Full UPF3B function is critical for neuronal differentiation of neural stem cells
Tahani Mohammed A Alrahbeni,Francesca Sartor,Jihan Anderson,Zosia Miedzybrodzka,Colin D. McCaig,Berndt Müller +5 more
TL;DR: It is shown that NMD pathway components UPF3B and UPF1 are down-regulated during differentiation of neural stem cells into neurons, indicating that, despite the down-regulation of NMD factors, functional NMD is critical for neuronal differentiation.
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Abstract: Mutation in the UPF3B gene on chromosome X is implicated in neurodevelopmental disorders including X-linked intellectual disability, autism and schizophrenia. The protein UPF3B is involved in the nonsense-mediated mRNA decay pathway (NMD) that controls mRNA stability and functions in the prevention of the synthesis of truncated proteins. Here we show that NMD pathway components UPF3B and UPF1 are down-regulated during differentiation of neural stem cells into neurons. Using tethered function assays we found that UPF3B missense mutations described in families with neurodevelopmental disorders reduced the activity of UPF3B protein in NMD. In neural stem cells, UPF3B protein was detected in the cytoplasm and in the nucleus. Similarly in neurons, UPF3B protein was detected in neurites, the somatic cytoplasm and in the nucleus. In both cell types nuclear UPF3B protein was enriched in the nucleolus. Using GFP tagged UPF3B proteins we found that the missense mutations did not affect the cellular localisation. Expression of missense mutant UPF3B disturbed neuronal differentiation and reduced the complexity of the branching of neurites. Neuronal differentiation was similarly affected in the presence of the NMD inhibitor Amlexanox. The expression of mutant UPF3B proteins lead to a subtle increase in mRNA levels of selected NMD targets. Together our findings indicate that, despite the down-regulation of NMD factors, functional NMD is critical for neuronal differentiation. We propose that the neurodevelopmental phenotype of UPF3B missense mutation is caused by impairment of NMD function altering neuronal differentiation.
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Citations
Quality and quantity control of gene expression by nonsense-mediated mRNA decay
TL;DR: This Review discusses how NMD serves multiple purposes in human cells by degrading both mutated mRNAs to protect the integrity of the transcriptome and normal m RNAs to control the quantities of unmutated transcripts.
Germline Chd8 haploinsufficiency alters brain development in mouse.
Andrea Gompers,Linda Su-Feher,Jacob Ellegood,Nycole A. Copping,M. Asrafuzzaman Riyadh,Tyler W. Stradleigh,Michael C. Pride,Melanie D. Schaffler,A. Ayanna Wade,Rinaldo Catta-Preta,Iva Zdilar,Shreya Louis,Gaurav Kaushik,Brandon J. Mannion,Ingrid Plajzer-Frick,Veena Afzal,Axel Visel,Axel Visel,Axel Visel,Len A. Pennacchio,Len A. Pennacchio,Diane E. Dickel,Jason P. Lerch,Jacqueline N. Crawley,Konstantinos Zarbalis,Jill L. Silverman,Alexander Nord +26 more
TL;DR: This integrative analysis offers an initial picture of the consequences of Chd8 haploinsufficiency for brain development and identified a co-expression module with peak expression in early brain development featuring dysregulation of RNA processing, chromatin remodeling and cell-cycle genes enriched for promoter binding by ChD8.
Control of gene expression through the nonsense-mediated RNA decay pathway.
TL;DR: The function of NMD in normal physiological processes, its dynamic regulation by developmental and environmental cues, and its association with human disease are discussed.
Beyond quality control: The role of nonsense-mediated mRNA decay (NMD) in regulating gene expression
TL;DR: Current knowledge about the role of NMD in embryonic development and tissue-specific cell differentiation is reviewed and recent evidence that suggests a role for NMD as an innate immune response against several viruses is discussed.
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Dual function of UPF3B in early and late translation termination.
Gabriele Neu-Yilik,Etienne Raimondeau,Boris Eliseev,Lahari Yeramala,Beate Amthor,Aurélien Deniaud,Karine Huard,Kathrin Kerschgens,Matthias W. Hentze,Christiane Schaffitzel,Andreas E. Kulozik +10 more
TL;DR: It is discovered that UPF3B interacts with the release factors, delays translation termination and dissociates post‐termination ribosomal complexes that are devoid of the nascent peptide, suggesting that UPf3B is involved in the crosstalk between the NMD machinery and the PTC‐bound ribosome, a central mechanistic step of RNA surveillance.
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