Search results for "Methylnitronitrosoguanidine"

showing 10 items of 15 documents

Human Monocytes, but not Dendritic Cells Derived from Them, Are Defective in Base Excision Repair and Hypersensitive to Methylating Agents

2007

Abstract Monocytes and dendritic cells are key players in the immune response. Because dendritic cells drive the tumor host defense, it is important that monocytes and dendritic cells survive cytotoxic tumor therapy. Although most of the anticancer drugs target DNA, the DNA repair capacity of monocytes and dendritic cells has not yet been investigated. We studied the sensitivity of monocytes and monocyte-derived dendritic cells against various genotoxic agents and found monocytes to be more sensitive to overall cell kill and apoptosis upon exposure to methylating agents (e.g., N-methyl-N′-nitro-N-nitrosoguanidine, methyl methanesulfonate, and the anticancer drug temozolomide). On the other …

Alkylating AgentsMethylnitronitrosoguanidineCancer ResearchDNA RepairCell SurvivalDNA repairBiologyMonocytesDrug HypersensitivityXRCC1Immune systemTemozolomidemedicineHumansCytotoxic T cellAntigen-presenting cellCells CulturedMonocyteDendritic CellsBase excision repairDendritic cellDNA MethylationMethyl MethanesulfonateDacarbazinemedicine.anatomical_structureOncologyImmunologyCancer researchMutagensCancer Research
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Kinetics of gamma-H2AX focus formation upon treatment of cells with UV light and alkylating agents.

2008

Histone H2AX is rapidly phosphorylated in response to DNA double-strand breaks (DSBs) induced by ionizing radiation (IR). Here we show that DNA damage induced by alkylating agents [methyl methanesulfonate (MMS) and N-methyl-N'-nitro-N-nitrosoguanidine (MNNG)] and ultraviolet light (UV-C) leads to a dose and time dependent accumulation of phosphorylated H2AX (gamma-H2AX). Time course experiments revealed that the number of gamma-H2AX foci reached peak levels 8 hr after MMS or MNNG treatment and declined to almost control values within 24 hr after exposure. Upon UV-C treatment, a biphasic response was observed with a maximum 12 hr after treatment. In 43-3B cells deficient in nucleotide excisi…

Alkylating AgentsMethylnitronitrosoguanidineTime FactorsDNA RepairEpidemiologyDNA damageMethylnitronitrosoguanidineDNA repairUltraviolet RayscellsHealth Toxicology and MutagenesisFluorescent Antibody TechniqueCHO CellsBiologyenvironment and public healthHistoneschemistry.chemical_compoundCricetulusCricetinaeUltraviolet lightAnimalsPhosphorylationGenetics (clinical)DNA replicationMethyl MethanesulfonateMolecular biologyMethyl methanesulfonateenzymes and coenzymes (carbohydrates)KineticschemistryBiochemistrybiological phenomena cell phenomena and immunityDNANucleotide excision repairDNA DamageEnvironmental and molecular mutagenesis
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Nuclear Translocation of Mismatch Repair Proteins MSH2 and MSH6 as a Response of Cells to Alkylating Agents

2000

Mammalian mismatch repair has been implicated in mismatch correction, the prevention of mutagenesis and cancer, and the induction of genotoxicity and apoptosis. Here, we show that treatment of cells specifically with agents inducing O(6)-methylguanine in DNA, such as N-methyl-N'-nitro-N-nitrosoguanidine and N-methyl-N-nitrosourea, elevates the level of MSH2 and MSH6 and increases GT mismatch binding activity in the nucleus. This inducible response occurs immediately after alkylation, is long-lasting and dose-dependent, and results from translocation of the preformed MutSalpha complex (composed of MSH2 and MSH6) from the cytoplasm into the nucleus. It is not caused by an increase in MSH2 gen…

CytoplasmDNA RepairBase Pair MismatchRNA StabilityChromosomal translocationmedicine.disease_causeBiochemistrychemistry.chemical_compoundMismatch Repair Endonuclease PMS2Adenosine TriphosphatasesNuclear ProteinsMethylnitrosoureaNeoplasm ProteinsDNA-Binding ProteinsMutS Homolog 2 ProteinDNA mismatch repairMutL Protein Homolog 1Protein BindingAlkylating AgentsMethylnitronitrosoguanidinecongenital hereditary and neonatal diseases and abnormalitiesGuanineActive Transport Cell NucleusBiologyCell LineO(6)-Methylguanine-DNA MethyltransferaseProto-Oncogene ProteinsDNA Repair ProteinmedicineHumansRNA MessengerneoplasmsMolecular BiologyAdaptor Proteins Signal TransducingCell NucleusMutagenesisnutritional and metabolic diseasesDNACell BiologyDNA MethylationMolecular biologydigestive system diseasesMSH6DNA Repair EnzymesGene Expression RegulationchemistryMSH2Carrier ProteinsGenotoxicityDNADNA DamageHeLa CellsJournal of Biological Chemistry
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Chromosomal instability, reproductive cell death and apoptosis induced by O6-methylguanine in Mex−, Mex+ and methylation-tolerant mismatch repair com…

1998

O6-Methylguanine (O6-MeG) is induced in DNA by methylating environmental carcinogens and various cytostatic drugs. It is repaired by O6-methylguanine-DNA methyltransferase (MGMT). If not repaired prior to replication, the lesion generates gene mutations and leads to cell death, sister chromatid exchanges (SCEs), chromosomal aberrations and malignant transformation. To address the question of how O6-MeG is transformed into genotoxic effects, isogenic Chinese hamster cell lines either not expressing MGMT (phenotypically Mex-), expressing MGMT (Mex+) or exhibiting the tolerance phenotype (Mex-, methylation resistant) were compared as to their clastogenic response. Mex- cells were more sensitiv…

DNA ReplicationMethylnitronitrosoguanidineGuanineDNA RepairDNA damageHealth Toxicology and MutagenesisDrug ResistanceApoptosisCHO CellsGene mutationBiologyChromosomesDNA AdductsO(6)-Methylguanine-DNA MethyltransferaseCricetulusCricetinaeChromosome instabilityGeneticsAnimalsSister chromatidsMolecular BiologyMitosisChromosome AberrationsCell DeathModels GeneticMutagenicity TestsDNA replicationDNA MethylationMolecular biologyDNA methylationDNA mismatch repairSister Chromatid ExchangeMutation Research/Fundamental and Molecular Mechanisms of Mutagenesis
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Processing of O6-methylguanine into DNA double-strand breaks requires two rounds of replication whereas apoptosis is also induced in subsequent cell …

2009

The DNA adduct O(6)-methylguanine (O(6)MeG) induced by environmental genotoxins and anticancer drugs is a highly mutagenic, genotoxic and apoptotic lesion. Apoptosis induced by O(6)MeG requires mismatch repair (MMR) and proliferation. Models of O(6)MeG-triggered cell death postulate that O(6)MeG/T mispairs activate MMR giving rise to either direct genotoxic signaling or secondary lesions that trigger apoptotic signaling in the 2(nd) replication cycle. To test these hypotheses, we used a highly synchronized cell system competent and deficient for the repair of O(6)MeG adducts, which were induced by the S(N)1 methylating agent N-methyl-N'-nitro-N-nitrosoguanidine (MNNG). We show that DNA doub…

DNA ReplicationProgrammed cell deathMethylnitronitrosoguanidineCell cycle checkpointGuanineDNA repairBlotting WesternSuccinimidesApoptosisCHO CellsBiologychemistry.chemical_compoundO(6)-Methylguanine-DNA MethyltransferaseCricetulusCricetinaeDNA adductAnimalsDNA Breaks Double-StrandedMolecular BiologyCell CycleCell BiologyCell cycleFlow CytometryFluoresceinsMolecular biologyCell biologychemistryMicroscopy FluorescenceApoptosisDNA mismatch repairDNADevelopmental BiologyCell cycle (Georgetown, Tex.)
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Chemical skin carcinogenesis is prevented in mice by the induced expression of a TGF-β related transgene

1995

Skin papillomas and squamous cell carcinomas (SCCs) are induced in mice by tumor initiation with a carcinogen followed by tumor promotion with the phorbol ester 12-O-tetradecanoylphorbol-13-acetate (TPA). These usually arise from preneoplastic lesions characterized by epidermal proliferation and hyperplasia, dermal edema, and inflammation. To evaluate the role of polypeptide growth factors in chemically induced skin carcinogenesis, we used transgenic mice carrying the cDNA for a TGF-β related molecule, bone morphogenetic protein-4 (BMP-4), under the control of the regulatory elements of the cytokeratin IV* gene in a skin carcinogenesis protocol. Control non-transgenic littermates and BMP-4 …

Genetically modified mouseMethylnitronitrosoguanidinePathologymedicine.medical_specialtySkin NeoplasmsHealth Toxicology and MutagenesisTransgenemedicine.medical_treatmentMice TransgenicTumor initiationBiologyToxicologymedicine.disease_causeMiceTransforming Growth Factor betaGeneticsmedicineAnimalsGenetics (clinical)SkinPapillomaintegumentary systemEpidermis (botany)ProteinsHyperplasiamedicine.diseaseCytokineBromodeoxyuridineOncologyBone Morphogenetic ProteinsCarcinoma Squamous CellCancer researchTetradecanoylphorbol AcetateTumor promotionEpidermisCarcinogenesisCell DivisionTeratogenesis, Carcinogenesis, and Mutagenesis
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A novel form of ataxia oculomotor apraxia characterized by oxidative stress and apoptosis resistance

2007

Several different autosomal recessive genetic disorders characterized by ataxia with oculomotor apraxia (AOA) have been identified with the unifying feature of defective DNA damage recognition and/or repair. We describe here the characterization of a novel form of AOA showing increased sensitivity to agents that cause single-strand breaks (SSBs) in DNA but having no gross defect in the repair of these breaks. Evidence for the presence of residual SSBs in DNA was provided by dramatically increased levels of poly (ADP-ribose)polymerase (PARP-1) auto-poly (ADP-ribosyl)ation, the detection of increased levels of reactive oxygen/nitrogen species (ROS/RNS) and oxidative damage to DNA in the patie…

MaleMethylnitronitrosoguanidineProgrammed cell deathAtaxiaDNA RepairApraxiasDNA damageMitomycinBlotting WesternPoly (ADP-Ribose) Polymerase-1Apoptosismedicine.disease_causeAntioxidantschemistry.chemical_compoundRadiation IonizingmedicineHumansDNA Breaks Single-StrandedOculomotor apraxiaMolecular BiologyCells CulturedEtoposideMembrane Potential MitochondrialbiologyCytochrome cHydrogen PeroxideCell BiologyFlow Cytometrymedicine.diseaseAntineoplastic Agents PhytogenicReactive Nitrogen SpeciesMolecular biologyOxidative StresschemistryApoptosisbiology.proteinAtaxiaCamptothecinFemalePoly(ADP-ribose) Polymerasesmedicine.symptomDNAOxidative stressDNA DamageCell Death & Differentiation
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Xrcc2 deficiency sensitizes cells to apoptosis by MNNG and the alkylating anticancer drugs temozolomide, fotemustine and mafosfamide

2006

DNA double-strand breaks (DSBs) are potent killing lesions, and inefficient repair of DSBs does not only lead to cell death but also to genomic instability and tumorigenesis. DSBs are repaired by non-homologous end-joining and homologous recombination (HR). A key player in HR is Xrcc2, a Rad51-like protein. Cells deficient in Xrcc2 are hypersensitive to X-rays and mitomycin C and display increased chromosomal aberration frequencies. In order to elucidate the role of Xrcc2 in resistance to anticancer drugs, we compared Xrcc2 knockout (Xrcc2-/-) mouse embryonic fibroblasts with the corresponding isogenic wild-type and Xrcc2 complemented knockout cells. We show that Xrcc2-/- cells are hypersen…

MethylnitronitrosoguanidineCancer ResearchProgrammed cell deathDNA repairDNA damageMitomycinApoptosisBiologyNitrosourea Compoundschemistry.chemical_compoundOrganophosphorus CompoundsMafosfamideTemozolomidemedicineHumansCytotoxic T cellAntineoplastic Agents AlkylatingCyclophosphamideCisplatinMolecular biologyDNA-Binding ProteinsDacarbazineOncologychemistryApoptosisFotemustineCisplatinMutagensmedicine.drugCancer Letters
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Apoptosis in malignant glioma cells triggered by the temozolomide-induced DNA lesion O6-methylguanine

2006

Methylating drugs such as temozolomide (TMZ) are widely used in the treatment of brain tumours (malignant gliomas). The mechanism of TMZ-induced glioma cell death is unknown. Here, we show that malignant glioma cells undergo apoptosis following treatment with the methylating agents N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) and TMZ. Cell death determined by colony formation and apoptosis following methylation is greatly stimulated by p53. Transfection experiments with O(6)-methylguanine-DNA methyltransferase (MGMT) and depletion of MGMT by O(6)-benzylguanine showed that, in gliomas, the apoptotic signal originates from O(6)-methylguanine (O(6)MeG) and that repair of O(6)MeG by MGMT prevent…

MethylnitronitrosoguanidineCancer ResearchProgrammed cell deathFas Ligand ProteinGuanineDNA repairFas-Associated Death Domain ProteinBlotting WesternApoptosisBiologymedicine.disease_causeO(6)-Methylguanine-DNA MethyltransferaseGliomaTemozolomideTumor Cells CulturedGeneticsmedicineHumansDNA Breaks Double-StrandedRNA Small InterferingAntineoplastic Agents AlkylatingneoplasmsMolecular BiologyTumor Stem Cell AssayCell ProliferationTemozolomideBrain NeoplasmsCell CycleGliomaCell cycleFlow CytometryFas receptormedicine.diseaseDacarbazineProto-Oncogene Proteins c-bcl-2ApoptosisCaspasesCancer researchTumor Suppressor Protein p53CarcinogenesisDNA Damagemedicine.drugOncogene
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Apoptosis induced by MNNG in human TK6 lymphoblastoid cells is p53 and Fas/CD95/Apo-1 related.

2003

Agents inducing O(6)-methylguanine (O(6)MeG) in DNA, such as N-methyl-N'-nitro-N-nitrosoguanidine (MNNG), are not only highly mutagenic and carcinogenic but also cytotoxic because of the induction of apoptosis. In CHO fibroblasts, apoptosis triggered by O(6)MeG requires cell proliferation and MutSalpha-dependent mismatch repair and is related to the induction of DNA double-strand breaks (DSBs). Furthermore, it is mediated by Bcl-2 degradation and does not require p53 for which the cells were mutated [Cancer Res. 60 (2000) 5815]. Here we studied cytotoxicity and apoptosis induced by MNNG in a pair of human lymphoblastoid cells expressing wild-type p53 (TK6) and mutant p53 (WTK1) and show tha…

MethylnitronitrosoguanidineCell SurvivalHealth Toxicology and MutagenesisApoptosisCHO CellsBiologyCell LineBcl-2-associated X proteinCricetinaeProto-Oncogene ProteinsGeneticsCytotoxic T cellAnimalsHumansfas Receptorbcl-2-Associated X ProteinMitogen-Activated Protein Kinase 1Cell growthLymphoblastFas receptorMolecular biologyKineticsCell killingProto-Oncogene Proteins c-bcl-2Cell cultureApoptosisbiology.proteinTumor Suppressor Protein p53DNA DamageMutation research
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