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Epigenetic CRISPR screens identify Npm1 as a therapeutic vulnerability in non-small cell lung cancer
Li, Fei; Ng, Wai-Lung; Luster, Troy A; Hu, Hai; Sviderskiy, Vladislav O; Dowling, CatrÃona M; Hollinshead, Kate E R; Zouitine, Paula; Zhang, Hua; Huang, Qingyuan; Ranieri, Michela; Wang, Wei; Fang, Zhaoyuan; Chen, Ting; Deng, Jiehui; Zhao, Kai; So, Hon-Cheong; Khodadadi-Jamayran, Alireza; Xu, Mousheng; Karatza, Angeliki; Pyon, Val; Li, Shuai; Pan, Yuanwang; Labbe, Kristen; Almonte, Christina; Poirier, John T; Miller, George; Possemato, Richard; Qi, Jun; Wong, Kwok-Kin
Despite advancements in treatment options, the overall cure and survival rates for non-small cell lung cancers (NSCLC) remain low. While small-molecule inhibitors of epigenetic regulators have recently emerged as promising cancer therapeutics, their application in patients with NSCLC is limited. To exploit epigenetic regulators as novel therapeutic targets in NSCLC, we performed pooled epigenome-wide CRISPR knockout screens in vitro and in vivo and identified the histone chaperone nucleophosmin 1 (NPM1) as a potential therapeutic target. Genetic ablation of Npm1 significantly attenuated tumor progression in vitro and in vivo. Furthermore, KRAS-mutant cancer cells were more addicted to NPM1 expression. Genetic ablation of Npm1 rewired the balance of metabolism in cancer cells from predominant aerobic glycolysis to oxidative phosphorylation and reduced the population of tumor-propagating cells. Overall, our results support NPM1 as a therapeutic vulnerability in NSCLC.
PMID: 32646968
ISSN: 1538-7445
CID: 4518022
Niche-Selective Inhibition of Pathogenic Th17 Cells by Targeting Metabolic Redundancy
Wu, Lin; Hollinshead, Kate E R; Hao, Yuhan; Au, Christy; Kroehling, Lina; Ng, Charles; Lin, Woan-Yu; Li, Dayi; Silva, Hernandez Moura; Shin, Jong; Lafaille, Juan J; Possemato, Richard; Pacold, Michael E; Papagiannakopoulos, Thales; Kimmelman, Alec C; Satija, Rahul; Littman, Dan R
Targeting glycolysis has been considered therapeutically intractable owing to its essential housekeeping role. However, the context-dependent requirement for individual glycolytic steps has not been fully explored. We show that CRISPR-mediated targeting of glycolysis in TÂ cells in mice results in global loss of Th17 cells, whereas deficiency of the glycolytic enzyme glucose phosphate isomerase (Gpi1) selectively eliminates inflammatory encephalitogenic and colitogenic Th17 cells, without substantially affecting homeostatic microbiota-specific Th17 cells. In homeostatic Th17 cells, partial blockade of glycolysis upon Gpi1 inactivation was compensated by pentose phosphate pathway flux and increased mitochondrial respiration. In contrast, inflammatory Th17 cells experience a hypoxic microenvironment known to limit mitochondrial respiration, which is incompatible with loss of Gpi1. Our study suggests that inhibiting glycolysis by targeting Gpi1 could be an effective therapeutic strategy with minimum toxicity for Th17-mediated autoimmune diseases, and, more generally, that metabolic redundancies can be exploited for selective targeting of disease processes.
PMID: 32615085
ISSN: 1097-4172
CID: 4504552
Minding the Ls and Qs
Possemato, Richard
PMID: 32694722
ISSN: 2522-5812
CID: 4552692
Iron-sulfur cluster metabolism impacts iron homeostasis, ferroptosis sensitivity, and human disease
Chapter by: Sviderskiy, Vladislav O.; Terzi, Erdem M.; Possemato, Richard
in: Ferroptosis in Health and Disease by
[S.l.] : Springer International Publishing, 2019
pp. 215-237
ISBN: 9783030267797
CID: 4508572
KRAS4A directly regulates hexokinase 1
Amendola, Caroline R; Mahaffey, James P; Parker, Seth J; Ahearn, Ian M; Chen, Wei-Ching; Zhou, Mo; Court, Helen; Shi, Jie; Mendoza, Sebastian L; Morten, Michael J; Rothenberg, Eli; Gottlieb, Eyal; Wadghiri, Youssef Z; Possemato, Richard; Hubbard, Stevan R; Balmain, Allan; Kimmelman, Alec C; Philips, Mark R
The most frequently mutated oncogene in cancer is KRAS, which uses alternative fourth exons to generate two gene products (KRAS4A and KRAS4B) that differ only in their C-terminal membrane-targeting region1. Because oncogenic mutations occur in exons 2 or 3, two constitutively active KRAS proteins-each capable of transforming cells-are encoded when KRAS is activated by mutation2. No functional distinctions among the splice variants have so far been established. Oncogenic KRAS alters the metabolism of tumour cells3 in several ways, including increased glucose uptake and glycolysis even in the presence of abundant oxygen4 (the Warburg effect). Whereas these metabolic effects of oncogenic KRAS have been explained by transcriptional upregulation of glucose transporters and glycolytic enzymes3-5, it is not known whether there is direct regulation of metabolic enzymes. Here we report a direct, GTP-dependent interaction between KRAS4A and hexokinase 1 (HK1) that alters the activity of the kinase, and thereby establish that HK1 is an effector of KRAS4A. This interaction is unique to KRAS4A because the palmitoylation-depalmitoylation cycle of this RAS isoform enables colocalization with HK1 on the outer mitochondrial membrane. The expression of KRAS4A in cancer may drive unique metabolic vulnerabilities that can be exploited therapeutically.
PMID: 31827279
ISSN: 1476-4687
CID: 4234582
Targeting iron metabolism in breast cancer: Ferroptosis and genome stability [Meeting Abstract]
Possemato, R. L.; Sviderskiy, V. O.; Alvarez, S. W.; Terzi, E. M.
ISI:000478677000361
ISSN: 0008-5472
CID: 4047802
Aspartate is a limiting metabolite for cancer cell proliferation under hypoxia and in tumours
Garcia-Bermudez, Javier; Baudrier, Lou; La, Konnor; Zhu, Xiphias Ge; Fidelin, Justine; Sviderskiy, Vladislav O; Papagiannakopoulos, Thales; Molina, Henrik; Snuderl, Matija; Lewis, Caroline A; Possemato, Richard L; Birsoy, Kıvanç
As oxygen is essential for many metabolic pathways, tumour hypoxia may impair cancer cell proliferation1-4. However, the limiting metabolites for proliferation under hypoxia and in tumours are unknown. Here, we assessed proliferation of a collection of cancer cells following inhibition of the mitochondrial electron transport chain (ETC), a major metabolic pathway requiring molecular oxygen 5 . Sensitivity to ETC inhibition varied across cell lines, and subsequent metabolomic analysis uncovered aspartate availability as a major determinant of sensitivity. Cell lines least sensitive to ETC inhibition maintain aspartate levels by importing it through an aspartate/glutamate transporter, SLC1A3. Genetic or pharmacologic modulation of SLC1A3 activity markedly altered cancer cell sensitivity to ETC inhibitors. Interestingly, aspartate levels also decrease under low oxygen, and increasing aspartate import by SLC1A3 provides a competitive advantage to cancer cells at low oxygen levels and in tumour xenografts. Finally, aspartate levels in primary human tumours negatively correlate with the expression of hypoxia markers, suggesting that tumour hypoxia is sufficient to inhibit ETC and, consequently, aspartate synthesis in vivo. Therefore, aspartate may be a limiting metabolite for tumour growth, and aspartate availability could be targeted for cancer therapy.
PMCID:6030478
PMID: 29941933
ISSN: 1476-4679
CID: 3161882
Expression of PRAME is increased in K27M mutant gliomas: Identification of a potential target for immunotherapy [Meeting Abstract]
Spino, Marissa; Stafford, James; Chiriboga, Luis; Zeck, Briana; Sviderskiy, Vladislav; Chi, Andrew; Possemato, Richard; Snuderl, Matija
ISI:000434064400047
ISSN: 0022-3069
CID: 3156192
Leveraging the iron-starvation response to promote ferroptosis [Editorial]
Alvarez, Samantha W; Possemato, Richard
PMCID:5834282
PMID: 29541378
ISSN: 1949-2553
CID: 2979352
Serine Catabolism by SHMT2 Is Required for Proper Mitochondrial Translation Initiation and Maintenance of Formylmethionyl-tRNAs
Minton, Denise R; Nam, Minwoo; McLaughlin, Daniel J; Shin, Jong; Bayraktar, Erol C; Alvarez, Samantha W; Sviderskiy, Vladislav O; Papagiannakopoulos, Thales; Sabatini, David M; Birsoy, Kıvanç; Possemato, Richard
Upon glucose restriction, eukaryotic cells upregulate oxidative metabolism to maintain homeostasis. Using genetic screens, we find that the mitochondrial serine hydroxymethyltransferase (SHMT2) is required for robust mitochondrial oxygen consumption and low glucose proliferation. SHMT2 catalyzes the first step in mitochondrial one-carbon metabolism, which, particularly in proliferating cells, produces tetrahydrofolate (THF)-conjugated one-carbon units used in cytoplasmic reactions despite the presence of a parallel cytoplasmic pathway. Impairing cytoplasmic one-carbon metabolism or blocking efflux of one-carbon units from mitochondria does not phenocopy SHMT2 loss, indicating that a mitochondrial THF cofactor is responsible for the observed phenotype. The enzyme MTFMT utilizes one such cofactor, 10-formyl THF, producing formylmethionyl-tRNAs, specialized initiator tRNAs necessary for proper translation of mitochondrially encoded proteins. Accordingly, SHMT2 null cells specifically fail to maintain formylmethionyl-tRNA pools and mitochondrially encoded proteins, phenotypes similar to those observed in MTFMT-deficient patients. These findings provide a rationale for maintaining a compartmentalized one-carbon pathway in mitochondria.
PMCID:5819360
PMID: 29452640
ISSN: 1097-4164
CID: 2958432