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Published on: April 21, 2016
Variants in SCAF4 Cause a Neurodevelopmental Disorder and Are Associated with Impaired mRNA Processing
Anna Fliedner1, Philipp Kirchner1, Antje Wiesener1
1Institute of Human Genetics, Friedrich-Alexander-Universität Erlangen-Nürnberg, 91054 Erlangen, Germany.
Abstract:
RNA polymerase II interacts with various other complexes and factors to ensure correct initiation, elongation, and termination of mRNA transcription. One of these proteins is SR-related CTD-associated factor 4 (SCAF4), which is important for correct usage of polyA sites for mRNA termination. Using exome sequencing and international matchmaking, we identified nine likely pathogenic germline variants in SCAF4 including two splice-site and seven truncating variants, all residing in the N-terminal two thirds of the protein. Eight of these variants occurred de novo, and one was inherited. Affected individuals demonstrated a variable neurodevelopmental disorder characterized by mild intellectual disability, seizures, behavioral abnormalities, and various skeletal and structural anomalies. Paired-end RNA sequencing on blood lymphocytes of SCAF4-deficient individuals revealed a broad deregulation of more than 9,000 genes and significant differential splicing of more than 2,900 genes, indicating an important role of SCAF4 in mRNA processing. Knockdown of the SCAF4 ortholog CG4266 in the model organism Drosophila melanogaster resulted in impaired locomotor function, learning, and short-term memory. Furthermore, we observed an increased number of active zones in larval neuromuscular junctions, representing large glutamatergic synapses. These observations indicate a role of CG4266 in nervous system development and function and support the implication of SCAF4 in neurodevelopmental phenotypes. In summary, our data show that heterozygous, likely gene-disrupting variants in SCAF4 are causative for a variable neurodevelopmental disorder associated with impaired mRNA processing.
Insights
Genetic variants in SR-related CTD-associated factor 4 (SCAF4) cause neurodevelopmental disorders by disrupting mRNA processing. These SCAF4 gene mutations lead to intellectual disability, seizures, and developmental abnormalities.
Area of Science:
- Molecular Biology
- Genetics
- Neuroscience
Background:
- RNA polymerase II transcription involves numerous factors for accurate mRNA processing.
- SR-related CTD-associated factor 4 (SCAF4) plays a crucial role in mRNA termination via polyA site usage.
Purpose of the Study:
- To investigate the role of SCAF4 in neurodevelopmental disorders.
- To identify genetic variants in SCAF4 associated with these conditions.
Main Methods:
- Exome sequencing and international genetic matchmaking were employed.
- RNA sequencing on patient blood lymphocytes and Drosophila melanogaster knockdown models were utilized.
Main Results:
- Nine likely pathogenic SCAF4 variants were identified, mostly de novo and truncating.
- SCAF4 deficiency led to widespread gene deregulation and differential splicing in humans.
- Drosophila SCAF4 ortholog knockdown impaired learning, memory, and synaptic development.
Conclusions:
- Heterozygous, gene-disrupting SCAF4 variants are causative for variable neurodevelopmental disorders.
- SCAF4 is critical for proper mRNA processing and nervous system development.
- Disruption of SCAF4 impacts gene expression and neurobiological functions.
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