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High Expression Level of Tra2-β1 is Responsible for Increased SMN2 Exon 7 Inclusion in the Testis of SMA Mice

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Journal PLoS One
Date 2015 Mar 18
PMID 25781985
Citations 11
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Abstract

Spinal muscular atrophy (SMA) is an inherited neuromuscular disease caused by deletion or mutation of SMN1 gene. All SMA patients carry a nearly identical SMN2 gene, which produces low level of SMN protein due to mRNA exon 7 exclusion. Previously, we found that the testis of SMA mice (smn-/- SMN2) expresses high level of SMN2 full-length mRNA, indicating a testis-specific mechanism for SMN2 exon 7 inclusion. To elucidate the underlying mechanism, we established primary cultures of testis cells from SMA mice and analyzed them for SMN2 exon 7 splicing. We found that primary testis cells after a 2-hour culture still expressed high level of SMN2 full-length mRNA, but the level decreased after longer cultures. We then compared the protein levels of relevant splicing factors, and found that the level of Tra2-β1 also decreased during testis cell culture, correlated with SMN2 full-length mRNA downregulation. In addition, the testis of SMA mice expressed the highest level of Tra2-β1 among the many tissues examined. Furthermore, overexpression of Tra2-β1, but not ASF/SF2, increased SMN2 minigene exon 7 inclusion in primary testis cells and spinal cord neurons, whereas knockdown of Tra2-β1 decreased SMN2 exon 7 inclusion in primary testis cells of SMA mice. Therefore, our results indicate that high expression level of Tra2-β1 is responsible for increased SMN2 exon 7 inclusion in the testis of SMA mice. This study also suggests that the expression level of Tra2-β1 may be a modifying factor of SMA disease and a potential target for SMA treatment.

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References
1.
Burghes A, Beattie C . Spinal muscular atrophy: why do low levels of survival motor neuron protein make motor neurons sick?. Nat Rev Neurosci. 2009; 10(8):597-609. PMC: 2853768. DOI: 10.1038/nrn2670. View

2.
Chari A, Paknia E, Fischer U . The role of RNP biogenesis in spinal muscular atrophy. Curr Opin Cell Biol. 2009; 21(3):387-93. DOI: 10.1016/j.ceb.2009.02.004. View

3.
Kolb S, Kissel J . Spinal muscular atrophy: a timely review. Arch Neurol. 2011; 68(8):979-84. PMC: 3860273. DOI: 10.1001/archneurol.2011.74. View

4.
Coady T, Lorson C . SMN in spinal muscular atrophy and snRNP biogenesis. Wiley Interdiscip Rev RNA. 2011; 2(4):546-64. DOI: 10.1002/wrna.76. View

5.
Mercuri E, Bertini E, Iannaccone S . Childhood spinal muscular atrophy: controversies and challenges. Lancet Neurol. 2012; 11(5):443-52. DOI: 10.1016/S1474-4422(12)70061-3. View