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SUMO targeting of a stress-tolerant Ulp1 SUMO protease

SUMO proteases of the SENP/Ulp family are master regulators of both sumoylation and desumoylation and regulate SUMO homeostasis in eukaryotic cells. SUMO conjugates rapidly increase in response to cellular stress, including nutrient starvation, hypoxia, osmotic stress, DNA damage, heat shock, and ot...

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Autores principales: Peek, Jennifer, Harvey, Catherine, Gray, Dreux, Rosenberg, Danny, Kolla, Likhitha, Levy-Myers, Reuben, Yin, Rui, McMurry, Jonathan L., Kerscher, Oliver
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5774762/
https://www.ncbi.nlm.nih.gov/pubmed/29351565
http://dx.doi.org/10.1371/journal.pone.0191391
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author Peek, Jennifer
Harvey, Catherine
Gray, Dreux
Rosenberg, Danny
Kolla, Likhitha
Levy-Myers, Reuben
Yin, Rui
McMurry, Jonathan L.
Kerscher, Oliver
author_facet Peek, Jennifer
Harvey, Catherine
Gray, Dreux
Rosenberg, Danny
Kolla, Likhitha
Levy-Myers, Reuben
Yin, Rui
McMurry, Jonathan L.
Kerscher, Oliver
author_sort Peek, Jennifer
collection PubMed
description SUMO proteases of the SENP/Ulp family are master regulators of both sumoylation and desumoylation and regulate SUMO homeostasis in eukaryotic cells. SUMO conjugates rapidly increase in response to cellular stress, including nutrient starvation, hypoxia, osmotic stress, DNA damage, heat shock, and other proteotoxic stressors. Nevertheless, little is known about the regulation and targeting of SUMO proteases during stress. To this end we have undertaken a detailed comparison of the SUMO-binding activity of the budding yeast protein Ulp1 (ScUlp1) and its ortholog in the thermotolerant yeast Kluyveromyces marxianus, KmUlp1. We find that the catalytic UD domains of both ScUlp1 and KmUlp1 show a high degree of sequence conservation, complement a ulp1Δ mutant in vivo, and process a SUMO precursor in vitro. Next, to compare the SUMO-trapping features of both SUMO proteases we produced catalytically inactive recombinant fragments of the UD domains of ScUlp1 and KmUlp1, termed ScUTAG and KmUTAG respectively. Both ScUTAG and KmUTAG were able to efficiently bind a variety of purified SUMO isoforms and bound immobilized SUMO1 with nanomolar affinity. However, KmUTAG showed a greatly enhanced ability to bind SUMO and SUMO-modified proteins in the presence of oxidative, temperature and other stressors that induce protein misfolding. We also investigated whether a SUMO-interacting motif (SIM) in the UD domain of KmULP1 that is not conserved in ScUlp1 may contribute to the SUMO-binding properties of KmUTAG. In summary, our data reveal important details about how SUMO proteases target and bind their sumoylated substrates, especially under stress conditions. We also show that the robust pan-SUMO binding features of KmUTAG can be exploited to detect and study SUMO-modified proteins in cell culture systems.
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spelling pubmed-57747622018-02-05 SUMO targeting of a stress-tolerant Ulp1 SUMO protease Peek, Jennifer Harvey, Catherine Gray, Dreux Rosenberg, Danny Kolla, Likhitha Levy-Myers, Reuben Yin, Rui McMurry, Jonathan L. Kerscher, Oliver PLoS One Research Article SUMO proteases of the SENP/Ulp family are master regulators of both sumoylation and desumoylation and regulate SUMO homeostasis in eukaryotic cells. SUMO conjugates rapidly increase in response to cellular stress, including nutrient starvation, hypoxia, osmotic stress, DNA damage, heat shock, and other proteotoxic stressors. Nevertheless, little is known about the regulation and targeting of SUMO proteases during stress. To this end we have undertaken a detailed comparison of the SUMO-binding activity of the budding yeast protein Ulp1 (ScUlp1) and its ortholog in the thermotolerant yeast Kluyveromyces marxianus, KmUlp1. We find that the catalytic UD domains of both ScUlp1 and KmUlp1 show a high degree of sequence conservation, complement a ulp1Δ mutant in vivo, and process a SUMO precursor in vitro. Next, to compare the SUMO-trapping features of both SUMO proteases we produced catalytically inactive recombinant fragments of the UD domains of ScUlp1 and KmUlp1, termed ScUTAG and KmUTAG respectively. Both ScUTAG and KmUTAG were able to efficiently bind a variety of purified SUMO isoforms and bound immobilized SUMO1 with nanomolar affinity. However, KmUTAG showed a greatly enhanced ability to bind SUMO and SUMO-modified proteins in the presence of oxidative, temperature and other stressors that induce protein misfolding. We also investigated whether a SUMO-interacting motif (SIM) in the UD domain of KmULP1 that is not conserved in ScUlp1 may contribute to the SUMO-binding properties of KmUTAG. In summary, our data reveal important details about how SUMO proteases target and bind their sumoylated substrates, especially under stress conditions. We also show that the robust pan-SUMO binding features of KmUTAG can be exploited to detect and study SUMO-modified proteins in cell culture systems. Public Library of Science 2018-01-19 /pmc/articles/PMC5774762/ /pubmed/29351565 http://dx.doi.org/10.1371/journal.pone.0191391 Text en © 2018 Peek et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Peek, Jennifer
Harvey, Catherine
Gray, Dreux
Rosenberg, Danny
Kolla, Likhitha
Levy-Myers, Reuben
Yin, Rui
McMurry, Jonathan L.
Kerscher, Oliver
SUMO targeting of a stress-tolerant Ulp1 SUMO protease
title SUMO targeting of a stress-tolerant Ulp1 SUMO protease
title_full SUMO targeting of a stress-tolerant Ulp1 SUMO protease
title_fullStr SUMO targeting of a stress-tolerant Ulp1 SUMO protease
title_full_unstemmed SUMO targeting of a stress-tolerant Ulp1 SUMO protease
title_short SUMO targeting of a stress-tolerant Ulp1 SUMO protease
title_sort sumo targeting of a stress-tolerant ulp1 sumo protease
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5774762/
https://www.ncbi.nlm.nih.gov/pubmed/29351565
http://dx.doi.org/10.1371/journal.pone.0191391
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