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MECP2e1 isoform mutation affects the form and function of neurons derived from Rett syndrome patient iPS cells

MECP2 mutations cause the X-linked neurodevelopmental disorder Rett Syndrome (RTT) by consistently altering the protein encoded by the MECP2e1 alternative transcript. While mutations that simultaneously affect both MECP2e1 and MECP2e2 isoforms have been widely studied, the consequence of MECP2e1 def...

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Autores principales: Djuric, Ugljesa, Cheung, Aaron Y. L., Zhang, Wenbo, Mok, Rebecca S., Lai, Wesley, Piekna, Alina, Hendry, Jason A., Ross, P. Joel, Pasceri, Peter, Kim, Dae-Sung, Salter, Michael W., Ellis, James
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4380613/
https://www.ncbi.nlm.nih.gov/pubmed/25644311
http://dx.doi.org/10.1016/j.nbd.2015.01.001
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author Djuric, Ugljesa
Cheung, Aaron Y. L.
Zhang, Wenbo
Mok, Rebecca S.
Lai, Wesley
Piekna, Alina
Hendry, Jason A.
Ross, P. Joel
Pasceri, Peter
Kim, Dae-Sung
Salter, Michael W.
Ellis, James
author_facet Djuric, Ugljesa
Cheung, Aaron Y. L.
Zhang, Wenbo
Mok, Rebecca S.
Lai, Wesley
Piekna, Alina
Hendry, Jason A.
Ross, P. Joel
Pasceri, Peter
Kim, Dae-Sung
Salter, Michael W.
Ellis, James
author_sort Djuric, Ugljesa
collection PubMed
description MECP2 mutations cause the X-linked neurodevelopmental disorder Rett Syndrome (RTT) by consistently altering the protein encoded by the MECP2e1 alternative transcript. While mutations that simultaneously affect both MECP2e1 and MECP2e2 isoforms have been widely studied, the consequence of MECP2e1 deficiency on human neurons remains unknown. Here we report the first isoform-specific patient induced pluripotent stem cell (iPSC) model of RTT. RTTe1 patient iPS cell-derived neurons retain an inactive X-chromosome and express only the mutant allele. Single-cell mRNA analysis demonstrated they have a molecular signature of cortical neurons. Mutant neurons exhibited a decrease in soma size, reduced dendritic complexity and decreased cell capacitance, consistent with impaired neuronal maturation. The soma size phenotype was rescued cell-autonomously by MECP2e1 transduction in a level-dependent manner but not by MECP2e2 gene transfer. Importantly, MECP2e1 mutant neurons showed dysfunction in action potential generation, voltage-gated Na(+) currents, and miniature excitatory synaptic current frequency and amplitude. We conclude that MECP2e1 mutation affects soma size, information encoding properties and synaptic connectivity in human neurons that are defective in RTT.
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spelling pubmed-43806132016-04-01 MECP2e1 isoform mutation affects the form and function of neurons derived from Rett syndrome patient iPS cells Djuric, Ugljesa Cheung, Aaron Y. L. Zhang, Wenbo Mok, Rebecca S. Lai, Wesley Piekna, Alina Hendry, Jason A. Ross, P. Joel Pasceri, Peter Kim, Dae-Sung Salter, Michael W. Ellis, James Neurobiol Dis Article MECP2 mutations cause the X-linked neurodevelopmental disorder Rett Syndrome (RTT) by consistently altering the protein encoded by the MECP2e1 alternative transcript. While mutations that simultaneously affect both MECP2e1 and MECP2e2 isoforms have been widely studied, the consequence of MECP2e1 deficiency on human neurons remains unknown. Here we report the first isoform-specific patient induced pluripotent stem cell (iPSC) model of RTT. RTTe1 patient iPS cell-derived neurons retain an inactive X-chromosome and express only the mutant allele. Single-cell mRNA analysis demonstrated they have a molecular signature of cortical neurons. Mutant neurons exhibited a decrease in soma size, reduced dendritic complexity and decreased cell capacitance, consistent with impaired neuronal maturation. The soma size phenotype was rescued cell-autonomously by MECP2e1 transduction in a level-dependent manner but not by MECP2e2 gene transfer. Importantly, MECP2e1 mutant neurons showed dysfunction in action potential generation, voltage-gated Na(+) currents, and miniature excitatory synaptic current frequency and amplitude. We conclude that MECP2e1 mutation affects soma size, information encoding properties and synaptic connectivity in human neurons that are defective in RTT. 2015-01-30 2015-04 /pmc/articles/PMC4380613/ /pubmed/25644311 http://dx.doi.org/10.1016/j.nbd.2015.01.001 Text en © 2015 Published by Elsevier Inc. http://creativecommons.org/licenses/by/4.0/ This manuscript version is made available under the CC BY-NC-ND 4.0 license.
spellingShingle Article
Djuric, Ugljesa
Cheung, Aaron Y. L.
Zhang, Wenbo
Mok, Rebecca S.
Lai, Wesley
Piekna, Alina
Hendry, Jason A.
Ross, P. Joel
Pasceri, Peter
Kim, Dae-Sung
Salter, Michael W.
Ellis, James
MECP2e1 isoform mutation affects the form and function of neurons derived from Rett syndrome patient iPS cells
title MECP2e1 isoform mutation affects the form and function of neurons derived from Rett syndrome patient iPS cells
title_full MECP2e1 isoform mutation affects the form and function of neurons derived from Rett syndrome patient iPS cells
title_fullStr MECP2e1 isoform mutation affects the form and function of neurons derived from Rett syndrome patient iPS cells
title_full_unstemmed MECP2e1 isoform mutation affects the form and function of neurons derived from Rett syndrome patient iPS cells
title_short MECP2e1 isoform mutation affects the form and function of neurons derived from Rett syndrome patient iPS cells
title_sort mecp2e1 isoform mutation affects the form and function of neurons derived from rett syndrome patient ips cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4380613/
https://www.ncbi.nlm.nih.gov/pubmed/25644311
http://dx.doi.org/10.1016/j.nbd.2015.01.001
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