Cargando…

Adenosine Awakens Metabolism to Enhance Growth-Independent Killing of Tolerant and Persister Bacteria across Multiple Classes of Antibiotics

Metabolic and growth arrest are primary drivers of antibiotic tolerance and persistence in clinically diverse bacterial pathogens. We recently showed that adenosine (ADO) suppresses bacterial growth under nutrient-limiting conditions. In the current study, we show that despite the growth-suppressive...

Descripción completa

Detalles Bibliográficos
Autores principales: Kitzenberg, David A., Lee, J. Scott, Mills, Krista B., Kim, Ju-Sim, Liu, Lin, Vázquez-Torres, Andrés, Colgan, Sean P., Kao, Daniel J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9239199/
https://www.ncbi.nlm.nih.gov/pubmed/35575513
http://dx.doi.org/10.1128/mbio.00480-22
_version_ 1784737241582534656
author Kitzenberg, David A.
Lee, J. Scott
Mills, Krista B.
Kim, Ju-Sim
Liu, Lin
Vázquez-Torres, Andrés
Colgan, Sean P.
Kao, Daniel J.
author_facet Kitzenberg, David A.
Lee, J. Scott
Mills, Krista B.
Kim, Ju-Sim
Liu, Lin
Vázquez-Torres, Andrés
Colgan, Sean P.
Kao, Daniel J.
author_sort Kitzenberg, David A.
collection PubMed
description Metabolic and growth arrest are primary drivers of antibiotic tolerance and persistence in clinically diverse bacterial pathogens. We recently showed that adenosine (ADO) suppresses bacterial growth under nutrient-limiting conditions. In the current study, we show that despite the growth-suppressive effect of ADO, extracellular ADO enhances antibiotic killing in both Gram-negative and Gram-positive bacteria by up to 5 orders of magnitude. The ADO-potentiated antibiotic activity is dependent on purine salvage and is paralleled with a suppression of guanosine tetraphosphate synthesis and the massive accumulation of ATP and GTP. These changes in nucleoside phosphates coincide with transient increases in rRNA transcription and proton motive force. The potentiation of antibiotic killing by ADO is manifested against bacteria grown under both aerobic and anaerobic conditions, and it is exhibited even in the absence of alternative electron acceptors such as nitrate. ADO potentiates antibiotic killing by generating proton motive force and can occur independently of an ATP synthase. Bacteria treated with an uncoupler of oxidative phosphorylation and NADH dehydrogenase-deficient bacteria are refractory to the ADO-potentiated killing, suggesting that the metabolic awakening induced by this nucleoside is intrinsically dependent on an energized membrane. In conclusion, ADO represents a novel example of metabolite-driven but growth-independent means to reverse antibiotic tolerance. Our investigations identify the purine salvage pathway as a potential target for the development of therapeutics that may improve infection clearance while reducing the emergence of antibiotic resistance.
format Online
Article
Text
id pubmed-9239199
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-92391992022-06-29 Adenosine Awakens Metabolism to Enhance Growth-Independent Killing of Tolerant and Persister Bacteria across Multiple Classes of Antibiotics Kitzenberg, David A. Lee, J. Scott Mills, Krista B. Kim, Ju-Sim Liu, Lin Vázquez-Torres, Andrés Colgan, Sean P. Kao, Daniel J. mBio Research Article Metabolic and growth arrest are primary drivers of antibiotic tolerance and persistence in clinically diverse bacterial pathogens. We recently showed that adenosine (ADO) suppresses bacterial growth under nutrient-limiting conditions. In the current study, we show that despite the growth-suppressive effect of ADO, extracellular ADO enhances antibiotic killing in both Gram-negative and Gram-positive bacteria by up to 5 orders of magnitude. The ADO-potentiated antibiotic activity is dependent on purine salvage and is paralleled with a suppression of guanosine tetraphosphate synthesis and the massive accumulation of ATP and GTP. These changes in nucleoside phosphates coincide with transient increases in rRNA transcription and proton motive force. The potentiation of antibiotic killing by ADO is manifested against bacteria grown under both aerobic and anaerobic conditions, and it is exhibited even in the absence of alternative electron acceptors such as nitrate. ADO potentiates antibiotic killing by generating proton motive force and can occur independently of an ATP synthase. Bacteria treated with an uncoupler of oxidative phosphorylation and NADH dehydrogenase-deficient bacteria are refractory to the ADO-potentiated killing, suggesting that the metabolic awakening induced by this nucleoside is intrinsically dependent on an energized membrane. In conclusion, ADO represents a novel example of metabolite-driven but growth-independent means to reverse antibiotic tolerance. Our investigations identify the purine salvage pathway as a potential target for the development of therapeutics that may improve infection clearance while reducing the emergence of antibiotic resistance. American Society for Microbiology 2022-05-16 /pmc/articles/PMC9239199/ /pubmed/35575513 http://dx.doi.org/10.1128/mbio.00480-22 Text en Copyright © 2022 Kitzenberg 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
Kitzenberg, David A.
Lee, J. Scott
Mills, Krista B.
Kim, Ju-Sim
Liu, Lin
Vázquez-Torres, Andrés
Colgan, Sean P.
Kao, Daniel J.
Adenosine Awakens Metabolism to Enhance Growth-Independent Killing of Tolerant and Persister Bacteria across Multiple Classes of Antibiotics
title Adenosine Awakens Metabolism to Enhance Growth-Independent Killing of Tolerant and Persister Bacteria across Multiple Classes of Antibiotics
title_full Adenosine Awakens Metabolism to Enhance Growth-Independent Killing of Tolerant and Persister Bacteria across Multiple Classes of Antibiotics
title_fullStr Adenosine Awakens Metabolism to Enhance Growth-Independent Killing of Tolerant and Persister Bacteria across Multiple Classes of Antibiotics
title_full_unstemmed Adenosine Awakens Metabolism to Enhance Growth-Independent Killing of Tolerant and Persister Bacteria across Multiple Classes of Antibiotics
title_short Adenosine Awakens Metabolism to Enhance Growth-Independent Killing of Tolerant and Persister Bacteria across Multiple Classes of Antibiotics
title_sort adenosine awakens metabolism to enhance growth-independent killing of tolerant and persister bacteria across multiple classes of antibiotics
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9239199/
https://www.ncbi.nlm.nih.gov/pubmed/35575513
http://dx.doi.org/10.1128/mbio.00480-22
work_keys_str_mv AT kitzenbergdavida adenosineawakensmetabolismtoenhancegrowthindependentkillingoftolerantandpersisterbacteriaacrossmultipleclassesofantibiotics
AT leejscott adenosineawakensmetabolismtoenhancegrowthindependentkillingoftolerantandpersisterbacteriaacrossmultipleclassesofantibiotics
AT millskristab adenosineawakensmetabolismtoenhancegrowthindependentkillingoftolerantandpersisterbacteriaacrossmultipleclassesofantibiotics
AT kimjusim adenosineawakensmetabolismtoenhancegrowthindependentkillingoftolerantandpersisterbacteriaacrossmultipleclassesofantibiotics
AT liulin adenosineawakensmetabolismtoenhancegrowthindependentkillingoftolerantandpersisterbacteriaacrossmultipleclassesofantibiotics
AT vazqueztorresandres adenosineawakensmetabolismtoenhancegrowthindependentkillingoftolerantandpersisterbacteriaacrossmultipleclassesofantibiotics
AT colganseanp adenosineawakensmetabolismtoenhancegrowthindependentkillingoftolerantandpersisterbacteriaacrossmultipleclassesofantibiotics
AT kaodanielj adenosineawakensmetabolismtoenhancegrowthindependentkillingoftolerantandpersisterbacteriaacrossmultipleclassesofantibiotics