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Nuclear RNase MRP is required for correct processing of pre-5.8S rRNA in Saccharomyces cerevisiae
1Department of Developmental Biology, Stanford University School of Medicine, California 94305-5427.
Abstract:
RNase MRP is a site-specific ribonucleoprotein endoribonuclease that cleaves RNA from the mitochondrial origin of replication in a manner consistent with a role in priming leading-strand DNA synthesis. Despite the fact that the only known RNA substrate for this enzyme is complementary to mitochondrial DNA, the majority of the RNase MRP activity in a cell is found in the nucleus. The recent characterization of this activity in Saccharomyces cerevisiae and subsequent cloning of the gene coding for the RNA subunit of the yeast enzyme have enabled a genetic approach to the identification of a nuclear role for this ribonuclease. Since the gene for the RNA component of RNase MRP, NME1, is essential in yeast cells and RNase MRP in mammalian cells appears to be localized to nucleoli within the nucleus, we utilized both regulated expression and temperature-conditional mutations of NME1 to assay for a possible effect on rRNA processing. Depletion of the RNA component of the enzyme was accomplished by using the glucose-repressed GAL1 promoter. Shortly after the shift to glucose, the RNA component of the enzyme was found to be depleted severely, and rRNA processing was found to be normal at all sites except the B1 processing site. The B1 site, at the 5' end of the mature 5.8S rRNA, is actually composed of two cleavage sites 7 nucleotides apart. This cleavage normally generates two species of 5.8S rRNA at a ratio of 10:1 (small to large) in most eukaryotes. After RNase MRP depletion, yeast cells were found to have almost exclusively the larger species of 5.8S rRNA. In addition, an aberrant 309-nucleotide precursor that stretched from the A2 to E processing sites of rRNA accumulated in these cells. Temperature-conditional mutations in the RNase MRP RNA gene gave an identical phenotype. Translation in yeast cells depleted of the smaller 5.8S rRNA was found to remain robust, suggesting a possible function for two 5.8S rRNAs in the regulated translation of select messages. These results are consistent with RNase MRP playing a role in a late step of rRNA processing. The data also indicate a requirement for having the smaller form of 5.8S rRNA, and they argue for processing at the B1 position being composed of two separate cleavage events catalyzed by two different activities.
Insights
RNase MRP, an essential enzyme, plays a crucial role in nuclear rRNA processing. Depletion of its RNA component disrupts 5.8S rRNA maturation, impacting translation regulation.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- RNase MRP is a ribonucleoprotein endoribonuclease with known mitochondrial functions.
- Despite its known RNA substrate being mitochondrial, most RNase MRP activity is found in the nucleus.
- The gene for the RNA subunit (NME1) is essential in yeast, suggesting a critical nuclear role.
Purpose of the Study:
- To investigate the nuclear function of RNase MRP, specifically its role in rRNA processing.
- To determine the effect of depleting the RNase MRP RNA component on rRNA maturation in Saccharomyces cerevisiae.
Main Methods:
- Utilized regulated expression (GAL1 promoter) and temperature-conditional mutations of the NME1 gene to deplete RNase MRP RNA.
- Analyzed rRNA processing by monitoring cleavage sites, specifically the B1 processing site, and precursor accumulation.
- Assessed the impact on translation in yeast cells with depleted RNase MRP RNA.
Main Results:
- Depletion of RNase MRP RNA severely affected rRNA processing at the B1 site, altering the ratio of 5.8S rRNA species.
- An aberrant rRNA precursor (309-nucleotide) accumulated upon RNase MRP depletion.
- Identical phenotypes were observed with temperature-conditional mutations in the NME1 gene.
- Translation remained robust even when the smaller 5.8S rRNA species was depleted.
Conclusions:
- RNase MRP is essential for a late step in rRNA processing, specifically at the B1 site.
- The processing at the B1 site likely involves two distinct cleavage events.
- The presence of both small and large 5.8S rRNA species may be important for regulating translation of specific messages.