ROS) owing to altered glucose metabolism. Here we identify an unconventional pathway that supports redox homeostasis and growth during adaptation to anchorage independence. We observed that detachment from monolayer culture and growth as anchorage-independent tumour spheroids was accompanied by changes in both glucose and glutamine metabolism. Specifically, oxidation of both nutrients was suppressed in spheroids, whereas reductive formation of citrate from glutamine was enhanced. Reductive glutamine metabolism was highly dependent on cytosolic isocitrate dehydrogenase-1 (IDH1), because the activity was suppressed in cells homozygous null for IDH1 or treated with an IDH1 inhibitor. This activity occurred in absence of hypoxia, a well-known inducer of reductive metabolism. Rather, IDH1 mitigated mitochondrial ROS in spheroids, and suppressing IDH1 reduced spheroid growth through a mechanism requiring mitochondrial ROS. Isotope tracing revealed that in spheroids, isocitrate/citrate produced reductively in the cytosol could enter the mitochondria and participate in oxidative metabolism, including oxidation by IDH2. This generates NADPH in the mitochondria, enabling cells to mitigate mitochondrial ROS and maximize growth. Neither IDH1 nor IDH2 was necessary for monolayer growth, but deleting either one enhanced mitochondrial ROS and reduced spheroid size, as did deletion of the mitochondrial citrate transporter protein. Together, the data indicate that adaptation to anchorage independence requires a fundamental change in citrate metabolism, initiated by IDH1-dependent reductive carboxylation and culminating in suppression of mitochondrial ROS.


Subject(s)
Citric Acid/metabolism , Homeostasis , Isocitrate Dehydrogenase/metabolism , Mitochondria/metabolism , Neoplasms/metabolism , Neoplasms/pathology , Reactive Oxygen Species/metabolism , Cell Adhesion , Cell Hypoxia , Cell Line, Tumor , Cell Proliferation , Contact Inhibition , Cytosol/enzymology , Cytosol/metabolism , Extracellular Matrix/metabolism , Glucose/metabolism , Glutamic Acid/metabolism , Glutamine/metabolism , Humans , Isocitrate Dehydrogenase/antagonists & inhibitors , Isocitrate Dehydrogenase/deficiency , Isocitrate Dehydrogenase/genetics , Isocitrates/metabolism , NADP/biosynthesis , Neoplasms/enzymology , Oxidation-Reduction , Oxidative Stress , Spheroids, Cellular/metabolism , Spheroids, Cellular/pathology
14.
J Biol Chem ; 291(10): 5157-71, 2016 Mar 04.
Article in English | MEDLINE | ID: mdl-26703469

ABSTRACT

A network model for the determination of tumor metabolic fluxes from (13)C NMR kinetic isotopomer data has been developed and validated with perfused human DB-1 melanoma cells carrying the BRAF V600E mutation, which promotes oxidative metabolism. The model generated in the bonded cumomer formalism describes key pathways of tumor intermediary metabolism and yields dynamic curves for positional isotopic enrichment and spin-spin multiplets. Cells attached to microcarrier beads were perfused with 26 mm [1,6-(13)C2]glucose under normoxic conditions at 37 °C and monitored by (13)C NMR spectroscopy. Excellent agreement between model-predicted and experimentally measured values of the rates of oxygen and glucose consumption, lactate production, and glutamate pool size validated the model. ATP production by glycolytic and oxidative metabolism were compared under hyperglycemic normoxic conditions; 51% of the energy came from oxidative phosphorylation and 49% came from glycolysis. Even though the rate of glutamine uptake was ∼ 50% of the tricarboxylic acid cycle flux, the rate of ATP production from glutamine was essentially zero (no glutaminolysis). De novo fatty acid production was ∼ 6% of the tricarboxylic acid cycle flux. The oxidative pentose phosphate pathway flux was 3.6% of glycolysis, and three non-oxidative pentose phosphate pathway exchange fluxes were calculated. Mass spectrometry was then used to compare fluxes through various pathways under hyperglycemic (26 mm) and euglycemic (5 mm) conditions. Under euglycemic conditions glutamine uptake doubled, but ATP production from glutamine did not significantly change. A new parameter measuring the Warburg effect (the ratio of lactate production flux to pyruvate influx through the mitochondrial pyruvate carrier) was calculated to be 21, close to upper limit of oxidative metabolism.


Subject(s)
Melanoma/metabolism , Oxidative Phosphorylation , Adenosine Triphosphate/metabolism , Carbon-13 Magnetic Resonance Spectroscopy , Cell Line, Tumor , Citric Acid Cycle , Glucose/metabolism , Glutamine/metabolism , Humans , Models, Theoretical , Mutation, Missense , Oxygen/metabolism , Proto-Oncogene Proteins B-raf/genetics
15.
J Biol Chem ; 291(1): 42-57, 2016 Jan 01.
Article in English | MEDLINE | ID: mdl-26521302

ABSTRACT

The antitumor agent lonidamine (LND; 1-(2,4-dichlorobenzyl)-1H-indazole-3-carboxylic acid) is known to interfere with energy-yielding processes in cancer cells. However, the effect of LND on central energy metabolism has never been fully characterized. In this study, we report that a significant amount of succinate is accumulated in LND-treated cells. LND inhibits the formation of fumarate and malate and suppresses succinate-induced respiration of isolated mitochondria. Utilizing biochemical assays, we determined that LND inhibits the succinate-ubiquinone reductase activity of respiratory complex II without fully blocking succinate dehydrogenase activity. LND also induces cellular reactive oxygen species through complex II, which reduced the viability of the DB-1 melanoma cell line. The ability of LND to promote cell death was potentiated by its suppression of the pentose phosphate pathway, which resulted in inhibition of NADPH and glutathione generation. Using stable isotope tracers in combination with isotopologue analysis, we showed that LND increased glutaminolysis but decreased reductive carboxylation of glutamine-derived α-ketoglutarate. Our findings on the previously uncharacterized effects of LND may provide potential combinational therapeutic approaches for targeting cancer metabolism.


Subject(s)
Antineoplastic Agents/pharmacology , Electron Transport Complex II/antagonists & inhibitors , Indazoles/pharmacology , Mitochondria/metabolism , Cell Death/drug effects , Cell Line, Tumor , Citric Acid Cycle/drug effects , Diacetyl/analogs & derivatives , Diacetyl/pharmacology , Electron Transport Complex II/metabolism , Fumarates/metabolism , Glutamine/metabolism , Glutathione/metabolism , Humans , Malates/metabolism , Melanoma/metabolism , Melanoma/pathology , Metabolic Flux Analysis , Mitochondria/drug effects , Models, Biological , NADP/metabolism , Naphthalenes/pharmacology , Oxidation-Reduction/drug effects , Pentose Phosphate Pathway/drug effects , Reactive Oxygen Species/metabolism , Succinic Acid/metabolism
16.
Neurochem Res ; 40(12): 2482-92, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26553273

ABSTRACT

Most current brain metabolic models are not capable of taking into account the dynamic isotopomer information available from fine structure multiplets in (13)C spectra, due to the difficulty of implementing such models. Here we present a new approach that allows automatic implementation of multi-compartment metabolic models capable of fitting any number of (13)C isotopomer curves in the brain. The new automated approach also makes it possible to quickly modify and test new models to best describe the experimental data. We demonstrate the power of the new approach by testing the effect of adding separate pyruvate pools in astrocytes and neurons, and adding a vesicular neuronal glutamate pool. Including both changes reduced the global fit residual by half and pointed to dilution of label prior to entry into the astrocytic TCA cycle as the main source of glutamine dilution. The glutamate-glutamine cycle rate was particularly sensitive to changes in the model.


Subject(s)
Brain Chemistry/physiology , Magnetic Resonance Spectroscopy/methods , Algorithms , Animals , Automation , Computer Simulation , Humans , Models, Biological , Models, Theoretical , Neuroglia/metabolism , Neurons/metabolism
17.
Neoplasia ; 17(8): 671-84, 2015 Aug.
Article in English | MEDLINE | ID: mdl-26408259

ABSTRACT

Cancer cells adapt their metabolism during tumorigenesis. We studied two isogenic breast cancer cells lines (highly metastatic 4T1; nonmetastatic 67NR) to identify differences in their glucose and glutamine metabolism in response to metabolic and environmental stress. Dynamic magnetic resonance spectroscopy of (13)C-isotopomers showed that 4T1 cells have higher glycolytic and tricarboxylic acid (TCA) cycle flux than 67NR cells and readily switch between glycolysis and oxidative phosphorylation (OXPHOS) in response to different extracellular environments. OXPHOS activity increased with metastatic potential in isogenic cell lines derived from the same primary breast cancer: 4T1 > 4T07 and 168FARN (local micrometastasis only) > 67NR. We observed a restricted TCA cycle flux at the succinate dehydrogenase step in 67NR cells (but not in 4T1 cells), leading to succinate accumulation and hindering OXPHOS. In the four isogenic cell lines, environmental stresses modulated succinate dehydrogenase subunit A expression according to metastatic potential. Moreover, glucose-derived lactate production was more glutamine dependent in cell lines with higher metastatic potential. These studies show clear differences in TCA cycle metabolism between 4T1 and 67NR breast cancer cells. They indicate that metastases-forming 4T1 cells are more adept at adjusting their metabolism in response to environmental stress than isogenic, nonmetastatic 67NR cells. We suggest that the metabolic plasticity and adaptability are more important to the metastatic breast cancer phenotype than rapid cell proliferation alone, which could 1) provide a new biomarker for early detection of this phenotype, possibly at the time of diagnosis, and 2) lead to new treatment strategies of metastatic breast cancer by targeting mitochondrial metabolism.


Subject(s)
Adaptation, Physiological , Glucose/metabolism , Glutamine/metabolism , Tumor Microenvironment , Animals , Carbon-13 Magnetic Resonance Spectroscopy/methods , Cell Line, Tumor , Cell Survival/drug effects , Citric Acid Cycle/drug effects , Energy Metabolism/drug effects , Glucose/pharmacology , Glutamine/pharmacology , Glycolysis/drug effects , Hydrogen-Ion Concentration , Mammary Neoplasms, Animal/metabolism , Mammary Neoplasms, Animal/pathology , Mice, Inbred BALB C , Neoplasm Metastasis , Oxidative Phosphorylation/drug effects , Phospholipids/metabolism
18.
Cell Rep ; 9(4): 1507-19, 2014 Nov 20.
Article in English | MEDLINE | ID: mdl-25456139

ABSTRACT

The serine, glycine, one-carbon (SGOC) metabolic network is implicated in cancer pathogenesis, but its general functions are unknown. We carried out a computational reconstruction of the SGOC network and then characterized its expression across thousands of cancer tissues. Pathways including methylation and redox metabolism exhibited heterogeneous expression indicating a strong context dependency of their usage in tumors. From an analysis of coexpression, simultaneous up- or downregulation of nucleotide synthesis, NADPH, and glutathione synthesis was found to be a common occurrence in all cancers. Finally, we developed a method to trace the metabolic fate of serine using stable isotopes, high-resolution mass spectrometry, and a mathematical model. Although the expression of single genes didn't appear indicative of flux, the collective expression of several genes in a given pathway allowed for successful flux prediction. Altogether, these findings identify expansive and heterogeneous functions for the SGOC metabolic network in human cancer.


Subject(s)
Metabolic Networks and Pathways , Neoplasms/metabolism , Serine/metabolism , Carbon/metabolism , Gene Expression Regulation, Neoplastic , Glutathione/biosynthesis , Glycine/metabolism , Humans , Metabolic Flux Analysis , Metabolic Networks and Pathways/genetics , Models, Biological , Neoplasms/genetics , Nucleotides/biosynthesis , Purines/biosynthesis , Pyrimidines/biosynthesis
19.
Elife ; 32014 Jul 09.
Article in English | MEDLINE | ID: mdl-25009227

ABSTRACT

Aerobic glycolysis or the Warburg Effect (WE) is characterized by the increased metabolism of glucose to lactate. It remains unknown what quantitative changes to the activity of metabolism are necessary and sufficient for this phenotype. We developed a computational model of glycolysis and an integrated analysis using metabolic control analysis (MCA), metabolomics data, and statistical simulations. We identified and confirmed a novel mode of regulation specific to aerobic glycolysis where flux through GAPDH, the enzyme separating lower and upper glycolysis, is the rate-limiting step in the pathway and the levels of fructose (1,6) bisphosphate (FBP), are predictive of the rate and control points in glycolysis. Strikingly, negative flux control was found and confirmed for several steps thought to be rate-limiting in glycolysis. Together, these findings enumerate the biochemical determinants of the WE and suggest strategies for identifying the contexts in which agents that target glycolysis might be most effective.


Subject(s)
Glyceraldehyde-3-Phosphate Dehydrogenase (Phosphorylating)/metabolism , Computational Biology/methods , Fructosediphosphates/chemistry , Glucose/chemistry , Glucose Transport Proteins, Facilitative/metabolism , Glycolysis , HCT116 Cells , Humans , L-Lactate Dehydrogenase/metabolism , Lactic Acid/chemistry , Mass Spectrometry , Metabolomics/methods , Models, Chemical , Monte Carlo Method , Phenotype , Phosphorylation
20.
Int J Oncol ; 43(3): 886-94, 2013 Sep.
Article in English | MEDLINE | ID: mdl-23817738

ABSTRACT

Approximately half of all cancer patients present with cachexia, a condition in which disease-associated metabolic changes lead to a severe loss of skeletal muscle mass. Working toward an integrated and mechanistic view of cancer cachexia, we investigated the hypothesis that cancer promotes mitochondrial uncoupling in skeletal muscle. We subjected mice to in vivo phosphorous-31 nuclear magnetic resonance (31P NMR) spectroscopy and subjected murine skeletal muscle samples to gas chromatography/mass spectrometry (GC/MS). The mice used in both experiments were Lewis lung carcinoma models of cancer cachexia. A novel 'fragmented mass isotopomer' approach was used in our dynamic analysis of 13C mass isotopomer data. Our 31P NMR and GC/MS results indicated that the adenosine triphosphate (ATP) synthesis rate and tricarboxylic acid (TCA) cycle flux were reduced by 49% and 22%, respectively, in the cancer-bearing mice (p<0.008; t-test vs. controls). The ratio of ATP synthesis rate to the TCA cycle flux (an index of mitochondrial coupling) was reduced by 32% in the cancer-bearing mice (p=0.036; t-test vs. controls). Genomic analysis revealed aberrant expression levels for key regulatory genes and transmission electron microscopy (TEM) revealed ultrastructural abnormalities in the muscle fiber, consistent with the presence of abnormal, giant mitochondria. Taken together, these data suggest that mitochondrial uncoupling occurs in cancer cachexia and thus point to the mitochondria as a potential pharmaceutical target for the treatment of cachexia. These findings may prove relevant to elucidating the mechanisms underlying skeletal muscle wasting observed in other chronic diseases, as well as in aging.


Subject(s)
Adenosine Triphosphate/biosynthesis , Citric Acid Cycle , Muscle, Skeletal/metabolism , Neoplasms/metabolism , Adenosine Triphosphate/metabolism , Animals , Cachexia/complications , Cachexia/metabolism , Cachexia/pathology , Humans , Magnetic Resonance Spectroscopy , Mice , Microscopy, Electron, Transmission , Mitochondria/metabolism , Mitochondria/pathology , Mitochondria/ultrastructure , Muscle, Skeletal/pathology , Muscle, Skeletal/ultrastructure , Neoplasms/complications , Neoplasms/pathology
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