Cargando…

The Bacteriophage–Phage-Inducible Chromosomal Island Arms Race Designs an Interkingdom Inhibitor of dUTPases

Stl, the master repressor of the Staphylococcus aureus pathogenicity islands (SaPIs), targets phage-encoded proteins to derepress and synchronize the SaPI and the helper phage life cycles. To activate their cycle, some SaPI Stls target both phage dimeric and phage trimeric dUTPases (Duts) as antirep...

Descripción completa

Detalles Bibliográficos
Autores principales: Sanz-Frasquet, Carla, Ciges-Tomas, J. Rafael, Alite, Christian, Penadés, José R., Marina, Alberto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9927489/
https://www.ncbi.nlm.nih.gov/pubmed/36622213
http://dx.doi.org/10.1128/spectrum.03232-22
_version_ 1784888486749274112
author Sanz-Frasquet, Carla
Ciges-Tomas, J. Rafael
Alite, Christian
Penadés, José R.
Marina, Alberto
author_facet Sanz-Frasquet, Carla
Ciges-Tomas, J. Rafael
Alite, Christian
Penadés, José R.
Marina, Alberto
author_sort Sanz-Frasquet, Carla
collection PubMed
description Stl, the master repressor of the Staphylococcus aureus pathogenicity islands (SaPIs), targets phage-encoded proteins to derepress and synchronize the SaPI and the helper phage life cycles. To activate their cycle, some SaPI Stls target both phage dimeric and phage trimeric dUTPases (Duts) as antirepressors, which are structurally unrelated proteins that perform identical functions for the phage. This intimate link between the SaPI’s repressor and the phage inducer has imposed an evolutionary optimization of Stl that allows the interaction with Duts from unrelated organisms. In this work, we structurally characterize this sophisticated mechanism of specialization by solving the structure of the prototypical SaPIbov1 Stl in complex with a prokaryotic and a eukaryotic trimeric Dut. The heterocomplexes with Mycobacterium tuberculosis and Homo sapiens Duts show the molecular strategy of Stl to target trimeric Duts from different kingdoms. Our structural results confirm the participation of the five catalytic motifs of trimeric Duts in Stl binding, including the C-terminal flexible motif V that increases the affinity by embracing Stl. In silico and in vitro analyses with a monomeric Dut support the capacity of Stl to recognize this third family of Duts, confirming this protein as a universal Dut inhibitor in the different kingdoms of life. IMPORTANCE Stl, the Staphylococcus aureus pathogenicity island (SaPI) master repressor, targets phage-encoded proteins to derepress and synchronize the SaPI and the helper phage life cycles. This fascinating phage-SaPI arms race is exemplified by the Stl from SaPIbov1 which targets phage dimeric and trimeric dUTPases (Duts), structurally unrelated proteins with identical functions in the phages. By solving the structure of the Stl in complex with a prokaryotic (M. tuberculosis) and a eukaryotic (human) trimeric Dut, we showed that Stl has developed a sophisticated substrate mimicry strategy to target trimeric Duts. Since all these Duts present identical catalytic mechanisms, Stl is able to interact with Duts from different kingdoms. In addition, in silico modeling with monomeric Dut supports the capacity of Stl to recognize this third family of Duts, confirming this protein as a universal Dut inhibitor.
format Online
Article
Text
id pubmed-9927489
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-99274892023-02-15 The Bacteriophage–Phage-Inducible Chromosomal Island Arms Race Designs an Interkingdom Inhibitor of dUTPases Sanz-Frasquet, Carla Ciges-Tomas, J. Rafael Alite, Christian Penadés, José R. Marina, Alberto Microbiol Spectr Research Article Stl, the master repressor of the Staphylococcus aureus pathogenicity islands (SaPIs), targets phage-encoded proteins to derepress and synchronize the SaPI and the helper phage life cycles. To activate their cycle, some SaPI Stls target both phage dimeric and phage trimeric dUTPases (Duts) as antirepressors, which are structurally unrelated proteins that perform identical functions for the phage. This intimate link between the SaPI’s repressor and the phage inducer has imposed an evolutionary optimization of Stl that allows the interaction with Duts from unrelated organisms. In this work, we structurally characterize this sophisticated mechanism of specialization by solving the structure of the prototypical SaPIbov1 Stl in complex with a prokaryotic and a eukaryotic trimeric Dut. The heterocomplexes with Mycobacterium tuberculosis and Homo sapiens Duts show the molecular strategy of Stl to target trimeric Duts from different kingdoms. Our structural results confirm the participation of the five catalytic motifs of trimeric Duts in Stl binding, including the C-terminal flexible motif V that increases the affinity by embracing Stl. In silico and in vitro analyses with a monomeric Dut support the capacity of Stl to recognize this third family of Duts, confirming this protein as a universal Dut inhibitor in the different kingdoms of life. IMPORTANCE Stl, the Staphylococcus aureus pathogenicity island (SaPI) master repressor, targets phage-encoded proteins to derepress and synchronize the SaPI and the helper phage life cycles. This fascinating phage-SaPI arms race is exemplified by the Stl from SaPIbov1 which targets phage dimeric and trimeric dUTPases (Duts), structurally unrelated proteins with identical functions in the phages. By solving the structure of the Stl in complex with a prokaryotic (M. tuberculosis) and a eukaryotic (human) trimeric Dut, we showed that Stl has developed a sophisticated substrate mimicry strategy to target trimeric Duts. Since all these Duts present identical catalytic mechanisms, Stl is able to interact with Duts from different kingdoms. In addition, in silico modeling with monomeric Dut supports the capacity of Stl to recognize this third family of Duts, confirming this protein as a universal Dut inhibitor. American Society for Microbiology 2023-01-09 /pmc/articles/PMC9927489/ /pubmed/36622213 http://dx.doi.org/10.1128/spectrum.03232-22 Text en Copyright © 2023 Sanz-Frasquet et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Sanz-Frasquet, Carla
Ciges-Tomas, J. Rafael
Alite, Christian
Penadés, José R.
Marina, Alberto
The Bacteriophage–Phage-Inducible Chromosomal Island Arms Race Designs an Interkingdom Inhibitor of dUTPases
title The Bacteriophage–Phage-Inducible Chromosomal Island Arms Race Designs an Interkingdom Inhibitor of dUTPases
title_full The Bacteriophage–Phage-Inducible Chromosomal Island Arms Race Designs an Interkingdom Inhibitor of dUTPases
title_fullStr The Bacteriophage–Phage-Inducible Chromosomal Island Arms Race Designs an Interkingdom Inhibitor of dUTPases
title_full_unstemmed The Bacteriophage–Phage-Inducible Chromosomal Island Arms Race Designs an Interkingdom Inhibitor of dUTPases
title_short The Bacteriophage–Phage-Inducible Chromosomal Island Arms Race Designs an Interkingdom Inhibitor of dUTPases
title_sort bacteriophage–phage-inducible chromosomal island arms race designs an interkingdom inhibitor of dutpases
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9927489/
https://www.ncbi.nlm.nih.gov/pubmed/36622213
http://dx.doi.org/10.1128/spectrum.03232-22
work_keys_str_mv AT sanzfrasquetcarla thebacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT cigestomasjrafael thebacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT alitechristian thebacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT penadesjoser thebacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT marinaalberto thebacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT sanzfrasquetcarla bacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT cigestomasjrafael bacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT alitechristian bacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT penadesjoser bacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases
AT marinaalberto bacteriophagephageinduciblechromosomalislandarmsracedesignsaninterkingdominhibitorofdutpases