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PMID: 22182939 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Transcriptome profiling of UPF3B/NMD-deficient lymphoblastoid cells from patients with various forms of intellectual disability.

Molecular psychiatry ·Vol. 17 ·No. 11 ·2012-11-00 ·Pages 1103-15

Nguyen LS, Jolly L, Shoubridge C, Chan WK, Huang L, Laumonnier F, Raynaud M, Hackett A, Field M, Rodriguez J, Srivastava AK, Lee Y, Long R, Addington AM, Rapoport JL, Suren S, Hahn CN, Gamble J, Wilkinson MF, Corbett MA, Gecz J

Abstract

The nonsense-mediated mRNA decay (NMD) pathway was originally discovered by virtue of its ability to rapidly degrade aberrant mRNAs with premature termination codons. More recently, it was shown that NMD also directly regulates subsets of normal transcripts, suggesting that NMD has roles in normal biological processes. Indeed, several NMD factors have been shown to regulate neurological events (for example, neurogenesis and synaptic plasticity) in numerous vertebrate species. In man, mutations in the NMD factor gene UPF3B, which disrupts a branch of the NMD pathway, cause various forms of intellectual disability (ID). Using Epstein Barr virus-immortalized B cells, also known as lymphoblastoid cell lines (LCLs), from ID patients that have loss-of-function mutations in UPF3B, we investigated the genome-wide consequences of compromised NMD and the role of NMD in neuronal development and function. We found that ~5% of the human transcriptome is impacted in UPF3B patients. The UPF3B paralog, UPF3A, is stabilized in all UPF3B patients, and partially compensates for the loss of UPF3B function. Interestingly, UPF3A protein, but not mRNA, was stabilised in a quantitative manner that inversely correlated with the severity of patients' phenotype. This suggested that the ability to stabilize the UPF3A protein is a crucial modifier of the neurological symptoms due to loss of UPF3B. We also identified ARHGAP24, which encodes a GTPase-activating protein, as a canonical target of NMD, and we provide evidence that deregulation of this gene inhibits axon and dendrite outgrowth and branching. Our results demonstrate that the UPF3B-dependent NMD pathway is a major regulator of the transcriptome and that its targets have important roles in neuronal cells.

MeSH Terms
Brain/growth & development Cell Line Cell Line, Transformed Cells, Cultured GTPase-Activating Proteins/genetics Gene Expression/genetics Gene Expression Profiling/methods Hippocampus/anatomy & histology,growth & development Humans Intellectual Disability/genetics Mutation Neurons/cytology Nonsense Mediated mRNA Decay/genetics RNA-Binding Proteins/genetics,metabolism Signal Transduction/genetics
Chemicals
ARHGAP24 protein, human GTPase-Activating Proteins RNA-Binding Proteins UPF3A protein, human UPF3B protein, human
Authors & Affiliations
21 authors, click to expand affiliations / ORCID
Nguyen L S
Department of Paediatrics, University of Adelaide, Adelaide, SA, Australia.
Jolly L
Shoubridge C
Chan W K
Huang L
Laumonnier F
Raynaud M
Hackett A
Field M
Rodriguez J
Srivastava A K
Lee Y
Long R
Addington A M
Rapoport J L
Suren S
Hahn C N
Gamble J
Wilkinson M F
Corbett M A
Gecz J
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Article Info
Journal
Molecular psychiatry
Abbr.
Mol Psychiatry
ISSN
1476-5578
Published
2012-11-00
Epub
2011-00-20
Pages
1103-15
Language
English
Region
England
NLM ID
9607835
PMCID
PMC4281019
Subset
IM
Grants
Medical Research Council · G0700089 · United Kingdom
Medical Research Council · G9900837 · United Kingdom
NIGMS NIH HHS · R01 GM058595 · United States
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