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Assembly of the mitochondrial membrane system. MRP1 and MRP2, two yeast nuclear genes coding for mitochondrial
Abstract:
Nuclear respiratory deficient mutants of Saccharomyces cerevisiae impaired in mitochondrial protein synthesis have been screened for lesions in ribosomal protein constituents. Two mutants, each representative of a separate pet complementation group, have been analyzed. One of the mutants, E795, was found to have altered mitochondrial ribosomes as evidenced by the absence of some ribosomal proteins. The second mutant studied, C167, appeared to have more grossly altered ribosomes that could not be isolated by standard preparative procedures. In addition to being defective in mitochondrial protein synthesis, the mutants exhibit an absence of "a" and "b" type cytochromes, are partially blocked in processing of intron bI4 of the apocytochrome b gene, have reduced levels of mitochondrial 15 S rRNA, and convert to rho- and rho 0 mutants at a high frequency. The wild type genes MRP1 and MRP2 were cloned by transformation of the pet mutations in E795 and C167, respectively, with a recombinant plasmid library of wild type yeast genomic DNA. MRP1 codes for a basic protein of 37 kDa with no significant homology to any known prokaryotic or eukaryotic ribosomal protein. MRP2 codes for a 14-kDa polypeptide homologous to protein S14 of the Escherichia coli small ribosomal subunit and to a chloroplast-encoded component of chloroplast ribosomes. The levels of MRP1 and MRP2 mRNAs were examined in glucose-repressed cells and in cells undergoing adaptation to aerobic metabolism of ethanol. The steady state concentrations of the mRNAs increased during the first 3 h of derepression, indicating that expression of these mitochondrial ribosomal protein genes is transcriptionally regulated by glucose in a fashion analogous to respiratory carriers such as cytochrome c.
Insights
Researchers identified two new genes, MRP1 and MRP2, crucial for mitochondrial protein synthesis in yeast. These genes encode essential mitochondrial ribosomal proteins, with their expression regulated by glucose levels.
Area of Science:
- Molecular Biology
- Yeast Genetics
Background:
- Nuclear respiratory deficient mutants in Saccharomyces cerevisiae were screened for defects in mitochondrial protein synthesis.
- Two mutants, E795 and C167, were identified with lesions in ribosomal protein constituents.
Purpose of the Study:
- To identify and characterize genes responsible for mitochondrial ribosomal protein synthesis defects.
- To understand the regulation of mitochondrial ribosomal protein gene expression.
Main Methods:
- Screening of nuclear respiratory deficient yeast mutants.
- Complementation analysis to identify distinct complementation groups.
- Cloning of wild-type genes (MRP1, MRP2) by transformation.
- Analysis of ribosomal protein composition and mRNA levels.
- Investigation of gene expression regulation by glucose and aerobic metabolism.
Main Results:
- Mutant E795 exhibited altered mitochondrial ribosomes lacking specific proteins, while C167 had severely disrupted ribosomes.
- Both mutants showed defects in mitochondrial protein synthesis, cytochrome absence, and altered rRNA processing.
- MRP1 and MRP2 genes were cloned, encoding a novel 37 kDa protein and a 14 kDa protein homologous to E. coli S14, respectively.
- MRP1 and MRP2 mRNA levels increased upon glucose derepression, indicating transcriptional regulation.
Conclusions:
- MRP1 and MRP2 encode essential mitochondrial ribosomal proteins in yeast.
- The expression of these genes is transcriptionally regulated by glucose, similar to respiratory carriers.
- These findings provide insights into the assembly and regulation of the mitochondrial ribosome.