An intronic element contributes to splicing repression in spinal muscular atrophy
An intronic element contributes to splicing repression in spinal muscular atrophy
The neurodegenerative disease spinal muscular atrophy is caused by mutation of the survival motor neuron 1 ( SMN1 ) gene. SMN2 is a nearly identical copy of SMN1 that is unable to prevent disease, because most SMN2 transcripts lack exon 7 and thus produce a nonfunctional protein. A key cause of inefficient SMN2 exon 7 splicing is a single nucleotide difference between SMN1 and SMN2 within exon 7. We previously provided evidence that this base change suppresses exon 7 splicing by creating an inhibitory element, a heterogeneous nuclear ribonucleoprotein (hnRNP) A1-dependent exonic splicing silencer. We now find that another rare nucleotide difference between SMN1 and SMN2 , in intron 7, potentially creates a second SMN2 -specific hnRNP A1 binding site. Remarkably, this single base change does indeed create a high-affinity hnRNP A1 binding site, and base substitutions that disrupt it restore exon 7 inclusion in vivo and prevent hnRNP A1 binding in vitro . We propose that interactions between hnRNP A1 molecules bound to the exonic and intronic sites cooperate to exclude exon 7 and discuss the significance of this exclusion with respect to SMN expression and splicing control more generally.
- King’s University United States
- Columbia University United States
Binding Sites, RNA-Binding Proteins, Nerve Tissue Proteins, SMN Complex Proteins, Polymerase Chain Reaction, Polymorphism, Single Nucleotide, Survival of Motor Neuron 1 Protein, Heterogeneous-Nuclear Ribonucleoproteins, Introns, Muscular Atrophy, Spinal, Survival of Motor Neuron 2 Protein, Alternative Splicing, Humans, Immunoprecipitation, Cyclic AMP Response Element-Binding Protein, Plasmids
Binding Sites, RNA-Binding Proteins, Nerve Tissue Proteins, SMN Complex Proteins, Polymerase Chain Reaction, Polymorphism, Single Nucleotide, Survival of Motor Neuron 1 Protein, Heterogeneous-Nuclear Ribonucleoproteins, Introns, Muscular Atrophy, Spinal, Survival of Motor Neuron 2 Protein, Alternative Splicing, Humans, Immunoprecipitation, Cyclic AMP Response Element-Binding Protein, Plasmids
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