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1.
Cell ; 2024 May 30.
Article in English | MEDLINE | ID: mdl-38823389

ABSTRACT

Purine nucleotides are vital for RNA and DNA synthesis, signaling, metabolism, and energy homeostasis. To synthesize purines, cells use two principal routes: the de novo and salvage pathways. Traditionally, it is believed that proliferating cells predominantly rely on de novo synthesis, whereas differentiated tissues favor the salvage pathway. Unexpectedly, we find that adenine and inosine are the most effective circulating precursors for supplying purine nucleotides to tissues and tumors, while hypoxanthine is rapidly catabolized and poorly salvaged in vivo. Quantitative metabolic analysis demonstrates comparative contribution from de novo synthesis and salvage pathways in maintaining purine nucleotide pools in tumors. Notably, feeding mice nucleotides accelerates tumor growth, while inhibiting purine salvage slows down tumor progression, revealing a crucial role of the salvage pathway in tumor metabolism. These findings provide fundamental insights into how normal tissues and tumors maintain purine nucleotides and highlight the significance of purine salvage in cancer.

2.
Cell ; 185(15): 2678-2689, 2022 07 21.
Article in English | MEDLINE | ID: mdl-35839759

ABSTRACT

Metabolic anomalies contribute to tissue dysfunction. Current metabolism research spans from organelles to populations, and new technologies can accommodate investigation across these scales. Here, we review recent advancements in metabolic analysis, including small-scale metabolomics techniques amenable to organelles and rare cell types, functional screening to explore how cells respond to metabolic stress, and imaging approaches to non-invasively assess metabolic perturbations in diseases. We discuss how metabolomics provides an informative phenotypic dimension that complements genomic analysis in Mendelian and non-Mendelian disorders. We also outline pressing challenges and how addressing them may further clarify the biochemical basis of human disease.


Subject(s)
Genomics , Metabolomics , Diagnostic Imaging , Humans , Metabolomics/methods
3.
Cell ; 185(9): 1506-1520.e17, 2022 04 28.
Article in English | MEDLINE | ID: mdl-35385687

ABSTRACT

Schistosomes cause morbidity and death throughout the developing world due to the massive numbers of eggs female worms deposit into the blood of their host. Studies dating back to the 1920s show that female schistosomes rely on constant physical contact with a male worm both to become and remain sexually mature; however, the molecular details governing this process remain elusive. Here, we uncover a nonribosomal peptide synthetase that is induced in male worms upon pairing with a female and find that it is essential for the ability of male worms to stimulate female development. We demonstrate that this enzyme generates ß-alanyl-tryptamine that is released by paired male worms. Furthermore, synthetic ß-alanyl-tryptamine can replace male worms to stimulate female sexual development and egg laying. These data reveal that peptide-based pheromone signaling controls female schistosome sexual maturation, suggesting avenues for therapeutic intervention and uncovering a role for nonribosomal peptides as metazoan signaling molecules.


Subject(s)
Peptides , Pheromones , Schistosoma/growth & development , Animals , Female , Male , Peptide Biosynthesis, Nucleic Acid-Independent , Tryptamines
4.
Cell ; 173(4): 864-878.e29, 2018 05 03.
Article in English | MEDLINE | ID: mdl-29681454

ABSTRACT

Diversity in the genetic lesions that cause cancer is extreme. In consequence, a pressing challenge is the development of drugs that target patient-specific disease mechanisms. To address this challenge, we employed a chemistry-first discovery paradigm for de novo identification of druggable targets linked to robust patient selection hypotheses. In particular, a 200,000 compound diversity-oriented chemical library was profiled across a heavily annotated test-bed of >100 cellular models representative of the diverse and characteristic somatic lesions for lung cancer. This approach led to the delineation of 171 chemical-genetic associations, shedding light on the targetability of mechanistic vulnerabilities corresponding to a range of oncogenotypes present in patient populations lacking effective therapy. Chemically addressable addictions to ciliogenesis in TTC21B mutants and GLUT8-dependent serine biosynthesis in KRAS/KEAP1 double mutants are prominent examples. These observations indicate a wealth of actionable opportunities within the complex molecular etiology of cancer.


Subject(s)
Carcinoma, Non-Small-Cell Lung/pathology , Cell Proliferation/drug effects , Lung Neoplasms/pathology , Small Molecule Libraries/pharmacology , Carcinoma, Non-Small-Cell Lung/metabolism , Cell Line, Tumor , Cytochrome P450 Family 4/deficiency , Cytochrome P450 Family 4/genetics , Drug Discovery , G1 Phase Cell Cycle Checkpoints/drug effects , Glucocorticoids/pharmacology , Glucose Transport Proteins, Facilitative/antagonists & inhibitors , Glucose Transport Proteins, Facilitative/genetics , Glucose Transport Proteins, Facilitative/metabolism , Humans , Kelch-Like ECH-Associated Protein 1/genetics , Kelch-Like ECH-Associated Protein 1/metabolism , Lung Neoplasms/metabolism , Microtubule-Associated Proteins/genetics , Microtubule-Associated Proteins/metabolism , Mutation , NF-E2-Related Factor 2/antagonists & inhibitors , NF-E2-Related Factor 2/genetics , NF-E2-Related Factor 2/metabolism , Proto-Oncogene Proteins p21(ras)/genetics , Proto-Oncogene Proteins p21(ras)/metabolism , RNA Interference , RNA, Small Interfering/metabolism , Receptor, Notch2/genetics , Receptor, Notch2/metabolism , Receptors, Glucocorticoid/antagonists & inhibitors , Receptors, Glucocorticoid/genetics , Receptors, Glucocorticoid/metabolism , Small Molecule Libraries/chemistry , Small Molecule Libraries/metabolism
5.
Cell ; 168(4): 657-669, 2017 02 09.
Article in English | MEDLINE | ID: mdl-28187287

ABSTRACT

Transformed cells adapt metabolism to support tumor initiation and progression. Specific metabolic activities can participate directly in the process of transformation or support the biological processes that enable tumor growth. Exploiting cancer metabolism for clinical benefit requires defining the pathways that are limiting for cancer progression and understanding the context specificity of metabolic preferences and liabilities in malignant cells. Progress toward answering these questions is providing new insight into cancer biology and can guide the more effective targeting of metabolism to help patients.


Subject(s)
Metabolic Networks and Pathways , Neoplasms/metabolism , Adenosine Triphosphate/metabolism , Animals , Cell Proliferation , Cell Transformation, Neoplastic , Citric Acid Cycle , Humans , NADP/metabolism , Neoplasms/pathology , Nucleotides/biosynthesis
6.
Cell ; 171(2): 358-371.e9, 2017 Oct 05.
Article in English | MEDLINE | ID: mdl-28985563

ABSTRACT

Cancer cells consume glucose and secrete lactate in culture. It is unknown whether lactate contributes to energy metabolism in living tumors. We previously reported that human non-small-cell lung cancers (NSCLCs) oxidize glucose in the tricarboxylic acid (TCA) cycle. Here, we show that lactate is also a TCA cycle carbon source for NSCLC. In human NSCLC, evidence of lactate utilization was most apparent in tumors with high 18fluorodeoxyglucose uptake and aggressive oncological behavior. Infusing human NSCLC patients with 13C-lactate revealed extensive labeling of TCA cycle metabolites. In mice, deleting monocarboxylate transporter-1 (MCT1) from tumor cells eliminated lactate-dependent metabolite labeling, confirming tumor-cell-autonomous lactate uptake. Strikingly, directly comparing lactate and glucose metabolism in vivo indicated that lactate's contribution to the TCA cycle predominates. The data indicate that tumors, including bona fide human NSCLC, can use lactate as a fuel in vivo.


Subject(s)
Carcinoma, Non-Small-Cell Lung/metabolism , Lactic Acid/metabolism , Lung Neoplasms/metabolism , Animals , Blood Chemical Analysis , Cell Line, Tumor , Citric Acid Cycle , Disease Models, Animal , Female , Glyceric Acids/metabolism , Heterografts , Humans , Male , Mice , Monocarboxylic Acid Transporters/genetics , Monocarboxylic Acid Transporters/metabolism , Neoplasm Transplantation , Symporters/genetics , Symporters/metabolism
7.
Cell ; 164(4): 681-94, 2016 Feb 11.
Article in English | MEDLINE | ID: mdl-26853473

ABSTRACT

Non-small cell lung cancer (NSCLC) is heterogeneous in the genetic and environmental parameters that influence cell metabolism in culture. Here, we assessed the impact of these factors on human NSCLC metabolism in vivo using intraoperative (13)C-glucose infusions in nine NSCLC patients to compare metabolism between tumors and benign lung. While enhanced glycolysis and glucose oxidation were common among these tumors, we observed evidence for oxidation of multiple nutrients in each of them, including lactate as a potential carbon source. Moreover, metabolically heterogeneous regions were identified within and between tumors, and surprisingly, our data suggested potential contributions of non-glucose nutrients in well-perfused tumor areas. Our findings not only demonstrate the heterogeneity in tumor metabolism in vivo but also highlight the strong influence of the microenvironment on this feature.


Subject(s)
Carcinoma, Non-Small-Cell Lung/metabolism , Carcinoma, Non-Small-Cell Lung/pathology , Lung Neoplasms/metabolism , Lung Neoplasms/pathology , Tumor Microenvironment , Adult , Aged , Aged, 80 and over , Carcinoma, Non-Small-Cell Lung/blood supply , Citric Acid Cycle , Female , Glycolysis , Humans , Lung Neoplasms/blood supply , Magnetic Resonance Imaging , Male , Middle Aged , Positron-Emission Tomography
8.
Cell ; 159(7): 1603-14, 2014 Dec 18.
Article in English | MEDLINE | ID: mdl-25525878

ABSTRACT

Glioblastomas and brain metastases are highly proliferative brain tumors with short survival times. Previously, using (13)C-NMR analysis of brain tumors resected from patients during infusion of (13)C-glucose, we demonstrated that there is robust oxidation of glucose in the citric acid cycle, yet glucose contributes less than 50% of the carbons to the acetyl-CoA pool. Here, we show that primary and metastatic mouse orthotopic brain tumors have the capacity to oxidize [1,2-(13)C]acetate and can do so while simultaneously oxidizing [1,6-(13)C]glucose. The tumors do not oxidize [U-(13)C]glutamine. In vivo oxidation of [1,2-(13)C]acetate was validated in brain tumor patients and was correlated with expression of acetyl-CoA synthetase enzyme 2, ACSS2. Together, the data demonstrate a strikingly common metabolic phenotype in diverse brain tumors that includes the ability to oxidize acetate in the citric acid cycle. This adaptation may be important for meeting the high biosynthetic and bioenergetic demands of malignant growth.


Subject(s)
Acetate-CoA Ligase/metabolism , Acetates/metabolism , Brain Neoplasms/metabolism , Citric Acid Cycle , Glioblastoma/metabolism , Acetate-CoA Ligase/genetics , Animals , Brain Neoplasms/pathology , Brain Neoplasms/secondary , Disease Models, Animal , Glioblastoma/pathology , Glutamic Acid/metabolism , Humans , Mice , Neoplasm Metastasis/pathology
9.
Immunity ; 51(5): 856-870.e5, 2019 11 19.
Article in English | MEDLINE | ID: mdl-31747582

ABSTRACT

Naive CD8+ T cells differentiating into effector T cells increase glucose uptake and shift from quiescent to anabolic metabolism. Although much is known about the metabolism of cultured T cells, how T cells use nutrients during immune responses in vivo is less well defined. Here, we combined bioenergetic profiling and 13C-glucose infusion techniques to investigate the metabolism of CD8+ T cells responding to Listeria infection. In contrast to in vitro-activated T cells, which display hallmarks of Warburg metabolism, physiologically activated CD8+ T cells displayed greater rates of oxidative metabolism, higher bioenergetic capacity, differential use of pyruvate, and prominent flow of 13C-glucose carbon to anabolic pathways, including nucleotide and serine biosynthesis. Glucose-dependent serine biosynthesis mediated by the enzyme Phgdh was essential for CD8+ T cell expansion in vivo. Our data highlight fundamental differences in glucose use by pathogen-specific T cells in vivo, illustrating the impact of environment on T cell metabolic phenotypes.


Subject(s)
CD8-Positive T-Lymphocytes/immunology , CD8-Positive T-Lymphocytes/metabolism , Energy Metabolism , Glucose/metabolism , Lymphocyte Activation/immunology , Metabolome , Metabolomics , Animals , Cell Proliferation , Gas Chromatography-Mass Spectrometry , Glycolysis , Host-Pathogen Interactions/genetics , Host-Pathogen Interactions/immunology , Lymphocyte Activation/genetics , Metabolomics/methods , Mice , Oxidative Stress , Virus Diseases/genetics , Virus Diseases/immunology , Virus Diseases/metabolism , Virus Diseases/virology
10.
Cell ; 155(3): 552-66, 2013 Oct 24.
Article in English | MEDLINE | ID: mdl-24243015

ABSTRACT

Context-specific molecular vulnerabilities that arise during tumor evolution represent an attractive intervention target class. However, the frequency and diversity of somatic lesions detected among lung tumors can confound efforts to identify these targets. To confront this challenge, we have applied parallel screening of chemical and genetic perturbations within a panel of molecularly annotated NSCLC lines to identify intervention opportunities tightly linked to molecular response indicators predictive of target sensitivity. Anchoring this analysis on a matched tumor/normal cell model from a lung adenocarcinoma patient identified three distinct target/response-indicator pairings that are represented with significant frequencies (6%-16%) in the patient population. These include NLRP3 mutation/inflammasome activation-dependent FLIP addiction, co-occurring KRAS and LKB1 mutation-driven COPI addiction, and selective sensitivity to a synthetic indolotriazine that is specified by a seven-gene expression signature. Target efficacies were validated in vivo, and mechanism-of-action studies informed generalizable principles underpinning cancer cell biology.


Subject(s)
Carcinoma, Non-Small-Cell Lung/metabolism , Drug Screening Assays, Antitumor , Indoles/pharmacology , Lung Neoplasms/metabolism , Triazines/pharmacology , Animals , CASP8 and FADD-Like Apoptosis Regulating Protein/metabolism , Carcinoma, Non-Small-Cell Lung/pathology , Carrier Proteins , Cell Line, Tumor , Coatomer Protein/metabolism , Female , Genes, ras , Heterografts , Humans , Lung Neoplasms/pathology , Lysosomes/metabolism , Mice , Molecular Targeted Therapy , NLR Family, Pyrin Domain-Containing 3 Protein , Neoplasm Transplantation , Oxidative Phosphorylation
11.
Cell ; 154(3): 651-63, 2013 Aug 01.
Article in English | MEDLINE | ID: mdl-23911327

ABSTRACT

Vessel sprouting by migrating tip and proliferating stalk endothelial cells (ECs) is controlled by genetic signals (such as Notch), but it is unknown whether metabolism also regulates this process. Here, we show that ECs relied on glycolysis rather than on oxidative phosphorylation for ATP production and that loss of the glycolytic activator PFKFB3 in ECs impaired vessel formation. Mechanistically, PFKFB3 not only regulated EC proliferation but also controlled the formation of filopodia/lamellipodia and directional migration, in part by compartmentalizing with F-actin in motile protrusions. Mosaic in vitro and in vivo sprouting assays further revealed that PFKFB3 overexpression overruled the pro-stalk activity of Notch, whereas PFKFB3 deficiency impaired tip cell formation upon Notch blockade, implying that glycolysis regulates vessel branching.


Subject(s)
Endothelial Cells/metabolism , Glycolysis , Neovascularization, Physiologic , Phosphofructokinase-2/metabolism , Animals , Cell Line, Tumor , Cells, Cultured , Endothelial Cells/cytology , Female , Gene Deletion , Gene Silencing , Humans , Male , Mice , Mice, Inbred C57BL , Phosphofructokinase-2/genetics , Pseudopodia/metabolism , Zebrafish
12.
Nature ; 604(7905): 349-353, 2022 04.
Article in English | MEDLINE | ID: mdl-35388219

ABSTRACT

Mammalian embryogenesis requires rapid growth and proper metabolic regulation1. Midgestation features increasing oxygen and nutrient availability concomitant with fetal organ development2,3. Understanding how metabolism supports development requires approaches to observe metabolism directly in model organisms in utero. Here we used isotope tracing and metabolomics to identify evolving metabolic programmes in the placenta and embryo during midgestation in mice. These tissues differ metabolically throughout midgestation, but we pinpointed gestational days (GD) 10.5-11.5 as a transition period for both placenta and embryo. Isotope tracing revealed differences in carbohydrate metabolism between the tissues and rapid glucose-dependent purine synthesis, especially in the embryo. Glucose's contribution to the tricarboxylic acid (TCA) cycle rises throughout midgestation in the embryo but not in the placenta. By GD12.5, compartmentalized metabolic programmes are apparent within the embryo, including different nutrient contributions to the TCA cycle in different organs. To contextualize developmental anomalies associated with Mendelian metabolic defects, we analysed mice deficient in LIPT1, the enzyme that activates 2-ketoacid dehydrogenases related to the TCA cycle4,5. LIPT1 deficiency suppresses TCA cycle metabolism during the GD10.5-GD11.5 transition, perturbs brain, heart and erythrocyte development and leads to embryonic demise by GD11.5. These data document individualized metabolic programmes in developing organs in utero.


Subject(s)
Citric Acid Cycle , Fetal Development , Metabolomics , Placenta , Animals , Embryo, Mammalian/metabolism , Female , Glucose/metabolism , Mammals/metabolism , Mice , Placenta/metabolism , Pregnancy
13.
Cell ; 148(6): 1132-44, 2012 Mar 16.
Article in English | MEDLINE | ID: mdl-22424225

ABSTRACT

An understanding of metabolic pathways based solely on biochemistry textbooks would underestimate the pervasive role of metabolism in essentially every aspect of biology. It is evident from recent work that many human diseases involve abnormal metabolic states--often genetically programmed--that perturb normal physiology and lead to severe tissue dysfunction. Understanding these metabolic outliers is now a crucial frontier in disease-oriented research. This Review discusses the broad impact of metabolism in cellular function and how modern concepts of metabolism can inform our understanding of common diseases like cancer and also considers the prospects of developing new metabolic approaches to disease treatment.


Subject(s)
Metabolic Networks and Pathways , Animals , Humans , Metabolic Diseases/metabolism , Metabolic Diseases/pathology , Neoplasms/drug therapy , Neoplasms/metabolism , Neoplasms/pathology
14.
Mol Cell ; 76(5): 838-851.e5, 2019 12 05.
Article in English | MEDLINE | ID: mdl-31564558

ABSTRACT

Intermediary metabolism in cancer cells is regulated by diverse cell-autonomous processes, including signal transduction and gene expression patterns, arising from specific oncogenotypes and cell lineages. Although it is well established that metabolic reprogramming is a hallmark of cancer, we lack a full view of the diversity of metabolic programs in cancer cells and an unbiased assessment of the associations between metabolic pathway preferences and other cell-autonomous processes. Here, we quantified metabolic features, mostly from the 13C enrichment of molecules from central carbon metabolism, in over 80 non-small cell lung cancer (NSCLC) cell lines cultured under identical conditions. Because these cell lines were extensively annotated for oncogenotype, gene expression, protein expression, and therapeutic sensitivity, the resulting database enables the user to uncover new relationships between metabolism and these orthogonal processes.


Subject(s)
Carcinoma, Non-Small-Cell Lung/metabolism , Carcinoma, Non-Small-Cell Lung/pathology , Cell Line, Tumor/metabolism , Metabolome/physiology , Biomarkers, Tumor/metabolism , Gas Chromatography-Mass Spectrometry/methods , Gene Expression Regulation, Neoplastic/physiology , Glucose/metabolism , Glutamine/metabolism , Humans , Metabolic Networks and Pathways/genetics , Metabolomics/methods , Neoplasms/metabolism
15.
Genes Dev ; 33(17-18): 1236-1251, 2019 09 01.
Article in English | MEDLINE | ID: mdl-31416966

ABSTRACT

Tumors display increased uptake and processing of nutrients to fulfill the demands of rapidly proliferating cancer cells. Seminal studies have shown that the proto-oncogene MYC promotes metabolic reprogramming by altering glutamine uptake and metabolism in cancer cells. How MYC regulates the metabolism of other amino acids in cancer is not fully understood. Using high-performance liquid chromatography (HPLC)-tandem mass spectrometry (LC-MS/MS), we found that MYC increased intracellular levels of tryptophan and tryptophan metabolites in the kynurenine pathway. MYC induced the expression of the tryptophan transporters SLC7A5 and SLC1A5 and the enzyme arylformamidase (AFMID), involved in the conversion of tryptophan into kynurenine. SLC7A5, SLC1A5, and AFMID were elevated in colon cancer cells and tissues, and kynurenine was significantly greater in tumor samples than in the respective adjacent normal tissue from patients with colon cancer. Compared with normal human colonic epithelial cells, colon cancer cells were more sensitive to the depletion of tryptophan. Blocking enzymes in the kynurenine pathway caused preferential death of established colon cancer cells and transformed colonic organoids. We found that only kynurenine and no other tryptophan metabolite promotes the nuclear translocation of the transcription factor aryl hydrocarbon receptor (AHR). Blocking the interaction between AHR and kynurenine with CH223191 reduced the proliferation of colon cancer cells. Therefore, we propose that limiting cellular kynurenine or its downstream targets could present a new strategy to reduce the proliferation of MYC-dependent cancer cells.


Subject(s)
Colonic Neoplasms/physiopathology , Kynurenine/metabolism , Proto-Oncogene Proteins c-myc/metabolism , Tryptophan/metabolism , Amino Acid Transport System ASC/genetics , Antineoplastic Agents/pharmacology , Arylformamidase/genetics , Cell Line , Cell Line, Tumor , Cell Proliferation/drug effects , Gene Expression Regulation, Neoplastic , Humans , Indoles/pharmacology , Kynurenine/genetics , Large Neutral Amino Acid-Transporter 1/genetics , Minor Histocompatibility Antigens/genetics , Oximes/pharmacology , Proto-Oncogene Mas , Sulfonamides/pharmacology
16.
Nature ; 578(7796): 621-626, 2020 02.
Article in English | MEDLINE | ID: mdl-32051585

ABSTRACT

The mechanics of the cellular microenvironment continuously modulates cell functions such as growth, survival, apoptosis, differentiation and morphogenesis via cytoskeletal remodelling and actomyosin contractility1-3. Although all of these processes consume energy4,5, it is unknown whether and how cells adapt their metabolic activity to variable mechanical cues. Here we report that the transfer of human bronchial epithelial cells from stiff to soft substrates causes a downregulation of glycolysis via proteasomal degradation of the rate-limiting metabolic enzyme phosphofructokinase (PFK). PFK degradation is triggered by the disassembly of stress fibres, which releases the PFK-targeting E3 ubiquitin ligase tripartite motif (TRIM)-containing protein 21 (TRIM21). Transformed non-small-cell lung cancer cells, which maintain high glycolytic rates regardless of changing environmental mechanics, retain PFK expression by downregulating TRIM21, and by sequestering residual TRIM21 on a stress-fibre subset that is insensitive to substrate stiffness. Our data reveal a mechanism by which glycolysis responds to architectural features of the actomyosin cytoskeleton, thus coupling cell metabolism to the mechanical properties of the surrounding tissue. These processes enable normal cells to tune energy production in variable microenvironments, whereas the resistance of the cytoskeleton in response to mechanical cues enables the persistence of high glycolytic rates in cancer cells despite constant alterations of the tumour tissue.


Subject(s)
Cellular Microenvironment , Cytoskeleton/metabolism , Epithelial Cells/cytology , Epithelial Cells/metabolism , Glucose/metabolism , Glycolysis , Hardness , Actins/metabolism , Actomyosin/metabolism , Animals , Bronchi/cytology , Cattle , Cell Differentiation , Cell Line , Humans , Neoplasms/metabolism , Neoplasms/pathology , Phosphofructokinases/chemistry , Phosphofructokinases/metabolism , Proteasome Endopeptidase Complex/metabolism , Ribonucleoproteins/metabolism , Stress Fibers/metabolism , Ubiquitin-Protein Ligases/metabolism
17.
Nature ; 577(7788): 115-120, 2020 01.
Article in English | MEDLINE | ID: mdl-31853067

ABSTRACT

Metastasis requires cancer cells to undergo metabolic changes that are poorly understood1-3. Here we show that metabolic differences among melanoma cells confer differences in metastatic potential as a result of differences in the function of the MCT1 transporter. In vivo isotope tracing analysis in patient-derived xenografts revealed differences in nutrient handling between efficiently and inefficiently metastasizing melanomas, with circulating lactate being a more prominent source of tumour lactate in efficient metastasizers. Efficient metastasizers had higher levels of MCT1, and inhibition of MCT1 reduced lactate uptake. MCT1 inhibition had little effect on the growth of primary subcutaneous tumours, but resulted in depletion of circulating melanoma cells and reduced the metastatic disease burden in patient-derived xenografts and in mouse melanomas. In addition, inhibition of MCT1 suppressed the oxidative pentose phosphate pathway and increased levels of reactive oxygen species. Antioxidants blocked the effects of MCT1 inhibition on metastasis. MCT1high and MCT1-/low cells from the same melanomas had similar capacities to form subcutaneous tumours, but MCT1high cells formed more metastases after intravenous injection. Metabolic differences among cancer cells thus confer differences in metastatic potential as metastasizing cells depend on MCT1 to manage oxidative stress.


Subject(s)
Melanoma/metabolism , Monocarboxylic Acid Transporters/metabolism , Symporters/metabolism , Animals , Cell Line, Tumor , Cell Survival , Humans , Melanoma/genetics , Melanoma/secondary , Mice , Monocarboxylic Acid Transporters/genetics , Oxidative Stress , Symporters/genetics , Xenograft Model Antitumor Assays
18.
Nature ; 569(7756): E4, 2019 May.
Article in English | MEDLINE | ID: mdl-31043737

ABSTRACT

Further analysis has revealed that the signal reported in Extended Data Fig. 1c of this Letter is attributed to phosphorylethanolamine, not carbamoyl phosphate. A newly developed derivatization method revealed that the level of carbamoyl phosphate in these NSCLC extracts is below the detection threshold of approximately 10 nanomoles. These findings do not alter the overall conclusions of the Letter; see associated Amendment for full details. The Letter has not been corrected online.

19.
Nature ; 566(7744): 403-406, 2019 02.
Article in English | MEDLINE | ID: mdl-30728499

ABSTRACT

Most tumours have an aberrantly activated lipid metabolism1,2 that enables them to synthesize, elongate and desaturate fatty acids to support proliferation. However, only particular subsets of cancer cells are sensitive to approaches that target fatty acid metabolism and, in particular, fatty acid desaturation3. This suggests that many cancer cells contain an unexplored plasticity in their fatty acid metabolism. Here we show that some cancer cells can exploit an alternative fatty acid desaturation pathway. We identify various cancer cell lines, mouse hepatocellular carcinomas, and primary human liver and lung carcinomas that desaturate palmitate to the unusual fatty acid sapienate to support membrane biosynthesis during proliferation. Accordingly, we found that sapienate biosynthesis enables cancer cells to bypass the known fatty acid desaturation pathway that is dependent on stearoyl-CoA desaturase. Thus, only by targeting both desaturation pathways is the in vitro and in vivo proliferation of cancer cells that synthesize sapienate impaired. Our discovery explains metabolic plasticity in fatty acid desaturation and constitutes an unexplored metabolic rewiring in cancers.


Subject(s)
Fatty Acids/chemistry , Fatty Acids/metabolism , Metabolic Networks and Pathways , Neoplasms/metabolism , Neoplasms/pathology , Animals , Cell Line, Tumor , Cell Membrane/metabolism , Cell Proliferation , Fatty Acid Desaturases/metabolism , Female , HEK293 Cells , Humans , Male , Mice , Oleic Acids/metabolism , Palmitates/metabolism , Palmitic Acids/metabolism , Stearoyl-CoA Desaturase/metabolism
20.
Proc Natl Acad Sci U S A ; 119(20): e2123261119, 2022 05 17.
Article in English | MEDLINE | ID: mdl-35561222

ABSTRACT

Mammalian target of rapamycin complex 1 (mTORC1) senses amino acids to control cell growth, metabolism, and autophagy. Some amino acids signal to mTORC1 through the Rag GTPase, whereas glutamine and asparagine activate mTORC1 through a Rag GTPase-independent pathway. Here, we show that the lysosomal glutamine and asparagine transporter SNAT7 activates mTORC1 after extracellular protein, such as albumin, is macropinocytosed. The N terminus of SNAT7 forms nutrient-sensitive interaction with mTORC1 and regulates mTORC1 activation independently of the Rag GTPases. Depletion of SNAT7 inhibits albumin-induced mTORC1 lysosomal localization and subsequent activation. Moreover, SNAT7 is essential to sustain KRAS-driven pancreatic cancer cell growth through mTORC1. Thus, SNAT7 links glutamine and asparagine signaling from extracellular protein to mTORC1 independently of the Rag GTPases and is required for macropinocytosis-mediated mTORC1 activation and pancreatic cancer cell growth.


Subject(s)
Amino Acid Transport Systems, Neutral , Lysosomes , Mechanistic Target of Rapamycin Complex 1 , Pinocytosis , Amino Acid Transport Systems, Neutral/chemistry , Amino Acid Transport Systems, Neutral/genetics , Amino Acid Transport Systems, Neutral/metabolism , Asparagine/metabolism , Glutamine/metabolism , Humans , Lysosomes/enzymology , Mechanistic Target of Rapamycin Complex 1/metabolism , Pancreatic Neoplasms/metabolism , Pancreatic Neoplasms/pathology , Signal Transduction
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