Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 5 de 5
Filter
Add more filters










Database
Language
Publication year range
1.
Nature ; 618(7963): 151-158, 2023 Jun.
Article in English | MEDLINE | ID: mdl-37198494

ABSTRACT

Pancreatic ductal adenocarcinoma (PDA) is a lethal disease notoriously resistant to therapy1,2. This is mediated in part by a complex tumour microenvironment3, low vascularity4, and metabolic aberrations5,6. Although altered metabolism drives tumour progression, the spectrum of metabolites used as nutrients by PDA remains largely unknown. Here we identified uridine as a fuel for PDA in glucose-deprived conditions by assessing how more than 175 metabolites impacted metabolic activity in 21 pancreatic cell lines under nutrient restriction. Uridine utilization strongly correlated with the expression of uridine phosphorylase 1 (UPP1), which we demonstrate liberates uridine-derived ribose to fuel central carbon metabolism and thereby support redox balance, survival and proliferation in glucose-restricted PDA cells. In PDA, UPP1 is regulated by KRAS-MAPK signalling and is augmented by nutrient restriction. Consistently, tumours expressed high UPP1 compared with non-tumoural tissues, and UPP1 expression correlated with poor survival in cohorts of patients with PDA. Uridine is available in the tumour microenvironment, and we demonstrated that uridine-derived ribose is actively catabolized in tumours. Finally, UPP1 deletion restricted the ability of PDA cells to use uridine and blunted tumour growth in immunocompetent mouse models. Our data identify uridine utilization as an important compensatory metabolic process in nutrient-deprived PDA cells, suggesting a novel metabolic axis for PDA therapy.


Subject(s)
Glucose , Pancreatic Neoplasms , Ribose , Tumor Microenvironment , Uridine , Animals , Mice , Carcinoma, Pancreatic Ductal/metabolism , Carcinoma, Pancreatic Ductal/pathology , Pancreatic Neoplasms/metabolism , Pancreatic Neoplasms/pathology , Ribose/metabolism , Uridine/chemistry , Glucose/deficiency , Cell Division , Cell Line, Tumor , MAP Kinase Signaling System , Uridine Phosphorylase/deficiency , Uridine Phosphorylase/genetics , Uridine Phosphorylase/metabolism , Humans
2.
Cancer Lett ; 372(2): 219-25, 2016 Mar 28.
Article in English | MEDLINE | ID: mdl-26801745

ABSTRACT

Uridine is a natural nucleoside precursor of uridine monophosphate in organisms and thus is considered to be safe and is used in a wide range of clinical settings. The far-reaching effects of pharmacological uridine have long been neglected. Here, we report that the homeostatic disorder of uridine is carcinogenic. Targeted disruption (-/-) of murine uridine phosphorylase (UPase) disrupted the homeostasis of uridine and increased spontaneous tumorigenesis by more than 3-fold. Multiple tumors (e.g., lymphoma, hepatoma and lung adenoma) occurred simultaneously in some UPase deficient mice, but not in wild-type mice raised under the same conditions. In the tissue from UPase -/- mice, the 2'-deoxyuridine,5'-triphosphate (dUTP) levels and uracil DNA were increased and p53 was activated with an increased phospho-Ser18 p53 level. Exposing cell lines (e.g., MCF-7, RKO, HCT-8 and NCI-H460) to uridine (10 or 30 µM) led to uracil DNA damage and p53 activation, which in turn triggered the DNA damage response. In these cells, phospho-ATM, phospho-CHK2, and phospho-γH2AX were increased by uridine. These data suggest that uridine homeostatic disorder leads to uracil DNA damage and that pharmacological uridine may be carcinogenic.


Subject(s)
Cell Transformation, Neoplastic/metabolism , DNA Damage , Neoplasms/etiology , Uridine/metabolism , Animals , Cell Transformation, Neoplastic/genetics , Cell Transformation, Neoplastic/pathology , Dose-Response Relationship, Drug , Genotype , Homeostasis , Humans , MCF-7 Cells , Mice, Knockout , Neoplasms/genetics , Neoplasms/metabolism , Neoplasms/pathology , Phenotype , Phosphorylation , Time Factors , Tumor Suppressor Protein p53/metabolism , Up-Regulation , Uracil/metabolism , Uridine/toxicity , Uridine Phosphorylase/deficiency , Uridine Phosphorylase/genetics
3.
BMC Pharmacol Toxicol ; 15: 27, 2014 May 23.
Article in English | MEDLINE | ID: mdl-24887406

ABSTRACT

BACKGROUND: Tamoxifen, an agonist of estrogen receptor, is widely prescribed for the prevention and long-term treatment of breast cancer. A side effect of tamoxifen is fatty liver, which increases the risk for non-alcoholic fatty liver disease. Prevention of tamoxifen-induced fatty liver has the potential to improve the safety of long-term tamoxifen usage. METHODS: Uridine, a pyrimidine nucleoside with reported protective effects against drug-induced fatty liver, was co-administered with tamoxifen in C57BL/6J mice. Liver lipid levels were evaluated with lipid visualization using coherent anti-Stokes Raman scatting (CARS) microscopy, biochemical assay measurement of triacylglyceride (TAG), and liquid chromatography coupled with mass spectrometry (LC-MS) measurement of membrane phospholipid. Blood TAG and cholesterol levels were measured. Mitochondrial respiration of primary hepatocytes in the presence of tamoxifen and/or uridine was evaluated by measuring oxygen consumption rate with an extracellular flux analyzer. Liver protein lysine acetylation profiles were evaluated with 1D and 2D Western blots. In addition, the relationship between endogenous uridine levels, fatty liver, and tamoxifen administration was evaluated in transgenic mice UPase1-/-and UPase1-TG. RESULTS: Uridine co-administration prevented tamoxifen-induced liver lipid droplet accumulation in mice. The most prominent effect of uridine co-administration with tamoxifen was the stimulation of liver membrane phospholipid biosynthesis. Uridine had no protective effect against tamoxifen-induced impairment to mitochondrial respiration of primary hepatocytes or liver TAG and cholesterol export. Uridine had no effect on tamoxifen-induced changes to liver protein acetylation profile. Transgenic mice UPase1-/-with increased pyrimidine salvage activity were protected against tamoxifen-induced liver lipid droplet accumulation. In contrast, UPase1-TG mice with increased pyrimidine catabolism activity had intrinsic liver lipid droplet accumulation, which was aggravated following tamoxifen administration. CONCLUSION: Uridine co-administration was effective at preventing tamoxifen-induced liver lipid droplet accumulation. The ability of uridine to prevent tamoxifen-induced fatty liver appeared to depend on the pyrimidine salvage pathway, which promotes biosynthesis of membrane phospholipid.


Subject(s)
Antineoplastic Agents, Hormonal/adverse effects , Fatty Liver/prevention & control , Protective Agents/therapeutic use , Tamoxifen/adverse effects , Uridine/therapeutic use , Animals , Fatty Liver/chemically induced , Fatty Liver/metabolism , Female , Lipid Metabolism/drug effects , Lipids/blood , Liver/drug effects , Liver/metabolism , Mice , Mice, Inbred C57BL , Mice, Transgenic , Protective Agents/pharmacology , Uridine/pharmacology , Uridine Phosphorylase/deficiency , Uridine Phosphorylase/genetics
4.
Brain ; 137(Pt 5): 1337-49, 2014 May.
Article in English | MEDLINE | ID: mdl-24727567

ABSTRACT

Balanced pools of deoxyribonucleoside triphosphate precursors are required for DNA replication, and alterations of this balance are relevant to human mitochondrial diseases including mitochondrial neurogastrointestinal encephalopathy. In this disease, autosomal recessive TYMP mutations cause severe reductions of thymidine phosphorylase activity; marked elevations of the pyrimidine nucleosides thymidine and deoxyuridine in plasma and tissues, and somatic multiple deletions, depletion and site-specific point mutations of mitochondrial DNA. Thymidine phosphorylase and uridine phosphorylase double knockout mice recapitulated several features of these patients including thymidine phosphorylase activity deficiency, elevated thymidine and deoxyuridine in tissues, mitochondrial DNA depletion, respiratory chain defects and white matter changes. However, in contrast to patients with this disease, mutant mice showed mitochondrial alterations only in the brain. To test the hypothesis that elevated levels of nucleotides cause unbalanced deoxyribonucleoside triphosphate pools and, in turn, pathogenic mitochondrial DNA instability, we have stressed double knockout mice with exogenous thymidine and deoxyuridine, and assessed clinical, neuroradiological, histological, molecular, and biochemical consequences. Mutant mice treated with exogenous thymidine and deoxyuridine showed reduced survival, body weight, and muscle strength, relative to untreated animals. Moreover, in treated mutants, leukoencephalopathy, a hallmark of the disease, was enhanced and the small intestine showed a reduction of smooth muscle cells and increased fibrosis. Levels of mitochondrial DNA were depleted not only in the brain but also in the small intestine, and deoxyribonucleoside triphosphate imbalance was observed in the brain. The relative proportion, rather than the absolute amount of deoxyribonucleoside triphosphate, was critical for mitochondrial DNA maintenance. Thus, our results demonstrate that stress of exogenous pyrimidine nucleosides enhances the mitochondrial phenotype of our knockout mice. Our mouse studies provide insights into the pathogenic role of thymidine and deoxyuridine imbalance in mitochondrial neurogastrointestinal encephalopathy and an excellent model to study new therapeutic approaches.


Subject(s)
Deoxyribonucleosides/adverse effects , Intestinal Pseudo-Obstruction/chemically induced , Intestinal Pseudo-Obstruction/genetics , Mitochondrial Encephalomyopathies/chemically induced , Mitochondrial Encephalomyopathies/genetics , Age Factors , Animals , Body Weight/drug effects , Body Weight/genetics , Brain/pathology , Deoxyribonucleosides/metabolism , Disease Models, Animal , Intestinal Pseudo-Obstruction/mortality , Intestinal Pseudo-Obstruction/physiopathology , Mice , Mice, Inbred C57BL , Mice, Knockout , Mitochondrial Diseases/etiology , Mitochondrial Diseases/genetics , Mitochondrial Encephalomyopathies/mortality , Mitochondrial Encephalomyopathies/physiopathology , Motor Activity/drug effects , Muscle Strength/drug effects , Muscle Strength/genetics , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Muscular Dystrophy, Oculopharyngeal , Ophthalmoplegia/congenital , Psychomotor Disorders/etiology , Psychomotor Disorders/genetics , Succinate Dehydrogenase/metabolism , Thymidine/adverse effects , Thymidine/metabolism , Thymidine Phosphorylase/deficiency , Uridine Phosphorylase/deficiency
5.
Mol Cell Biol ; 22(14): 5212-21, 2002 Jul.
Article in English | MEDLINE | ID: mdl-12077348

ABSTRACT

Thymidine phosphorylase (TP) regulates intracellular and plasma thymidine levels. TP deficiency is hypothesized to (i) increase levels of thymidine in plasma, (ii) lead to mitochondrial DNA alterations, and (iii) cause mitochondrial neurogastrointestinal encephalomyopathy (MNGIE). In order to elucidate the physiological roles of TP, we generated mice deficient in the TP gene. Although TP activity in the liver was inhibited in these mice, it was fully maintained in the small intestine. Murine uridine phosphorylase (UP), unlike human UP, cleaves thymidine, as well as uridine. We therefore generated TP-UP double-knockout (TP(-/-) UP(-/-)) mice. TP activities were inhibited in TP(-/-) UP(-/-) mice, and the level of thymidine in the plasma of TP(-/-) UP(-/-) mice was higher than for TP(-/-) mice. Unexpectedly, we could not observe alterations of mitochondrial DNA or pathological changes in the muscles of the TP(-/-) UP(-/-) mice, even when these mice were fed thymidine for 7 months. However, we did find hyperintense lesions on magnetic resonance T(2) maps in the brain and axonal edema by electron microscopic study of the brain in TP(-/-) UP(-/-) mice. These findings suggested that the inhibition of TP activity caused the elevation of pyrimidine levels in plasma and consequent axonal swelling in the brains of mice. Since lesions in the brain do not appear to be due to mitochondrial alterations and pathological changes in the muscle were not found, this model will provide further insights into the causes of MNGIE.


Subject(s)
Thymidine Phosphorylase/deficiency , Uridine Phosphorylase/deficiency , Animals , Brain/pathology , Disease Models, Animal , Gene Targeting , Humans , Intestine, Small/enzymology , Liver/enzymology , Mice , Mice, Knockout , Mitochondrial Encephalomyopathies/enzymology , Mitochondrial Encephalomyopathies/genetics , Mitochondrial Encephalomyopathies/pathology , Phenotype , Thymidine Phosphorylase/genetics , Thymidine Phosphorylase/physiology , Uridine Phosphorylase/genetics , Uridine Phosphorylase/physiology
SELECTION OF CITATIONS
SEARCH DETAIL
...