Modeling human neurological and neurodegenerative diseases: From induced pluripotent stem cells to neuronal differentiation and its applications in neurotrauma

dc.contributor.authorBahmad, Hisham F.
dc.contributor.authorHadadeh, Ola
dc.contributor.authorChamaa, Farah
dc.contributor.authorCheaito, Katia A.
dc.contributor.authorDarwish, Batoul
dc.contributor.authorMakkawi, Ahmad Kareem
dc.contributor.authorAbou-Kheir, Wassim G.
dc.contributor.departmentAnatomy, Cell Biology, and Physiological Sciences
dc.contributor.facultyFaculty of Medicine (FM)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:36:39Z
dc.date.available2025-01-24T11:36:39Z
dc.date.issued2017
dc.description.abstractWith the help of several inducing factors, somatic cells can be reprogrammed to become induced pluripotent stem cell (iPSCs) lines. The success is in obtaining iPSCs almost identical to embryonic stemcells (ESCs), therefore various approaches have been tested and ultimately several ones have succeeded. The importance of these cells is in how they serve as models to unveil the molecular pathways and mechanisms underlying several human diseases, and also in its potential roles in the development of regenerative medicine. They further aid in the development of regenerative medicine, autologous cell therapy and drug or toxicity screening. Here, we provide a comprehensive overview of the recent development in the field of iPSCs research, specifically for modeling human neurological and neurodegenerative diseases, and its applications in neurotrauma. These are mainly characterized by progressive functional or structural neuronal loss rendering them extremely challenging to manage. Many of these diseases, including Parkinson’s disease (PD), Huntington’s disease (HD), Amyotrophic lateral sclerosis (ALS) andAlzheimer’s disease (AD) have been exploredin vitro. The main purpose is to generate patient-specific iPS cell lines from the somatic cells that carry mutations or genetic instabilities for the aim of studying their differentiation potential and behavior. This new technology will pave the way for future development in the field of stem cell research anticipating its use in clinical settings and in regenerative medicine in order to treat various human diseases, including neurological and neurodegenerative diseases. © 2017 Bahmad, Hadadeh, Chamaa, Cheaito, Darwish, Makkawi and
dc.identifier.doihttps://doi.org/10.3389/fnmol.2017.00050
dc.identifier.eid2-s2.0-85015706060
dc.identifier.urihttp://hdl.handle.net/10938/28670
dc.language.isoen
dc.publisherFrontiers Research Foundation
dc.relation.ispartofFrontiers in Molecular Neuroscience
dc.sourceScopus
dc.subjectAlzheimer’s disease (ad)
dc.subjectAmyotrophic lateral sclerosis (als)
dc.subjectHuntington’s disease (hd)
dc.subjectInduced pluripotent stemcells (ipscs)
dc.subjectNeuronal differentiation
dc.subjectParkinson’s disease (pd)
dc.subjectSpinal cord injuries (sci)
dc.subjectAmyloid beta protein
dc.subjectCopper zinc superoxide dismutase
dc.subjectStage specific embryo antigen 4
dc.subjectTranscription factor nanog
dc.subjectTranscription factor sox2
dc.subjectTransforming growth factor beta
dc.subjectTyrosine 3 monooxygenase
dc.subjectZinc finger nuclease
dc.subjectAlzheimer disease
dc.subjectAmyotrophic lateral sclerosis
dc.subjectCarcinogenicity
dc.subjectCerebrovascular accident
dc.subjectCognition assessment
dc.subjectDegenerative disease
dc.subjectDementia
dc.subjectDna methylation
dc.subjectElectrophysiology
dc.subjectGene expression
dc.subjectHuman
dc.subjectHuntington chorea
dc.subjectImmune response
dc.subjectMacroglia
dc.subjectNerve cell differentiation
dc.subjectNervous system development
dc.subjectNervous system injury
dc.subjectParkinson disease
dc.subjectPluripotent stem cell
dc.subjectReinnervation
dc.subjectReview
dc.subjectSynapse
dc.titleModeling human neurological and neurodegenerative diseases: From induced pluripotent stem cells to neuronal differentiation and its applications in neurotrauma
dc.typeReview

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