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Multiple mRNA species generated by alternate polyadenylation from the rat manganese superoxide dismutase gene
1Department of Biochemistry and Molecular Biology, College of Medicine, University of Florida, Gainesville 32610.
Abstract:
The mitochondrial enzyme, manganese superoxide dismutase (MnSOD) is an integral component of the cell's defense against superoxide-mediated cellular damage. We have isolated and characterized four cDNA clones and the structural gene for rat MnSOD. Northern analyses using MnSOD cDNA probes detected at least five mRNAs in all tissues and cell types examined. Southern and Northern analysis using a 3' non-coding sequence probe, common to all the cDNAs, showed hybridization only to genomic restriction fragments that correspond to our genomic clone and the five MnSOD mRNAs. These data demonstrate that all of the rat MnSOD transcripts are derived from a single functional gene. Primer extension data indicate that transcription initiation is clustered within a few bases. Northern analysis using intron probes demonstrates that all five transcripts are fully processed. Northern analysis using cDNA and genomic probes from sequences progressively 3' to the end of the coding sequence indicates that size heterogeneity in the MnSOD transcripts results from variations in the length of the 3' non-coding sequence. From this data and the location of potential polyadenylation signals near the expected sites of transcript termination, we conclude that the existence of multiple MnSOD mRNA species originate as the result of alternate polyadenylation.
Insights
Manganese superoxide dismutase (MnSOD) protects cells from damage. Multiple MnSOD mRNA forms arise from a single gene due to varied polyadenylation, not different genes.
Area of Science:
- Biochemistry
- Molecular Biology
- Cellular Biology
Background:
- Mitochondrial manganese superoxide dismutase (MnSOD) is crucial for cellular defense against oxidative stress.
- Superoxide radicals cause cellular damage, and MnSOD neutralizes these harmful molecules.
Purpose of the Study:
- To characterize the gene structure and mRNA transcripts of rat MnSOD.
- To investigate the origin of multiple MnSOD mRNA species.
Main Methods:
- Isolation and characterization of rat MnSOD cDNA clones and the structural gene.
- Northern and Southern blot analyses using various probes (cDNA, non-coding sequence, intron).
- Primer extension assays to determine transcription initiation sites.
Main Results:
- Five distinct MnSOD mRNA species were detected across all examined tissues.
- All transcripts originate from a single functional MnSOD gene.
- mRNA size heterogeneity is attributed to variations in the 3' non-coding sequence length, resulting from alternative polyadenylation.
Conclusions:
- Rat MnSOD is encoded by a single gene.
- Multiple MnSOD mRNA variants are generated through alternative polyadenylation.
- These findings clarify the molecular basis of MnSOD expression regulation.