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1.
Environ Sci Technol ; 57(50): 21016-21028, 2023 Dec 19.
Article in English | MEDLINE | ID: mdl-38064429

ABSTRACT

Perfluorooctanesulfonic acid (PFOS) and perfluorooctanoic acid (PFOA) are persistent environmental contaminants that are of increasing public concern worldwide. However, their relationship with colorectal cancer (CRC) is poorly understood. This study aims to comprehensively investigate the effect of PFOS and PFOA on the development and progression of CRC in vitro using a series of biological techniques and metabolic profiling. Herein, the migration of three-dimensional (3D) spheroids of two CRC cell lines, SW48 KRAS wide-type (WT) and SW48 KRAS G12A, were observed after exposure to PFOS and PFOA at 2 µM and 10 µM for 7 days. The time and dose-dependent migration phenotype induced by 10 µM PFOS and PFOA was further confirmed by wound healing and trans-well migration assays. To investigate the mechanism of action, derivatization-mass spectrometry-based metabolic profiles were examined from 3D spheroids of SW48 cell lines exposed to PFOS and PFOA (2 µM and 10 µM). Our findings revealed this exposure altered epithelial-mesenchymal transition related metabolic pathways, including fatty acid ß-oxidation and synthesis of proteins, nucleotides, and lipids. Furthermore, this phenotype was confirmed by the downregulation of E-cadherin and upregulation of N-cadherin and vimentin. These findings show novel insight into the relationship between PFOS, PFOA, and CRC.


Subject(s)
Alkanesulfonic Acids , Colorectal Neoplasms , Fluorocarbons , Humans , Proto-Oncogene Proteins p21(ras) , Fluorocarbons/toxicity , Alkanesulfonic Acids/toxicity , Caprylates/toxicity
2.
Mol Cell ; 82(23): 4537-4547.e7, 2022 12 01.
Article in English | MEDLINE | ID: mdl-36327975

ABSTRACT

Inhibition of the electron transport chain (ETC) prevents the regeneration of mitochondrial NAD+, resulting in cessation of the oxidative tricarboxylic acid (TCA) cycle and a consequent dependence upon reductive carboxylation for aspartate synthesis. NAD+ regeneration alone in the cytosol can rescue the viability of ETC-deficient cells. Yet, how this occurs and whether transfer of oxidative equivalents to the mitochondrion is required remain unknown. Here, we show that inhibition of the ETC drives reversal of the mitochondrial aspartate transaminase (GOT2) as well as malate and succinate dehydrogenases (MDH2 and SDH) to transfer oxidative NAD+ equivalents into the mitochondrion. This supports the NAD+-dependent activity of the mitochondrial glutamate dehydrogenase (GDH) and thereby enables anaplerosis-the entry of glutamine-derived carbon into the TCA cycle and connected biosynthetic pathways. Thus, under impaired ETC function, the cytosolic redox state is communicated into the mitochondrion and acts as a rheostat to support GDH activity and cell viability.


Subject(s)
Malate Dehydrogenase , NAD , NAD/metabolism , Malate Dehydrogenase/genetics , Malate Dehydrogenase/metabolism , Oxidation-Reduction , Citric Acid Cycle/physiology , Respiration
3.
Cell Rep ; 40(7): 111198, 2022 08 16.
Article in English | MEDLINE | ID: mdl-35977476

ABSTRACT

The relationship between nutrient starvation and mitochondrial dynamics is poorly understood. We find that cells facing amino acid starvation display clear mitochondrial fusion as a means to evade mitophagy. Surprisingly, further supplementation of glutamine (Q), leucine (L), and arginine (R) did not reverse, but produced stronger mitochondrial hyperfusion. Interestingly, the hyperfusion response to Q + L + R was dependent upon mitochondrial fusion proteins Mfn1 and Opa1 but was independent of MTORC1. Metabolite profiling indicates that Q + L + R addback replenishes amino acid and nucleotide pools. Inhibition of fumarate hydratase, glutaminolysis, or inosine monophosphate dehydrogenase all block Q + L + R-dependent mitochondrial hyperfusion, which suggests critical roles for the tricarboxylic acid (TCA) cycle and purine biosynthesis in this response. Metabolic tracer analyses further support the idea that supplemented Q promotes purine biosynthesis by serving as a donor of amine groups. We thus describe a metabolic mechanism for direct sensing of cellular amino acids to control mitochondrial fusion and cell fate.


Subject(s)
Amino Acids , Mitochondrial Dynamics , Amines/metabolism , Amino Acids/metabolism , Mitochondria/metabolism , Mitochondrial Proteins/metabolism , Purines/metabolism
4.
Cancers (Basel) ; 14(15)2022 Jul 27.
Article in English | MEDLINE | ID: mdl-35954325

ABSTRACT

Metabolic reprogramming and genomic instability are key hallmarks of cancer, the combined analysis of which has gained recent popularity. Given the emerging evidence indicating the role of oncometabolites in DNA damage repair and its routine use in breast cancer treatment, it is timely to fingerprint the impact of olaparib treatment in cellular metabolism. Here, we report the biomolecular response of breast cancer cell lines with DNA damage repair defects to olaparib exposure. Following evaluation of olaparib sensitivity in breast cancer cell lines, we immunoprobed DNA double strand break foci and evaluated changes in cellular metabolism at various olaparib treatment doses using untargeted mass spectrometry-based metabolomics analysis. Following identification of altered features, we performed pathway enrichment analysis to measure key metabolic changes occurring in response to olaparib treatment. We show a cell-line-dependent response to olaparib exposure, and an increased susceptibility to DNA damage foci accumulation in triple-negative breast cancer cell lines. Metabolic changes in response to olaparib treatment were cell-line and dose-dependent, where we predominantly observed metabolic reprogramming of glutamine-derived amino acids and lipids metabolism. Our work demonstrates the effectiveness of combining molecular biology and metabolomics studies for the comprehensive characterisation of cell lines with different genetic profiles. Follow-on studies are needed to map the baseline metabolism of breast cancer cells and their unique response to drug treatment. Fused with genomic and transcriptomics data, such readout can be used to identify key oncometabolites and inform the rationale for the design of novel drugs or chemotherapy combinations.

5.
Oncol Rep ; 45(6)2021 06.
Article in English | MEDLINE | ID: mdl-33846803

ABSTRACT

During tumorigenesis, oncogene activation and metabolism rewiring are interconnected. Activated c­Myc upregulates several genes involved in glutamine metabolism, making cancer cells dependent on high levels of this amino acid to survive and proliferate. After studying the response to glutamine deprivation in cancer cells, it was found that glutamine starvation not only blocked cellular proliferation, but also altered c­Myc protein expression, leading to a reduction in the levels of the canonical c­Myc isoform and an increase in the expression of c­Myc 1, a c­Myc isoform translated from an in­frame 5' CUG codon. In an attempt to identify nutrients able to counteract glutamine deprivation effects, it was shown that, in the absence of glutamine, asparagine permitted cell survival and proliferation, and maintained c­Myc expression as in glutamine­fed cells, with high levels of canonical c­Myc and c­Myc 1 almost undetectable. In asparagine­fed cells, global protein translation was higher than in glutamine­starved cells, and there was an increase in the levels of glutamine synthetase (GS), whose activity was essential for cellular viability and proliferation. In glutamine­starved asparagine­fed cells, the inhibition of c­Myc activity led to a decrease in global protein translation and GS synthesis, suggesting an association between c­Myc expression, GS levels and cellular proliferation, mediated by asparagine when exogenous glutamine is absent.


Subject(s)
Asparagine/metabolism , Cell Transformation, Neoplastic/metabolism , Glutamine/deficiency , Proto-Oncogene Proteins c-myc/metabolism , Cell Proliferation/genetics , Cell Survival/genetics , Cell Transformation, Neoplastic/genetics , Cysteine Proteinase Inhibitors/pharmacology , Gene Expression Regulation, Neoplastic , Glutamate-Ammonia Ligase/antagonists & inhibitors , Glutamate-Ammonia Ligase/metabolism , Humans , Leupeptins/pharmacology , Methionine Sulfoximine/pharmacology , Proteasome Endopeptidase Complex/metabolism , Protein Isoforms/genetics , Protein Isoforms/metabolism , Proteolysis/drug effects , Proto-Oncogene Proteins c-myc/genetics
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