ArticleThe Journal of neuroscience : the official journal of the Society for Neuroscience2015
Functional Deficiencies in Fragile X Neurons Derived from Human Embryonic Stem Cells.
Article in The Journal of neuroscience : the official journal of the Society for Neuroscience, 2015. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 42 papers.
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42 citing papers in PubMed, 68 citations in OpenAlex.
- Altered ECM deposition and cell adhesion signaling in a human cortical organoid model of fragile X syndrome.Molecular brain · 2026Article
- Understanding pathophysiology in fragile X syndrome: a comprehensive review.Neurogenetics · 2024Review
- Deep functional measurements of Fragile X syndrome human neurons reveal multiparametric electrophysiological disease phenotype.Communications biology · 2024Article
- Purinergic Signalling Mediates Aberrant Excitability of Developing Neuronal Circuits in the Fmr1 Knockout Mouse Model.Molecular neurobiology · 2024Article
- Article
- Harnessing the potential of human induced pluripotent stem cells, functional assays and machine learning for neurodevelopmental disorders.Frontiers in neuroscience · 2024Review
- FMRP Enhances the Translation ofInternational journal of molecular sciences · 2023Article
- Elevated levels of FMRP-target MAP1B impair human and mouse neuronal development and mouse social behaviors via autophagy pathway.Nature communications · 2023Article
- Article
- Axonal and presynaptic FMRP: Localization, signal, and functional implications.Hearing research · 2023Review
- iPSCs-Derived Neurons and Brain Organoids from Patients.Handbook of experimental pharmacology · 2023Article
- Transcriptomic Analysis of Human Fragile X Syndrome Neurons Reveals Neurite Outgrowth Modulation by the TGFβ/BMP Pathway.International journal of molecular sciences · 2022Article
- Mechanisms Driving the Emergence of Neuronal Hyperexcitability in Fragile X Syndrome.International journal of molecular sciences · 2022Review
- Review
- Impaired Functional Connectivity Underlies Fragile X Syndrome.International journal of molecular sciences · 2022Article
- iPSC toolbox for understanding and repairing disrupted brain circuits in autism.Molecular psychiatry · 2022Review
- Review
- Channelopathies in fragile X syndrome.Nature reviews. Neuroscience · 2021Review
- Hyperexcitability of Sensory Neurons in Fragile X Mouse Model.Frontiers in molecular neuroscience · 2021Article
- Article
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4 authors at 2 institutions in 1 country.
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No grant is acknowledged in the PubMed record.
Abstract
Fragile X syndrome (FXS), the most common form of inherited mental retardation, is a neurodevelopmental disorder caused by silencing of the FMR1 gene, which in FXS becomes inactivated during human embryonic development. We have shown recently that this process is recapitulated by in vitro neural differentiation of FX human embryonic stem cells (FX-hESCs), derived from FXS blastocysts. In the present study, we analyzed morphological and functional properties of neurons generated from FX-hESCs. Human FX neurons can fire single action potentials (APs) to depolarizing current commands, but are unable to discharge trains of APs. Their APs are of a reduced amplitudes and longer durations than controls. These are reflected in reduced inward Na(+) and outward K(+) currents. In addition, human FX neurons contain fewer synaptic vesicles and lack spontaneous synaptic activity. Notably, synaptic activity in these neurons can be restored by coculturing them with normal rat hippocampal neurons, demonstrating a critical role for synaptic mechanisms in FXS pathology. This is the first extensive functional analysis of human FX neurons derived in vitro from hESCs that provides a convenient tool for studying molecular mechanisms underlying the impaired neuronal functions in FXS. SIGNIFICANCE STATEMENT: Fragile X syndrome (FXS), the most common form of inherited mental retardation, is caused by silencing of the FMR1 gene. In this study, we describe for the first time the properties of neurons developed from human embryonic stem cells (hESCs) that carry the FMR1 mutation and are grown in culture for extended periods. These neurons are retarded compared with controls in several morphological and functional properties. In vitro neural differentiation of FX hESCs can thus serve as a most relevant system for the analysis of molecular mechanisms underlying the impaired neuronal functions in FXS.
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