Search results for "Deacetylase inhibitor."

showing 10 items of 73 documents

Xenograft models for undifferentiated pleomorphic sarcoma not otherwise specified are essential for preclinical testing of therapeutic agents

2016

Undifferentiated pleomorphic sarcoma not otherwise specified belongs to the heterogeneous group of soft tissue tumors. It is preferentially located in the upper and lower extremities of the body, and surgical resection remains the only curative treatment. Preclinical animal models are crucial to improve the development of novel chemotherapeutic agents for the treatment of undifferentiated pleomorphic sarcoma. However, this approach has been hampered by the lack of reproducible animal models. The present study established two xenograft animal models generated from stable non-clonal cell cultures, and investigated the difference in chemotherapeutic effects on tumor growth between undifferenti…

0301 basic medicineCancer ResearchPathologymedicine.medical_specialtymedicine.drug_classHistone deacetylase inhibitorArticlesCell cycleBiologyUndifferentiated Pleomorphic SarcomaTyrosine-kinase inhibitorPazopanib03 medical and health sciences030104 developmental biology0302 clinical medicineOncologyIn vivo030220 oncology & carcinogenesismedicineDoxorubicinVorinostatmedicine.drugOncology Letters
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HDAC1 and HDAC2 integrate the expression of p53 mutants in pancreatic cancer.

2015

Mutation of p53 is a frequent genetic lesion in pancreatic cancer being an unmet clinical challenge. Mutants of p53 have lost the tumour-suppressive functions of wild type p53. In addition, p53 mutants exert tumour-promoting functions, qualifying them as important therapeutic targets. Here, we show that the class I histone deacetylases HDAC1 and HDAC2 contribute to maintain the expression of p53 mutants in human and genetically defined murine pancreatic cancer cells. Our data reveal that the inhibition of these HDACs with small molecule HDAC inhibitors (HDACi), as well as the specific genetic elimination of HDAC1 and HDAC2, reduce the expression of mutant p53 mRNA and protein levels. We fur…

0301 basic medicineCancer ResearchProteasome Endopeptidase ComplexMutantHistone Deacetylase 2Histone Deacetylase 1Biologymedicine.disease_causeMolecular oncologyProto-Oncogene Proteins c-myc03 medical and health sciencesMicePancreatic cancerGeneticsmedicineAnimalsHumansRNA MessengerPromoter Regions GeneticMolecular BiologyRegulation of gene expressionMice KnockoutMutationWild typeCancerProto-Oncogene Proteins c-mdm2medicine.diseaseGenes p53HDAC13. Good healthGene Expression Regulation NeoplasticHistone Deacetylase InhibitorsPancreatic NeoplasmsDisease Models Animal030104 developmental biologyMutationCancer researchOncogene
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Relevance of the natural HDAC inhibitor sulforaphane as a chemopreventive agent in urologic tumors.

2018

Due to an increased understanding of molecular biology and the genomics of cancer, new and potent agents have been approved by the Food and Drug Administration (FDA) to fight this disease. However, all of these drugs cause severe side effects and resistance inevitably develops, re-activating tumor growth and dissemination. For this reason, patients turn to natural compounds as alternative or complementary treatment options, since it has been found that natural plant products may block, inhibit, or reverse cancer development. The present review focusses on the role of the natural compound sulforaphane (SFN) as an anti-tumor agent in urologic cancer. SFN is a natural compound found in crucife…

0301 basic medicineCancer ResearchUrologic NeoplasmsApoptosisDisease03 medical and health scienceschemistry.chemical_compound0302 clinical medicineIn vivoIsothiocyanatesCell Line TumorHDAC inhibitorMedicineAnticarcinogenic AgentsHumansEpigeneticsMode of actionBiological ProductsMolecular Structurebusiness.industryCruciferous vegetablesCancermedicine.diseaseHistone Deacetylase Inhibitors030104 developmental biologyOncologychemistry030220 oncology & carcinogenesisSulfoxidesBrassicaceaeCancer researchbusinessSulforaphaneCancer letters
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Tumor Microenvironment And Epithelial Mesenchymal Transition As Targets To Overcome Tumor Multidrug Resistance

2020

It is well established that multifactorial drug resistance hinders successful cancer treatment. Tumor cell interactions with the tumor microenvironment (TME) are crucial in epithelial-mesenchymal transition (EMT) and multidrug resistance (MDR). TME-induced factors secreted by cancer cells and cancer-associated fibroblasts (CAFs) create an inflammatory microenvironment by recruiting immune cells. CD11b+/Gr-1+ myeloid-derived suppressor cells (MDSCs) and inflammatory tumor associated macrophages (TAMs) are main immune cell types which further enhance chronic inflammation. Chronic inflammation nurtures tumor-initiating/cancer stem-like cells (CSCs), induces both EMT and MDR leading to tumor re…

0301 basic medicineCancer Researchmedicine.medical_treatmentMultidrug resistanceTargeted therapyTargeted therapy0302 clinical medicineCancer-Associated FibroblastsNeoplasmsAntineoplastic Combined Chemotherapy ProtocolsTumor-Associated MacrophagesTumor MicroenvironmentPharmacology (medical)HypoxiaTOR Serine-Threonine KinasesSmall moleculesChemotherapy ; Hypoxia ; Inflammation ; Microenvironment ; Multidrug resistance ; Small molecules ; Targeted therapy.Drug Resistance Multiple3. Good healthDNA DemethylationGene Expression Regulation NeoplasticInfectious DiseasesOncology030220 oncology & carcinogenesisInflammation MediatorsEpithelial-Mesenchymal TransitionStromal cellMicroenvironmentBiologyProinflammatory cytokine03 medical and health sciencesCell Line TumormedicineAnimalsHumansChemotherapyEpithelial–mesenchymal transitionPharmacologyInflammationTumor microenvironmentCancerHypoxia-Inducible Factor 1 alpha Subunitmedicine.diseaseHistone Deacetylase InhibitorsMultiple drug resistanceDisease Models Animal030104 developmental biologyDrug Resistance NeoplasmCancer cellCancer research
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Epigenetic Regulation of TRAIL Signaling: Implication for Cancer Therapy

2019

International audience; One of the main characteristics of carcinogenesis relies on genetic alterations in DNA and epigenetic changes in histone and non-histone proteins. At the chromatin level, gene expression is tightly controlled by DNA methyl transferases, histone acetyltransferases (HATs), histone deacetylases (HDACs), and acetyl-binding proteins. In particular, the expression level and function of several tumor suppressor genes, or oncogenes such as c-Myc, p53 or TRAIL, have been found to be regulated by acetylation. For example, HATs are a group of enzymes, which are responsible for the acetylation of histone proteins, resulting in chromatin relaxation and transcriptional activation,…

0301 basic medicineCancer Researchtumor necrosis factor (TNF)TRAILReviewmedicine.disease_causelcsh:RC254-282Chromatin remodelingchromatin remodeling03 medical and health sciences0302 clinical medicinemedicinetumor necrosis factor (TNF).[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biologycancer[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular BiologyEpigeneticsHistone Acetyltransferasesbiologyhistone deacetylase (HDAC)lcsh:Neoplasms. Tumors. Oncology. Including cancer and carcinogens3. Good healthChromatin030104 developmental biologyHistonehistone deacetylase inhibitors (HDACIs)OncologyAcetylation030220 oncology & carcinogenesissilencingCancer researchbiology.proteinHistone deacetylasemethylationCarcinogenesisCancers
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Class I histone deacetylases regulate p53/NF-κB crosstalk in cancer cells

2016

The transcription factors NF-κB and p53 as well as their crosstalk determine the fate of tumor cells upon therapeutic interventions. Replicative stress and cytokines promote signaling cascades that lead to the co-regulation of p53 and NF-κB. Consequently, nuclear p53/NF-κB signaling complexes activate NF-κB-dependent survival genes. The 18 histone deacetylases (HDACs) are epigenetic modulators that fall into four classes (I-IV). Inhibitors of histone deacetylases (HDACi) become increasingly appreciated as anti-cancer agents. Based on their effects on p53 and NF-κB, we addressed whether clinically relevant HDACi affect the NF-κB/p53 crosstalk. The chemotherapeutics hydroxyurea, etoposide, an…

0301 basic medicineDNA damageApoptosisModels BiologicalHistone Deacetylases03 medical and health scienceschemistry.chemical_compound0302 clinical medicineCell Line TumorNeoplasmsHumansHydroxyureaEpigeneticsTranscription factorCellular SenescenceEtoposidebiologyNF-kappa BNF-κBCell Cycle CheckpointsDNA NeoplasmCell BiologyHDAC6Gene Expression Regulation NeoplasticHistone Deacetylase InhibitorsCrosstalk (biology)030104 developmental biologyHistonechemistry030220 oncology & carcinogenesisMutationCancer cellbiology.proteinCancer researchTumor Suppressor Protein p53VidarabineDNA DamageSignal TransductionCellular Signalling
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Dual inhibitors of histone deacetylases and other cancer-related targets: A pharmacological perspective.

2020

International audience; Epigenetic enzymes histone deacetylases (HDACs) are clinically validated anticancer drug targets which have been studied intensively in the past few decades. Although several drugs have been approved in this field, they are still limited to a subset of hematological malignancies (in particular T-cell lymphomas), with therapeutic potential not fully realized and the drug-resistance occurred after a certain period of use. To maximize the therapeutic potential of these classes of anticancer drugs, and to extend their application to solid tumors, numerous combination therapies containing an HDACi and an anticancer agent from other mechanisms are currently ongoing in clin…

0301 basic medicineDual targeting[SDV]Life Sciences [q-bio]Cancer therapyKinasesAntineoplastic AgentsBioinformaticsBiochemistryAnticancer drugsSynergistic effectsHistone Deacetylases03 medical and health sciences0302 clinical medicineDrug Delivery SystemsNeoplasmsReceptorsmedicineAnimalsHumansEpigeneticsPharmacologybiologybusiness.industryCancerDUAL (cognitive architecture)medicine.diseaseAnticancer drug3. Good healthEnzymesClinical trial[SDV] Life Sciences [q-bio]Histone Deacetylase Inhibitors030104 developmental biologyHistone030220 oncology & carcinogenesisbiology.proteinHistone deacetylases (HDACs)EpigeneticsDual inhibitorbusinessBiochemical pharmacology
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Histone Deacetylase Inhibitors from Marine Invertebrates

2020

Simple Summary Histone deacetylases (HDACs) are enzymes that control gene expression and are involved in the onset of serious human pathologies, including cancer; hence, their inhibitors (HDACis) have received increased attention in recent years. It is known that marine invertebrates produce significant amounts of molecules showing active pharmacological properties and an extensive spectrum of biomedical applications. This review is focused on the description of the molecular, biochemical, and, where available, physiological aspects of marine invertebrate-derived compounds that possess HDACi properties, taking into consideration their possible utilization as treatment agents against differe…

0301 basic medicineGene isoformbiomedical applicationsmarine invertebratesSettore BIO/05 - ZoologiaComputational biologyReviewhistone deacetylase inhibitorsGeneral Biochemistry Genetics and Molecular BiologyChromatin remodelinganticancer compound03 medical and health sciencesCnidaria0302 clinical medicineNon-histone proteinmarine invertebrateGene expressionEpigeneticsSettore BIO/06 - Anatomia Comparata E Citologiahistone deacetylase inhibitorlcsh:QH301-705.5General Immunology and MicrobiologybiologyMarine invertebratesanticancer compoundsPorifera030104 developmental biologyHistonelcsh:Biology (General)030220 oncology & carcinogenesisbiology.proteinbiomedical applicationHistone deacetylaseGeneral Agricultural and Biological SciencesEchinodermataBiology
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Molecular docking-based virtual drug screening revealing an oxofluorenyl benzamide and a bromonaphthalene sulfonamido hydroxybenzoic acid as HDAC6 in…

2020

HDAC6 is a crucial epigenetic modifier that plays a vital role in tumor progression and carcinogenesis due to its multiple biological functions. It is a unique member of class-II HDAC enzymes. It possesses two catalytic domains, which function independently of the overall enzyme activity. Up to date, there are only a few selective HDAC6 inhibitors with anti-cancer activity. In this study, 175,204 ligands obtained from the ZINC15 and OTAVAchemical databases were used for virtual drug screening against HDAC6. Molecular docking studies were performed for 100 selected compounds. Furthermore, the top 10 compounds obtained from docking were tested for their efficacy to inhibit the function of HDA…

0301 basic medicineHydroxybenzoic acidMicroscale thermophoresisDrug developmentApoptosisRM1-950NaphthalenesVirtual drug screeningHistone Deacetylase 6Flow cytometry03 medical and health scienceschemistry.chemical_compoundStructure-Activity Relationship0302 clinical medicineCell Line TumorDrug DiscoverymedicineHydroxybenzoatesHumansBenzamideCytotoxicityBenzoic acidCancerPharmacologychemistry.chemical_classificationLeukemiamedicine.diagnostic_testDose-Response Relationship DrugMolecular StructureChemistryMicroscale thermophoresisGeneral MedicineHDAC6Drug Resistance MultipleHistone Deacetylase InhibitorsMolecular Docking Simulation030104 developmental biologyEnzymeBiochemistryDocking (molecular)Drug Resistance Neoplasm030220 oncology & carcinogenesisBenzamidesEpigeneticsTherapeutics. PharmacologyDatabases ChemicalBiomedicinepharmacotherapy = Biomedecinepharmacotherapie
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Resminostat plus sorafenib as second-line therapy of advanced hepatocellular carcinoma - The SHELTER study

2016

Background & Aims No established therapies for patients with hepatocellular carcinoma (HCC) and progression on first-line sorafenib treatment currently exist. This phase I/II trial investigated safety, pharmacokinetics and potential biomarkers of the histone deacetylase inhibitor resminostat and a combination therapy with resminostat and sorafenib. Methods Patients with HCC and radiologically confirmed progression on sorafenib were treated in an exploratory, multi-center, open-label, uncontrolled, non-randomized, parallel group phase I/II study. In the combination group (n=38) four dose levels ranged from daily 200 to 600mg resminostat plus 400 to 800mg sorafenib. The monotherapy group (n=1…

0301 basic medicineOncologySorafenibmedicine.medical_specialtyCombination therapymedicine.drug_classMedizinCancer epigeneticPharmacology03 medical and health scienceschemistry.chemical_compound0302 clinical medicineCancer epigeneticsResminostatInternal medicineClinical endpointmedicineCarcinomaneoplasmsEpigenetic treatmentFirst-in-man studyHistone deacetylase inhibitorHepatologybusiness.industryHistone deacetylase inhibitormedicine.diseasedigestive system diseases030104 developmental biologyZinc finger protein 64chemistryCancer epigenetics; Drug resistance; Epigenetic treatment; Histone deacetylase inhibitor; Zinc finger protein 64030220 oncology & carcinogenesisHepatocellular carcinomaDrug resistancebusinessmedicine.drug
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