Search results for "Induced Pluripotent Stem Cell"

showing 10 items of 81 documents

DNA damage and repair in the differentiation of stem cells and cells of connective cell lineages: A trigger or a complication?

2021

The review summarizes literature data on the role of DNA breaks and DNA repair in differentiation of pluripotent stem cells (PSC) and connective cell lineages. PSC, including embryonic stem cells (ESC) and induced pluripotent stem cells (iPSC), are rapidly dividing cells with highly active DNA damage response (DDR) mechanisms to ensure the stability and integrity of the DNA. In PSCs, the most common DDR mechanism is error-free homologous recombination (HR) that is primarily active during S phase of the cell cycle, whereas in quiescent, slow-dividing or non-dividing tissue progenitors and terminally differentiated cells, error-prone non-homologous end joining (NHEJ) mechanism of the double-s…

0301 basic medicineHistologyDNA RepairQH301-705.5DNA repairDNA damageCellular differentiationInduced Pluripotent Stem CellsBiophysicsBiologyArticle03 medical and health sciences0302 clinical medicinestem cellsOsteogenesisAnimalsHumansBiology (General)Induced pluripotent stem cellEmbryonic Stem Cellsconnective tissueConnective Tissue CellsDNA BreaksCell DifferentiationCell BiologydifferentiationEmbryonic stem cellCell biology030104 developmental biology030220 oncology & carcinogenesisStem cellHomologous recombinationReprogrammingChondrogenesisEuropean Journal of Histochemistry : EJH
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Generation of a disease-specific iPS cell line derived from a patient with Charcot-Marie-Tooth type 2K lacking functional GDAP1 gene

2016

Human CMT2-FiPS4F1 cell line was generated from fibroblasts of a patient with Charcot-Marie-Tooth disease harbouring the following mutations in the GDAP1 gene in heterozygosis: p.Q163X/p.T288NfsX3. This patient did not present mutations in the PM22, MPZ or GJB genes. Human reprogramming factors OCT3/4, KLF4, SOX2 and C-MYC were delivered using a non-integrative methodology that involves the use of Sendai virus.

0301 basic medicineMaleHeterozygoteCellular differentiationCèl·lulesDNA Mutational AnalysisGenetic VectorsInduced Pluripotent Stem CellsKaryotypeNerve Tissue ProteinsBiologyPolymorphism Single NucleotideSendai virusCell Line03 medical and health sciencesKruppel-Like Factor 4stomatognathic systemCharcot-Marie-Tooth DiseaseHumansInduced pluripotent stem cellGeneTranscription factorMedicine(all)GeneticsBase SequenceHeterozygote advantageCell DifferentiationCell BiologyGeneral MedicineFibroblastsbiology.organism_classificationCellular ReprogrammingSendai virus030104 developmental biologyMicroscopy FluorescenceKLF4embryonic structuresSistema nerviós MalaltiesReprogrammingDevelopmental BiologyTranscription Factors
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Dysfunctional mitochondrial fission impairs cell reprogramming

2016

We have recently shown that mitochondrial fission is induced early in reprogramming in a Drp1-dependent manner; however, the identity of the factors controlling Drp1 recruitment to mitochondria was unexplored. To investigate this, we used a panel of RNAi targeting factors involved in the regulation of mitochondrial dynamics and we observed that MiD51, Gdap1 and, to a lesser extent, Mff were found to play key roles in this process. Cells derived from Gdap1-null mice were used to further explore the role of this factor in cell reprogramming. Microarray data revealed a prominent down-regulation of cell cycle pathways in Gdap1-null cells early in reprogramming and cell cycle profiling uncovered…

0301 basic medicineMicroarray analysis techniquescell reprogrammingmitochondrial fissionCellCell BiologyBiologyMitochondrionCell cyclepluripotencyCell biology03 medical and health sciencesiPS cells030104 developmental biology0302 clinical medicinemedicine.anatomical_structureRNA interferencemedicineMitochondrial fissionGdap1Induced pluripotent stem cellMolecular BiologyReprogramming030217 neurology & neurosurgeryDevelopmental Biology
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Considerations for an In Vitro, Cell-Based Testing Platform for Detection of Drug-Induced Inotropic Effects in Early Drug Development. Part 2: Design…

2019

Contractility of the myocardium engines the pumping function of the heart and is enabled by the collective contractile activity of its muscle cells: cardiomyocytes. The effects of drugs on the contractility of human cardiomyocytes in vitro can provide mechanistic insight that can support the prediction of clinical cardiac drug effects early in drug development. Cardiomyocytes differentiated from human-induced pluripotent stem cells have high potential for overcoming the current limitations of contractility assays because they attach easily to extracellular materials and last long in culture, while having human- and patient-specific properties. Under these conditions, contractility measureme…

0301 basic medicinePharmacologyInotropeCell typelcsh:RM1-950cellular alignmentBiologymicroenvironmentco-cultureSarcomereCell biologyContractility03 medical and health scienceslcsh:Therapeutics. Pharmacology030104 developmental biology0302 clinical medicineDrug development030220 oncology & carcinogenesisMyocytePharmacology (medical)sarcomereelectrical stimulationInduced pluripotent stem cellFunction (biology)Frontiers in Pharmacology
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Metformin decreases progerin expression and alleviates pathological defects of Hutchinson–Gilford progeria syndrome cells

2016

Hutchinson–Gilford progeria syndrome (HGPS) is a rare genetic disorder that causes systemic accelerated aging in children. This syndrome is due to a mutation in the LMNA gene that leads to the production of a truncated and toxic form of lamin A called progerin. Because the balance between the A-type lamins is controlled by the RNA-binding protein SRSF1, we have hypothesized that its inhibition may have therapeutic effects for HGPS. For this purpose, we evaluated the antidiabetic drug metformin and demonstrated that 48 h treatment with 5 mmol/l metformin decreases SRSF1 and progerin expression in mesenchymal stem cells derived from HGPS induced pluripotent stem cells (HGPS MSCs). The effect …

0301 basic medicinePremature agingcongenital hereditary and neonatal diseases and abnormalitiesAgingArticleLMNA03 medical and health sciencesProgeria0302 clinical medicinemedicineInduced pluripotent stem cellProgeriaintegumentary systembusiness.industryGenetic disordernutritional and metabolic diseasesmedicine.diseaseProgerinMetformin030104 developmental biology030220 oncology & carcinogenesisCancer researchGeriatrics and GerontologybusinessLaminmedicine.drugnpj Aging and Mechanisms of Disease
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Pathological modelling of pigmentation disorders associated with Hutchinson-Gilford Progeria Syndrome (HGPS) revealed an impaired melanogenesis pathw…

2018

AbstractHutchinson-Gilford Progeria Syndrome (HGPS) is a rare genetic disorder that leads to premature aging. In this study, we used induced pluripotent stem cells to investigate the hypopigmentation phenotypes observed in patients with progeria. Accordingly, two iPS cell lines were derived from cells from HGPS patients and differentiated into melanocytes. Measurements of melanin content revealed a lower synthesis of melanin in HGPS melanocytes as compared to non-pathologic cells. Analysis of the melanosome maturation process by electron microscopy revealed a lower percentage of mature, fully pigmented melanosomes. Finally, a functional rescue experiment revealed the direct role of progerin…

0301 basic medicinePremature agingcongenital hereditary and neonatal diseases and abnormalitiesInduced Pluripotent Stem Cellslcsh:MedicineBiologyModels BiologicalArticleMelanin03 medical and health sciencesProgeriamedicineHumansInduced pluripotent stem celllcsh:SciencePigmentation disorderMelanosomeHypopigmentationProgeriaMelanosomesMultidisciplinaryintegumentary systemlcsh:Rnutritional and metabolic diseasesmedicine.diseaseProgerinCell biology030104 developmental biology[SDV.GEN.GH]Life Sciences [q-bio]/Genetics/Human geneticsMelanocyteslcsh:Qmedicine.symptomPigmentation Disorders
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Generation of three human iPSC lines from PLAN (PLA2G6-associated neurodegeneration) patients

2021

© 2021 The Authors.

0301 basic medicineQH301-705.5Cellular differentiationInduced Pluripotent Stem CellsNeuroaxonal Dystrophies:Cells::Stem Cells::Adult Stem Cells::Induced Pluripotent Stem Cells [ANATOMY]Biologymedicine.disease_cause:células::células madre::células madre adultas::células madre pluripotentes inducidas [ANATOMÍA]Sistema nerviós - DegeneracióCell LineDermal fibroblastGroup VI Phospholipases A203 medical and health sciencesKruppel-Like Factor 40302 clinical medicineSOX2medicineHumans:enfermedades del sistema nervioso::enfermedades neurodegenerativas [ENFERMEDADES]Biology (General)Induced pluripotent stem cellMutationNeurodegenerationCell DifferentiationCell BiologyGeneral Medicinemedicine.diseaseCellular Reprogramming030104 developmental biologyKLF4:Nervous System Diseases::Neurodegenerative Diseases [DISEASES]MutationCancer researchMalalties raresReprogramming030217 neurology & neurosurgeryGenèticaDevelopmental BiologyStem Cell Research
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2017

Brain microvascular endothelial cells (BMEC) separate the peripheral blood from the brain. These cells, which are surrounded by basal lamina, pericytes and glial cells, are highly interconnected through tight and gap junctions. Their permeability properties restrict the transfer of potentially useful therapeutic agents. In such a hermetic system, the gap junctional exchange of small molecules between cerebral endothelial and non-endothelial cells is crucial for maintaining tissue homeostasis. MicroRNA were shown to cross gap junction channels, thereby modulating gene expression and function of the recipient cell. It was also shown that, when altered, BMEC could be regenerated by endothelial…

0301 basic medicineRegeneration (biology)CellGap junctionBiologyCell biology03 medical and health sciencesCellular and Molecular Neuroscience030104 developmental biologymedicine.anatomical_structureGene expressionmicroRNAcardiovascular systemmedicineBasal laminaInduced pluripotent stem cellMolecular BiologyTissue homeostasisFrontiers in Molecular Neuroscience
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Primary Cilium-Mediated Retinal Pigment Epithelium Maturation Is Disrupted in Ciliopathy Patient Cells

2018

SUMMARY Primary cilia are sensory organelles that protrude from the cell membrane. Defects in the primary cilium cause ciliopathy disorders, with retinal degeneration as a prominent phenotype. Here, we demonstrate that the retinal pigment epithelium (RPE), essential for photoreceptor development and function, requires a functional primary cilium for complete maturation and that RPE maturation defects in ciliopathies precede photoreceptor degeneration. Pharmacologically enhanced ciliogenesis in wild-type induced pluripotent stem cells (iPSC)-RPE leads to fully mature and functional cells. In contrast, ciliopathy patient-derived iPSC-RPE and iPSC-RPE with a knockdown of ciliary-trafficking pr…

0301 basic medicineRetinal degenerationInduced Pluripotent Stem CellsRespiratory MucosaRetinal Pigment EpitheliumBiologyCell MaturationCiliopathiesArticleGeneral Biochemistry Genetics and Molecular BiologyMice03 medical and health sciencesCiliogenesismedicineAnimalsCiliaInduced pluripotent stem celllcsh:QH301-705.5Mice KnockoutRetinal pigment epitheliumCiliumRetinal Degenerationmedicine.diseaseCiliopathieseye diseasesCell biologyProtein Kinase C-deltaCiliopathy030104 developmental biologymedicine.anatomical_structurelcsh:Biology (General)sense organsCell Reports
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Nuclear inclusions of pathogenic ataxin-1 induce oxidative stress and perturb the protein synthesis machinery

2020

Spinocerebellar ataxia type-1 (SCA1) is caused by an abnormally expanded polyglutamine (polyQ) tract in ataxin-1. These expansions are responsible for protein misfolding and self-assembly into intranuclear inclusion bodies (IIBs) that are somehow linked to neuronal death. However, owing to lack of a suitable cellular model, the downstream consequences of IIB formation are yet to be resolved. Here, we describe a nuclear protein aggregation model of pathogenic human ataxin-1 and characterize IIB effects. Using an inducible Sleeping Beauty transposon system, we overexpressed the ATXN1(Q82) gene in human mesenchymal stem cells that are resistant to the early cytotoxic effects caused by the expr…

0301 basic medicineSCA1 Spinocerebellar ataxia type-1Intranuclear Inclusion BodiesClinical BiochemistryMSC mesenchymal stem cellProtein aggregationBiochemistry0302 clinical medicineMutant proteinProtein biosynthesisDE differentially expressed genesNuclear proteinlcsh:QH301-705.5FTIR Fourier-transform infrared spectroscopyAtaxin-1lcsh:R5-920biologyChemistryNuclear ProteinspolyQ polyglutamineRibosomeCell biologySB Sleeping BeautyRibosome ; Polyglutamine ; Ataxin-1 ; Oxidative stress ; Transposon ; Sleeping beauty transposon ; Protein networkSpinocerebellar ataxiaProtein foldingCellular modelFunction and Dysfunction of the Nervous Systemlcsh:Medicine (General)Research PaperiPSC induced pluripotent stem cellAtaxin 1Nerve Tissue ProteinsPPI protein-protein interaction03 medical and health sciencesROS reactive oxygen speciesProtein networkSleeping beauty transposonGSEA Gene Set Enrichment AnalysismedicineHumansNPC neural progenitor cellOrganic Chemistrymedicine.diseaseAFM atomic force microscopyOxidative Stress030104 developmental biologylcsh:Biology (General)IIBs intranuclear inclusion bodiesMS mass spectrometryCardiovascular and Metabolic Diseasesbiology.proteinPolyglutamine030217 neurology & neurosurgery
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