Fmr1 exon 14 skipping in late embryonic development of the rat forebrain
Juliana C Corrêa-Velloso1, Alessandra M Linardi1, Talita Glaser2
1Department of Genetics and Evolutionary Biology, Instituto de Biociências, Universidade de São Paulo, Rua do Matão, 277 # 327, São Paulo, SP, 05508-090, Brazil.
Background:
Fragile X syndrome, the major cause of inherited intellectual disability among men, is due to deficiency of the synaptic functional regulator FMR1 protein (FMRP), encoded by the FMRP translational regulator 1 (FMR1) gene. FMR1 alternative splicing produces distinct transcripts that may consequently impact FMRP functional roles. In transcripts without exon 14 the translational reading frame is shifted. For deepening current knowledge of the differential expression of Fmr1 exon 14 along the rat nervous system development, we conducted a descriptive study employing quantitative RT-PCR and BLAST of RNA-Seq datasets.
Results:
We observed in the rat forebrain progressive decline of total Fmr1 mRNA from E11 to P112 albeit an elevation on P3; and exon-14 skipping in E17-E20 with downregulation of the resulting mRNA. We tested if the reduced detection of messages without exon 14 could be explained by nonsense-mediated mRNA decay (NMD) vulnerability, but knocking down UPF1, a major component of this pathway, did not increase their quantities. Conversely, it significantly decreased FMR1 mRNA having exon 13 joined with either exon 14 or exon 15 site A.
Conclusions:
The forebrain in the third embryonic week of the rat development is a period with significant skipping of Fmr1 exon 14. This alternative splicing event chronologically precedes a reduction of total Fmr1 mRNA, suggesting that it may be part of combinatorial mechanisms downregulating the gene's expression in the late embryonic period. The decay of FMR1 mRNA without exon 14 should be mediated by a pathway different from NMD. Finally, we provide evidence of FMR1 mRNA stabilization by UPF1, likely depending on FMRP.
Insights
Fragile X syndrome is linked to FMR1 gene variations. We found Fmr1 exon 14 skipping in developing rat brains, preceding Fmr1 mRNA reduction, suggesting a novel regulatory mechanism beyond NMD.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Fragile X syndrome, a leading cause of inherited intellectual disability in males, results from FMRP protein deficiency.
- The FMRP protein is encoded by the FMRP translational regulator 1 (FMR1) gene.
- Alternative splicing of FMR1 transcripts can alter FMRP's function.
Purpose of the Study:
- To investigate the differential expression of Fmr1 exon 14 during rat nervous system development.
- To understand the impact of alternative splicing on FMR1 mRNA levels and FMRP function.
Main Methods:
- Quantitative RT-PCR was used to analyze Fmr1 mRNA expression.
- BLAST analysis of RNA-Seq datasets was employed to study exon usage.
- UPF1 knockdown experiments were performed to assess nonsense-mediated mRNA decay (NMD) involvement.
Main Results:
- Total Fmr1 mRNA levels in the rat forebrain decreased progressively from embryonic day 11 (E11) to postnatal day 112 (P112), with a transient increase on P3.
- Exon 14 skipping was observed in Fmr1 transcripts between E17-E20, correlating with reduced mRNA levels.
- Knockdown of UPF1 did not enhance the detection of Fmr1 mRNA lacking exon 14, suggesting NMD is not the primary decay pathway. However, UPF1 knockdown decreased FMR1 mRNA levels, indicating a stabilization role.
Conclusions:
- Significant Fmr1 exon 14 skipping occurs in the developing rat forebrain during the third embryonic week.
- This alternative splicing event precedes the decline in total Fmr1 mRNA, indicating a role in gene expression downregulation.
- FMR1 mRNA decay without exon 14 is likely mediated by a non-NMD pathway, and UPF1 stabilizes FMR1 mRNA, potentially in an FMRP-dependent manner.
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