Cargando…

Removal of a Membrane Anchor Reveals the Opposing Regulatory Functions of Vibrio cholerae Glucose-Specific Enzyme IIA in Biofilms and the Mammalian Intestine

The Vibrio cholerae phosphoenolpyruvate phosphotransferase system (PTS) is a well-conserved, multicomponent phosphotransfer cascade that coordinates the bacterial response to carbohydrate availability through direct interactions of its components with protein targets. One such component, glucose-spe...

Descripción completa

Detalles Bibliográficos
Autores principales: Vijayakumar, Vidhya, Vanhove, Audrey S., Pickering, Bradley S., Liao, Julie, Tierney, Braden T., Asara, John M., Bronson, Roderick, Watnick, Paula I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6123446/
https://www.ncbi.nlm.nih.gov/pubmed/30181246
http://dx.doi.org/10.1128/mBio.00858-18
_version_ 1783352840914206720
author Vijayakumar, Vidhya
Vanhove, Audrey S.
Pickering, Bradley S.
Liao, Julie
Tierney, Braden T.
Asara, John M.
Bronson, Roderick
Watnick, Paula I.
author_facet Vijayakumar, Vidhya
Vanhove, Audrey S.
Pickering, Bradley S.
Liao, Julie
Tierney, Braden T.
Asara, John M.
Bronson, Roderick
Watnick, Paula I.
author_sort Vijayakumar, Vidhya
collection PubMed
description The Vibrio cholerae phosphoenolpyruvate phosphotransferase system (PTS) is a well-conserved, multicomponent phosphotransfer cascade that coordinates the bacterial response to carbohydrate availability through direct interactions of its components with protein targets. One such component, glucose-specific enzyme IIA (EIIA(Glc)), is a master regulator that coordinates bacterial metabolism, nutrient uptake, and behavior by direct interactions with cytoplasmic and membrane-associated protein partners. Here, we show that an amphipathic helix (AH) at the N terminus of V. cholerae EIIA(Glc) serves as a membrane association domain that is dispensable for interactions with cytoplasmic partners but essential for regulation of integral membrane protein partners. By deleting this AH, we reveal previously unappreciated opposing regulatory functions for EIIA(Glc) at the membrane and in the cytoplasm and show that these opposing functions are active in the laboratory biofilm and the mammalian intestine. Phosphotransfer through the PTS proceeds in the absence of the EIIA(Glc) AH, while PTS-dependent sugar transport is blocked. This demonstrates that the AH couples phosphotransfer to sugar transport and refutes the paradigm of EIIA(Glc) as a simple phosphotransfer component in PTS-dependent transport. Our findings show that Vibrio cholerae EIIA(Glc), a central regulator of pathogen metabolism, contributes to optimization of bacterial physiology by integrating metabolic cues arising from the cytoplasm with nutritional cues arising from the environment. Because pathogen carbon metabolism alters the intestinal environment, we propose that it may be manipulated to minimize the metabolic cost of intestinal infection.
format Online
Article
Text
id pubmed-6123446
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-61234462018-09-07 Removal of a Membrane Anchor Reveals the Opposing Regulatory Functions of Vibrio cholerae Glucose-Specific Enzyme IIA in Biofilms and the Mammalian Intestine Vijayakumar, Vidhya Vanhove, Audrey S. Pickering, Bradley S. Liao, Julie Tierney, Braden T. Asara, John M. Bronson, Roderick Watnick, Paula I. mBio Research Article The Vibrio cholerae phosphoenolpyruvate phosphotransferase system (PTS) is a well-conserved, multicomponent phosphotransfer cascade that coordinates the bacterial response to carbohydrate availability through direct interactions of its components with protein targets. One such component, glucose-specific enzyme IIA (EIIA(Glc)), is a master regulator that coordinates bacterial metabolism, nutrient uptake, and behavior by direct interactions with cytoplasmic and membrane-associated protein partners. Here, we show that an amphipathic helix (AH) at the N terminus of V. cholerae EIIA(Glc) serves as a membrane association domain that is dispensable for interactions with cytoplasmic partners but essential for regulation of integral membrane protein partners. By deleting this AH, we reveal previously unappreciated opposing regulatory functions for EIIA(Glc) at the membrane and in the cytoplasm and show that these opposing functions are active in the laboratory biofilm and the mammalian intestine. Phosphotransfer through the PTS proceeds in the absence of the EIIA(Glc) AH, while PTS-dependent sugar transport is blocked. This demonstrates that the AH couples phosphotransfer to sugar transport and refutes the paradigm of EIIA(Glc) as a simple phosphotransfer component in PTS-dependent transport. Our findings show that Vibrio cholerae EIIA(Glc), a central regulator of pathogen metabolism, contributes to optimization of bacterial physiology by integrating metabolic cues arising from the cytoplasm with nutritional cues arising from the environment. Because pathogen carbon metabolism alters the intestinal environment, we propose that it may be manipulated to minimize the metabolic cost of intestinal infection. American Society for Microbiology 2018-09-04 /pmc/articles/PMC6123446/ /pubmed/30181246 http://dx.doi.org/10.1128/mBio.00858-18 Text en Copyright © 2018 Vijayakumar 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
Vijayakumar, Vidhya
Vanhove, Audrey S.
Pickering, Bradley S.
Liao, Julie
Tierney, Braden T.
Asara, John M.
Bronson, Roderick
Watnick, Paula I.
Removal of a Membrane Anchor Reveals the Opposing Regulatory Functions of Vibrio cholerae Glucose-Specific Enzyme IIA in Biofilms and the Mammalian Intestine
title Removal of a Membrane Anchor Reveals the Opposing Regulatory Functions of Vibrio cholerae Glucose-Specific Enzyme IIA in Biofilms and the Mammalian Intestine
title_full Removal of a Membrane Anchor Reveals the Opposing Regulatory Functions of Vibrio cholerae Glucose-Specific Enzyme IIA in Biofilms and the Mammalian Intestine
title_fullStr Removal of a Membrane Anchor Reveals the Opposing Regulatory Functions of Vibrio cholerae Glucose-Specific Enzyme IIA in Biofilms and the Mammalian Intestine
title_full_unstemmed Removal of a Membrane Anchor Reveals the Opposing Regulatory Functions of Vibrio cholerae Glucose-Specific Enzyme IIA in Biofilms and the Mammalian Intestine
title_short Removal of a Membrane Anchor Reveals the Opposing Regulatory Functions of Vibrio cholerae Glucose-Specific Enzyme IIA in Biofilms and the Mammalian Intestine
title_sort removal of a membrane anchor reveals the opposing regulatory functions of vibrio cholerae glucose-specific enzyme iia in biofilms and the mammalian intestine
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6123446/
https://www.ncbi.nlm.nih.gov/pubmed/30181246
http://dx.doi.org/10.1128/mBio.00858-18
work_keys_str_mv AT vijayakumarvidhya removalofamembraneanchorrevealstheopposingregulatoryfunctionsofvibriocholeraeglucosespecificenzymeiiainbiofilmsandthemammalianintestine
AT vanhoveaudreys removalofamembraneanchorrevealstheopposingregulatoryfunctionsofvibriocholeraeglucosespecificenzymeiiainbiofilmsandthemammalianintestine
AT pickeringbradleys removalofamembraneanchorrevealstheopposingregulatoryfunctionsofvibriocholeraeglucosespecificenzymeiiainbiofilmsandthemammalianintestine
AT liaojulie removalofamembraneanchorrevealstheopposingregulatoryfunctionsofvibriocholeraeglucosespecificenzymeiiainbiofilmsandthemammalianintestine
AT tierneybradent removalofamembraneanchorrevealstheopposingregulatoryfunctionsofvibriocholeraeglucosespecificenzymeiiainbiofilmsandthemammalianintestine
AT asarajohnm removalofamembraneanchorrevealstheopposingregulatoryfunctionsofvibriocholeraeglucosespecificenzymeiiainbiofilmsandthemammalianintestine
AT bronsonroderick removalofamembraneanchorrevealstheopposingregulatoryfunctionsofvibriocholeraeglucosespecificenzymeiiainbiofilmsandthemammalianintestine
AT watnickpaulai removalofamembraneanchorrevealstheopposingregulatoryfunctionsofvibriocholeraeglucosespecificenzymeiiainbiofilmsandthemammalianintestine