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The Caulobacter NtrB-NtrC two-component system bridges nitrogen assimilation and cell development

A suite of molecular sensory systems enables Caulobacter to control growth, development, and reproduction in response to levels of essential elements. The bacterial enhancer binding protein (bEBP) NtrC, and its cognate sensor histidine kinase NtrB, are key regulators of nitrogen assimilation in many...

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Autores principales: North, Hunter, McLaughlin, Maeve, Fiebig, Aretha, Crosson, Sean
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274813/
https://www.ncbi.nlm.nih.gov/pubmed/37333394
http://dx.doi.org/10.1101/2023.06.06.543975
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author North, Hunter
McLaughlin, Maeve
Fiebig, Aretha
Crosson, Sean
author_facet North, Hunter
McLaughlin, Maeve
Fiebig, Aretha
Crosson, Sean
author_sort North, Hunter
collection PubMed
description A suite of molecular sensory systems enables Caulobacter to control growth, development, and reproduction in response to levels of essential elements. The bacterial enhancer binding protein (bEBP) NtrC, and its cognate sensor histidine kinase NtrB, are key regulators of nitrogen assimilation in many bacteria, but their roles in Caulobacter metabolism and development are not well defined. Notably, Caulobacter NtrC is an unconventional bEBP that lacks the σ(54)-interacting loop commonly known as the GAFTGA motif. Here we show that deletion of C. crescentus ntrC slows cell growth in complex medium, and that ntrB and ntrC are essential when ammonium is the sole nitrogen source due to their requirement for glutamine synthetase (glnA) expression. Random transposition of a conserved IS3-family mobile genetic element frequently rescued the growth defect of ntrC mutant strains by restoring transcription of the glnBA operon, revealing a possible role for IS3 transposition in shaping the evolution of Caulobacter populations during nutrient limitation. We further identified dozens of direct NtrC binding sites on the C. crescentus chromosome, with a large fraction located near genes involved in polysaccharide biosynthesis. The majority of binding sites align with those of the essential nucleoid associated protein, GapR, or the cell cycle regulator, MucR1. NtrC is therefore predicted to directly impact the regulation of cell cycle and cell development. Indeed, loss of NtrC function led to elongated polar stalks and elevated synthesis of cell envelope polysaccharides. This study establishes regulatory connections between NtrC, nitrogen metabolism, polar morphogenesis, and envelope polysaccharide synthesis in Caulobacter.
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spelling pubmed-102748132023-06-17 The Caulobacter NtrB-NtrC two-component system bridges nitrogen assimilation and cell development North, Hunter McLaughlin, Maeve Fiebig, Aretha Crosson, Sean bioRxiv Article A suite of molecular sensory systems enables Caulobacter to control growth, development, and reproduction in response to levels of essential elements. The bacterial enhancer binding protein (bEBP) NtrC, and its cognate sensor histidine kinase NtrB, are key regulators of nitrogen assimilation in many bacteria, but their roles in Caulobacter metabolism and development are not well defined. Notably, Caulobacter NtrC is an unconventional bEBP that lacks the σ(54)-interacting loop commonly known as the GAFTGA motif. Here we show that deletion of C. crescentus ntrC slows cell growth in complex medium, and that ntrB and ntrC are essential when ammonium is the sole nitrogen source due to their requirement for glutamine synthetase (glnA) expression. Random transposition of a conserved IS3-family mobile genetic element frequently rescued the growth defect of ntrC mutant strains by restoring transcription of the glnBA operon, revealing a possible role for IS3 transposition in shaping the evolution of Caulobacter populations during nutrient limitation. We further identified dozens of direct NtrC binding sites on the C. crescentus chromosome, with a large fraction located near genes involved in polysaccharide biosynthesis. The majority of binding sites align with those of the essential nucleoid associated protein, GapR, or the cell cycle regulator, MucR1. NtrC is therefore predicted to directly impact the regulation of cell cycle and cell development. Indeed, loss of NtrC function led to elongated polar stalks and elevated synthesis of cell envelope polysaccharides. This study establishes regulatory connections between NtrC, nitrogen metabolism, polar morphogenesis, and envelope polysaccharide synthesis in Caulobacter. Cold Spring Harbor Laboratory 2023-08-31 /pmc/articles/PMC10274813/ /pubmed/37333394 http://dx.doi.org/10.1101/2023.06.06.543975 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
North, Hunter
McLaughlin, Maeve
Fiebig, Aretha
Crosson, Sean
The Caulobacter NtrB-NtrC two-component system bridges nitrogen assimilation and cell development
title The Caulobacter NtrB-NtrC two-component system bridges nitrogen assimilation and cell development
title_full The Caulobacter NtrB-NtrC two-component system bridges nitrogen assimilation and cell development
title_fullStr The Caulobacter NtrB-NtrC two-component system bridges nitrogen assimilation and cell development
title_full_unstemmed The Caulobacter NtrB-NtrC two-component system bridges nitrogen assimilation and cell development
title_short The Caulobacter NtrB-NtrC two-component system bridges nitrogen assimilation and cell development
title_sort caulobacter ntrb-ntrc two-component system bridges nitrogen assimilation and cell development
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274813/
https://www.ncbi.nlm.nih.gov/pubmed/37333394
http://dx.doi.org/10.1101/2023.06.06.543975
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