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Mutational analysis of K28 preprotoxin processing in the yeast Saccharomyces cerevisiae
Frank Riffer1, Katrin Eisfeld, Frank Breinig
1Angewandte Molekularbiologie, Universität des Saarlandes, FR 8.3, Gebäude 2, Postfach 151150, D-66041 Saarbrücken, Germany.
Abstract:
K28 killer strains of Saccharomyces cerevisiae are permanently infected with a cytoplasmic persisting dsRNA virus encoding a secreted alpha/beta heterodimeric protein toxin that kills sensitive cells by cell-cycle arrest and inhibition of DNA synthesis. In vivo processing of the 345 aa toxin precursor (preprotoxin; pptox) involves multiple internal and carboxy-terminal cleavage events by the prohormone convertases Kex2p and Kex1p. By site-directed mutagenesis of the preprotoxin gene and phenotypic analysis of its in vivo effects it is now demonstrated that secretion of a biological active virus toxin requires signal peptidase cleavage after Gly(36) and Kex2p-mediated processing at the alpha subunit N terminus (after Glu-Arg(49)), the alpha subunit C terminus (after Ser-Arg(149)) and at the beta subunit N terminus (after Lys-Arg(245)). The mature C terminus of the beta subunit is trimmed by Kex1p, which removes the terminal Arg(345) residue, thus uncovering the toxin's endoplasmic reticulum targeting signal (HDEL) which--in a sensitive target cell--is essential for retrograde toxin transport. Interestingly, both toxin subunits are covalently linked by a single disulfide bond between alpha-Cys(56) and beta-Cys(340), and expression of a mutant toxin in which beta-Cys(340) had been replaced by Ser(340) resulted in the secretion of a non-toxic alpha/beta heterodimer that is blocked in retrograde transport and incapable of entering the yeast cell cytosol, indicating that one important in vivo function of beta-Cys(340) might be to ensure accessibility of the toxin's beta subunit C terminus to the HDEL receptor of the target cell.
Insights
The K28 killer toxin from Saccharomyces cerevisiae requires specific processing steps for activity. Signal peptidase and convertases Kex2p/Kex1p are crucial for toxin secretion and function, with a disulfide bond ensuring target cell entry.
Area of Science:
- * Molecular biology
- * Virology
- * Cell biology
Background:
- * Saccharomyces cerevisiae K28 killer strains harbor a dsRNA virus encoding a toxic protein.
- * This toxin induces cell-cycle arrest and inhibits DNA synthesis in sensitive cells.
- * Toxin precursor processing involves Kex2p and Kex1p prohormone convertases.
Purpose of the Study:
- * To elucidate the specific cleavage events required for the K28 virus toxin's activity.
- * To investigate the role of protein processing in toxin secretion and function.
- * To understand the contribution of a specific disulfide bond to toxin transport and cell entry.
Main Methods:
- * Site-directed mutagenesis of the preprotoxin gene.
- * Phenotypic analysis of mutant toxins in vivo.
- * Assessment of toxin secretion, processing, and cellular transport.
Main Results:
- * Signal peptidase cleavage after Gly(36) is essential for secretion.
- * Kex2p processing at specific sites on both alpha and beta subunits is required for biological activity.
- * Kex1p trimming of the beta subunit C terminus exposes the HDEL signal for retrograde transport.
- * A disulfide bond between alpha-Cys(56) and beta-Cys(340) is critical for toxin transport and cytosol entry.
Conclusions:
- * Precise proteolytic processing by signal peptidase, Kex2p, and Kex1p is indispensable for K28 toxin function.
- * The disulfide bond involving beta-Cys(340) is vital for the toxin's ability to interact with the HDEL receptor and enter target cells.