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Updated: Aug 15, 2026

Assessment of Submitochondrial Protein Localization in Budding Yeast Saccharomyces cerevisiae
Published on: July 19, 2021
The Saccharomyces cerevisiae Pet309 protein is embedded in the mitochondrial inner membrane
G M Manthey1, B D Przybyla-Zawislak, J E McEwen
1Dept. of Molecular Biology, Beckman Research Institute, City of Hope Medical Center, USA.
Abstract:
The nuclear PET309 gene of Saccharomyces cerevisiae is necessary for expression of the mitochondrial COX1 gene, which encodes subunit I of cytochrome c oxidase. In a pet309 null mutant, there is a defect both in accumulation of COX1 pre-RNA, if it contains introns, and in translation of COX1 RNAs [Manthey, G. M. & McEwen, J. E. (1995) EMBO J. 14, 4031-4043]. To facilitate identification and intracellular localization of the protein Pet309p, that is encoded by the PET309 gene, Pet309p was tagged at the carboxy terminus with an epitope from the human c-myc protein. A monoclonal antibody against the c-myc epitope detected a 98-kDa protein in mitochondria of yeast cells that expressed the PET309-c-myc fusion protein from a high copy number plasmid. This protein was not detectable in cells that did not express the fusion protein, or that expressed it from a single copy centromeric vector. Additional analyses of mitochondrial subfractions demonstrated that the PET309-c-myc fusion protein is localized specifically in the inner mitochondrial membrane. It could not be extracted by alkaline sodium carbonate, yet it was susceptible to proteinase K digestion in mitoplasts (mitochondria with a disrupted outer membrane). These results indicate that Pet309p spans the inner membrane, with domain(s) exposed to the intermembrane space side of the membrane. How Pet309p may function in concert with other gene products necessary for COX1 RNA translation or accumulation, such as Mss51p or Nam1p, respectively, is discussed.
Insights
The PET309 gene product, Pet309p, is crucial for mitochondrial COX1 gene expression in yeast. This protein localizes to the inner mitochondrial membrane, suggesting a role in regulating cytochrome c oxidase synthesis.
Area of Science:
- Mitochondrial biogenesis
- Gene expression regulation
- Protein localization
Background:
- The nuclear PET309 gene is essential for yeast mitochondrial COX1 gene expression.
- A pet309 null mutant exhibits defects in COX1 RNA processing and translation.
- Cytochrome c oxidase (COX1) is a key component of the mitochondrial respiratory chain.
Purpose of the Study:
- To identify and determine the intracellular localization of the Pet309 protein.
- To investigate the membrane association and topology of Pet309p.
Main Methods:
- Epitope tagging of Pet309p with a human c-myc epitope.
- Western blot analysis using anti-c-myc monoclonal antibody.
- Subcellular fractionation and biochemical extraction assays (alkaline carbonate, proteinase K digestion).
Main Results:
- A 98-kDa Pet309-c-myc fusion protein was detected in yeast mitochondria.
- The fusion protein was specifically localized to the inner mitochondrial membrane.
- Pet309p was resistant to alkaline extraction but sensitive to proteinase K in mitoplasts, indicating membrane spanning topology.
Conclusions:
- Pet309p is an inner mitochondrial membrane protein with domains exposed to the intermembrane space.
- This localization suggests a role in COX1 RNA translation or accumulation.
- Further studies are needed to elucidate its precise function and interaction with other factors.
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