Transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.

Proximal spinal muscular atrophy (SMA) is an early onset, autosomal recessive motor neuron disease caused by loss of or mutation in SMN1 (survival motor neuron 1). Despite understanding the genetic basis underlying this disease, it is still not known why motor neurons (MNs) are selectively affected...

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Main Authors: Miho Maeda, Ashlee W Harris, Brewster F Kingham, Casey J Lumpkin, Lynn M Opdenaker, Suzanne M McCahan, Wenlan Wang, Matthew E R Butchbach
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4156416?pdf=render
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spelling doaj-61c4851e2e3640d4a3191ea97a32358c2020-11-25T00:48:00ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0199e10681810.1371/journal.pone.0106818Transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.Miho MaedaAshlee W HarrisBrewster F KinghamCasey J LumpkinLynn M OpdenakerSuzanne M McCahanWenlan WangMatthew E R ButchbachProximal spinal muscular atrophy (SMA) is an early onset, autosomal recessive motor neuron disease caused by loss of or mutation in SMN1 (survival motor neuron 1). Despite understanding the genetic basis underlying this disease, it is still not known why motor neurons (MNs) are selectively affected by the loss of the ubiquitously expressed SMN protein. Using a mouse embryonic stem cell (mESC) model for severe SMA, the RNA transcript profiles (transcriptomes) between control and severe SMA (SMN2+/+;mSmn-/-) mESC-derived MNs were compared in this study using massively parallel RNA sequencing (RNA-Seq). The MN differentiation efficiencies between control and severe SMA mESCs were similar. RNA-Seq analysis identified 3,094 upregulated and 6,964 downregulated transcripts in SMA mESC-derived MNs when compared against control cells. Pathway and network analysis of the differentially expressed RNA transcripts showed that pluripotency and cell proliferation transcripts were significantly increased in SMA MNs while transcripts related to neuronal development and activity were reduced. The differential expression of selected transcripts such as Crabp1, Crabp2 and Nkx2.2 was validated in a second mESC model for SMA as well as in the spinal cords of low copy SMN2 severe SMA mice. Furthermore, the levels of these selected transcripts were restored in high copy SMN2 rescue mouse spinal cords when compared against low copy SMN2 severe SMA mice. These findings suggest that SMN deficiency affects processes critical for normal development and maintenance of MNs.http://europepmc.org/articles/PMC4156416?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Miho Maeda
Ashlee W Harris
Brewster F Kingham
Casey J Lumpkin
Lynn M Opdenaker
Suzanne M McCahan
Wenlan Wang
Matthew E R Butchbach
spellingShingle Miho Maeda
Ashlee W Harris
Brewster F Kingham
Casey J Lumpkin
Lynn M Opdenaker
Suzanne M McCahan
Wenlan Wang
Matthew E R Butchbach
Transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.
PLoS ONE
author_facet Miho Maeda
Ashlee W Harris
Brewster F Kingham
Casey J Lumpkin
Lynn M Opdenaker
Suzanne M McCahan
Wenlan Wang
Matthew E R Butchbach
author_sort Miho Maeda
title Transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.
title_short Transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.
title_full Transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.
title_fullStr Transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.
title_full_unstemmed Transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.
title_sort transcriptome profiling of spinal muscular atrophy motor neurons derived from mouse embryonic stem cells.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Proximal spinal muscular atrophy (SMA) is an early onset, autosomal recessive motor neuron disease caused by loss of or mutation in SMN1 (survival motor neuron 1). Despite understanding the genetic basis underlying this disease, it is still not known why motor neurons (MNs) are selectively affected by the loss of the ubiquitously expressed SMN protein. Using a mouse embryonic stem cell (mESC) model for severe SMA, the RNA transcript profiles (transcriptomes) between control and severe SMA (SMN2+/+;mSmn-/-) mESC-derived MNs were compared in this study using massively parallel RNA sequencing (RNA-Seq). The MN differentiation efficiencies between control and severe SMA mESCs were similar. RNA-Seq analysis identified 3,094 upregulated and 6,964 downregulated transcripts in SMA mESC-derived MNs when compared against control cells. Pathway and network analysis of the differentially expressed RNA transcripts showed that pluripotency and cell proliferation transcripts were significantly increased in SMA MNs while transcripts related to neuronal development and activity were reduced. The differential expression of selected transcripts such as Crabp1, Crabp2 and Nkx2.2 was validated in a second mESC model for SMA as well as in the spinal cords of low copy SMN2 severe SMA mice. Furthermore, the levels of these selected transcripts were restored in high copy SMN2 rescue mouse spinal cords when compared against low copy SMN2 severe SMA mice. These findings suggest that SMN deficiency affects processes critical for normal development and maintenance of MNs.
url http://europepmc.org/articles/PMC4156416?pdf=render
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