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Biochemical and genetic analysis of Ecm14, a conserved fungal pseudopeptidase
R Christian McDonald1, Matthew J Schott1, Temitope A Idowu1
1Department of Biology, Andrews University, Berrien Springs, MI, USA.
Background:
Like most major enzyme families, the M14 family of metallocarboxypeptidases (MCPs) contains a number of pseudoenzymes predicted to lack enzyme activity and with poorly characterized molecular function. The genome of the yeast Saccharomyces cerevisiae encodes one member of the M14 MCP family, a pseudoenzyme named Ecm14 proposed to function in the extracellular matrix. In order to better understand the function of such pseudoenzymes, we studied the structure and function of Ecm14 in S. cerevisiae.
Results:
A phylogenetic analysis of Ecm14 in fungi found it to be conserved throughout the ascomycete phylum, with a group of related pseudoenzymes found in basidiomycetes. To investigate the structure and function of this conserved protein, His6-tagged Ecm14 was overexpressed in Sf9 cells and purified. The prodomain of Ecm14 was cleaved in vivo and in vitro by endopeptidases, suggesting an activation mechanism; however, no activity was detectable using standard carboxypeptidase substrates. In order to determine the function of Ecm14 using an unbiased screen, we undertook a synthetic lethal assay. Upon screening approximately 27,000 yeast colonies, twenty-two putative synthetic lethal clones were identified. Further analysis showed many to be synthetic lethal with auxotrophic marker genes and requiring multiple mutations, suggesting that there are few, if any, single S. cerevisiae genes that present synthetic lethal interactions with ecm14Δ.
Conclusions:
We show in this study that Ecm14, although lacking detectable enzyme activity, is a conserved carboxypeptidase-like protein that is secreted from cells and is processed to a mature form by the action of an endopeptidase. Our study and datasets from other recent large-scale screens suggest a role for Ecm14 in processes such as vesicle-mediated transport and aggregate invasion, a fungal process that has been selected against in modern laboratory strains of S. cerevisiae.
Insights
The yeast protein Ecm14, a conserved pseudoenzyme, is secreted and processed but lacks carboxypeptidase activity. Its function may involve vesicle transport and aggregate invasion.
Area of Science:
- Biochemistry
- Molecular Biology
- Yeast Genetics
Background:
- Metallocarboxypeptidases (MCPs) include pseudoenzymes with unknown functions.
- Saccharomyces cerevisiae (yeast) has a pseudoenzyme, Ecm14, potentially involved in the extracellular matrix.
Purpose of the Study:
- Investigate the structure and function of the conserved yeast pseudoenzyme Ecm14.
- Determine the molecular role of Ecm14 in Saccharomyces cerevisiae.
Main Methods:
- Phylogenetic analysis of Ecm14 across fungi.
- Overexpression and purification of His6-tagged Ecm14.
- In vivo and in vitro prodomain cleavage assays.
- Synthetic lethal screening of approximately 27,000 yeast colonies.
Main Results:
- Ecm14 is conserved in ascomycetes and related pseudoenzymes in basidiomycetes.
- Ecm14 is processed by endopeptidases but shows no detectable carboxypeptidase activity.
- Synthetic lethal screens identified few direct interactions with single S. cerevisiae genes.
Conclusions:
- Ecm14 is a conserved, secreted, carboxypeptidase-like protein lacking detectable enzymatic activity.
- Ecm14 is processed to a mature form by endopeptidase cleavage.
- Ecm14 may play a role in vesicle-mediated transport and aggregate invasion in yeast.
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