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Pfirrmann, Thorsten
Publications (4 of 4) Show all publications
Martins, A., Pfirrmann, T., Heessen, S., Sundqvist, G., Bulone, V., Andréasson, C. & Ljungdahl, P. O. (2018). Ssy5 is a signaling serine protease that exhibits atypical biogenesis and marked S1 specificity. Journal of Biological Chemistry, 293(22), 8362-8378
Open this publication in new window or tab >>Ssy5 is a signaling serine protease that exhibits atypical biogenesis and marked S1 specificity
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2018 (English)In: Journal of Biological Chemistry, ISSN 0021-9258, E-ISSN 1083-351X, Vol. 293, no 22, p. 8362-8378Article in journal (Refereed) Published
Abstract [en]

Ssy5 is a signaling endoprotease that plays a key role in regulating central metabolism, cellular aging, and morphological transitions important for growth and survival of yeast (Saccharomyces cerevisiae) cells. In response to extracellular amino acids, Ssy5 proteolytically activates the transcription factors Stp1 and Stp2, leading to enhanced Ssy1-Ptr3-Ssy5 (SPS) sensor-regulated gene expression. Ssy5 comprises a catalytic (Cat) domain and an extensive regulatory prodomain. Ssy5 is refractory to both broad-spectrum and serine protease-specific inhibitors, confounding its classification as a protease, and no information about Ssy5's cleavage-site preferences and its mechanism of substrate selection is available. Here, using mutational and inhibition experiments, we investigated the biogenesis and catalytic properties of Ssy5 and conclusively show that it is a serine protease. Atypical for the majority of serine proteases, Ssy5's prodomain was obligatorily required in cis during biogenesis for the maturation of the proteolytic activity of the Cat domain. Autolysis and Stp1 and Stp2 cleavage occurred between a cysteine (at the P1 site) and a serine or alanine (at the P1 site) and required residues with short side chains at the P1 site. Substitutions in the Cat domain affecting substrate specificity revealed that residues Phe-634, His-661, and Gly-671 in the S1-binding pocket of this domain are important for Ssy5 catalytic function. This study confirms that the signaling protease Ssy5 is a serine protease and provides a detailed understanding of the biogenesis and intrinsic properties of this key enzyme in yeast.

Keywords
Saccharomyces cerevisiae, serine protease, signal transduction, substrate specificity, yeast, enzyme structure, environmental sensing, receptor activated proteolysis, signaling protease, SPS sensor, zymogen, signaling protease
National Category
Biological Sciences
Research subject
Cell Biology
Identifiers
urn:nbn:se:su:diva-157683 (URN)10.1074/jbc.RA118.002457 (DOI)000434205700004 ()29661936 (PubMedID)
Available from: 2018-07-30 Created: 2018-07-30 Last updated: 2022-03-23Bibliographically approved
Omnus, D. J., Pfirrmann, T., Andréasson, C. & Ljungdahl, P. O. (2011). A phosphodegron controls nutrient-induced proteasomal activation of the signaling protease Ssy5. Molecular Biology of the Cell, 22(15), 2754-2765
Open this publication in new window or tab >>A phosphodegron controls nutrient-induced proteasomal activation of the signaling protease Ssy5
2011 (English)In: Molecular Biology of the Cell, ISSN 1059-1524, E-ISSN 1939-4586, Vol. 22, no 15, p. 2754-2765Article in journal (Refereed) Published
Abstract [en]

Regulated proteolysis serves as a mechanism to control cellular processes. The SPS (Ssy1-Ptr3-Ssy5) sensor in yeast responds to extracellular amino acids by endoproteolytically activating transcription factors Stp1 and Stp2 (Stp1/2). The processing endoprotease Ssy5 is regulated via proteasomal degradation of its noncovalently associated N-terminal prodomain. We find that degradation of the prodomain requires a conserved phosphodegron comprising phosphoacceptor sites and ubiquitin-accepting lysine residues. Upon amino acid induction, the phosphodegron is modified in a series of linked events by a set of general regulatory factors involved in diverse signaling pathways. First, an amino acid-induced conformational change triggers phosphodegron phosphorylation by the constitutively active plasma membrane-localized casein kinase I (Yck1/2). Next the prodomain becomes a substrate for polyubiquitylation by the Skp1/Cullin/Grr1 E3 ubiquitin ligase complex (SCF(Grr1)). Finally, the modified prodomain is concomitantly degraded by the 26S proteasome. These integrated events are requisite for unfettering the Ssy5 endoprotease, and thus Stp1/2 processing. The Ssy5 phosphoacceptor motif resembles the Yck1/2- and Grr1-dependent degrons of regulators in the Snf3/Rgt2 glucose-sensing pathway. Our work defines a novel proteolytic activation cascade that regulates an intracellular signaling protease and illustrates how general signaling components are recruited to distinct pathways that achieve conditional and specific signaling outputs.

National Category
Cell Biology
Research subject
Cell Biology
Identifiers
urn:nbn:se:su:diva-65625 (URN)10.1091/mbc.E11-04-0282 (DOI)000293227200009 ()21653827 (PubMedID)
Note

authorCount :4

Available from: 2011-12-13 Created: 2011-12-13 Last updated: 2022-02-24Bibliographically approved
Braun, B., Pfirrmann, T., Menssen, R., Hofmann, K., Scheel, H. & Wolf, D. H. (2011). Gid9, a second RING finger protein contributes to the ubiquitin ligase activity of the Gid complex required for catabolite degradation. FEBS Letters, 585(24), 3856-3861
Open this publication in new window or tab >>Gid9, a second RING finger protein contributes to the ubiquitin ligase activity of the Gid complex required for catabolite degradation
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2011 (English)In: FEBS Letters, ISSN 0014-5793, E-ISSN 1873-3468, Vol. 585, no 24, p. 3856-3861Article in journal (Refereed) Published
Abstract [en]

The two major antagonistic pathways of carbon metabolism in cells, glycolysis and gluconeogenesis, are tightly regulated. In the eukaryotic model organism Saccharomyces cerevisiae the switch from gluconeogenesis to glycolysis is brought about by proteasomal degradation of the gluconeogenic enzyme fructose-1,6-bisphosphatase. The ubiquitin ligase responsible for polyubiquitylation of fructose-1,6-bisphosphatase is the Gid complex. This complex consists of seven subunits of which subunit Gid2/Rmd5 contains a RING finger domain providing E3 ligase activity. Here we identify an additional subunit containing a degenerated RING finger, Gid9/Fyv10. This subunit binds to Gid2/Rmd5. A mutation in the degenerated RING finger of Gid9/Fyv10 abolishes polyubiquitylation and degradation of three enzymes specific for gluconeogenesis. Structured summary of protein interactions: Gid2 physically interacts with Gid9 by anti tag coimmunoprecipitation (View interaction) (C) 2011 Federation of European Biochemical Societies.

Keywords
Catabolite degradation, Gid ubiquitin ligase, RING finger, Glycolysis, Gluconeogenesis, Fructose-1, 6-bisphosphatase
National Category
Natural Sciences
Identifiers
urn:nbn:se:su:diva-71147 (URN)10.1016/j.febslet.2011.10.038 (DOI)000298133300003 ()
Note

authorCount :6

Available from: 2012-01-26 Created: 2012-01-26 Last updated: 2022-02-24Bibliographically approved
Pfirrmann, T., Heessen, S., Omnus, D. J., Andréasson, C. & Ljungdahl, P. O. (2010). The prodomain of Ssy5 protease controls receptor-activated proteolysis of transcription factor Stp1. Molecular and Cellular Biology, 30(13), 3299-309
Open this publication in new window or tab >>The prodomain of Ssy5 protease controls receptor-activated proteolysis of transcription factor Stp1
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2010 (English)In: Molecular and Cellular Biology, ISSN 0270-7306, E-ISSN 1098-5549, Vol. 30, no 13, p. 3299-309Article in journal (Refereed) Published
Abstract [en]

Extracellular amino acids induce the yeast SPS sensor to endoproteolytically cleave transcription factors Stp1 and Stp2 in a process termed receptor-activated proteolysis (RAP). Ssy5, the activating endoprotease, is synthesized with a large N-terminal prodomain and a C-terminal chymotrypsin-like catalytic (Cat) domain. During biogenesis, Ssy5 cleaves itself and the prodomain and Cat domain remain associated, forming an inactive primed protease. Here we show that the prodomain is a potent inhibitor of Cat domain activity and that its inactivation is a requisite for RAP. Accordingly, amino acid-induced signals trigger proteasome-dependent degradation of the prodomain. A mutation that stabilizes the prodomain prevents Stp1 processing, whereas destabilizing mutations lead to constitutive RAP-independent Stp1 processing. We fused a conditional degron to the prodomain to synthetically reprogram the amino acid-responsive SPS signaling pathway, placing it under temperature control. Our results define a regulatory mechanism that is novel for eukaryotic proteases functioning within cells

National Category
Cell Biology
Research subject
Cell Biology
Identifiers
urn:nbn:se:su:diva-44307 (URN)10.1128/MCB.00323-10 (DOI)000278626100013 ()20421414 (PubMedID)
Available from: 2010-11-05 Created: 2010-11-05 Last updated: 2022-02-24Bibliographically approved
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