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Utilizing the Off-Target Effects of T1R3 Antagonist Lactisole to Enhance Nitric Oxide Production in Basal Airway Epithelial Cells

Human airway sweet (T1R2 + T1R3), umami (T1R1 + T1R3), and bitter taste receptors (T2Rs) are critical components of the innate immune system, acting as sensors to monitor pathogenic growth. T2Rs detect bacterial products or bitter compounds to drive nitric oxide (NO) production in both healthy and d...

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Autores principales: McMahon, Derek B., Jolivert, Jennifer F., Kuek, Li Eon, Adappa, Nithin D., Palmer, James N., Lee, Robert J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9919013/
https://www.ncbi.nlm.nih.gov/pubmed/36771227
http://dx.doi.org/10.3390/nu15030517
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author McMahon, Derek B.
Jolivert, Jennifer F.
Kuek, Li Eon
Adappa, Nithin D.
Palmer, James N.
Lee, Robert J.
author_facet McMahon, Derek B.
Jolivert, Jennifer F.
Kuek, Li Eon
Adappa, Nithin D.
Palmer, James N.
Lee, Robert J.
author_sort McMahon, Derek B.
collection PubMed
description Human airway sweet (T1R2 + T1R3), umami (T1R1 + T1R3), and bitter taste receptors (T2Rs) are critical components of the innate immune system, acting as sensors to monitor pathogenic growth. T2Rs detect bacterial products or bitter compounds to drive nitric oxide (NO) production in both healthy and diseased epithelial cell models. The NO enhances ciliary beating and also directly kills pathogens. Both sweet and umami receptors have been characterized to repress bitter taste receptor signaling in healthy and disease models. We hypothesized that the sweet/umami T1R3 antagonist lactisole may be used to alleviate bitter taste receptor repression in airway basal epithelial cells and enhance NO production. Here, we show that lactisole activates cAMP generation, though this occurs through a pathway independent of T1R3. This cAMP most likely signals through EPAC to increase ER Ca(2+) efflux. Stimulation with denatonium benzoate, a bitter taste receptor agonist which activates largely nuclear and mitochondrial Ca(2+) responses, resulted in a dramatically increased cytosolic Ca(2+) response in cells treated with lactisole. This cytosolic Ca(2+) signaling activated NO production in the presence of lactisole. Thus, lactisole may be useful coupled with bitter compounds as a therapeutic nasal rinse or spray to enhance beneficial antibacterial NO production in patients suffering from chronic inflammatory diseases such as chronic rhinosinusitis.
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spelling pubmed-99190132023-02-12 Utilizing the Off-Target Effects of T1R3 Antagonist Lactisole to Enhance Nitric Oxide Production in Basal Airway Epithelial Cells McMahon, Derek B. Jolivert, Jennifer F. Kuek, Li Eon Adappa, Nithin D. Palmer, James N. Lee, Robert J. Nutrients Article Human airway sweet (T1R2 + T1R3), umami (T1R1 + T1R3), and bitter taste receptors (T2Rs) are critical components of the innate immune system, acting as sensors to monitor pathogenic growth. T2Rs detect bacterial products or bitter compounds to drive nitric oxide (NO) production in both healthy and diseased epithelial cell models. The NO enhances ciliary beating and also directly kills pathogens. Both sweet and umami receptors have been characterized to repress bitter taste receptor signaling in healthy and disease models. We hypothesized that the sweet/umami T1R3 antagonist lactisole may be used to alleviate bitter taste receptor repression in airway basal epithelial cells and enhance NO production. Here, we show that lactisole activates cAMP generation, though this occurs through a pathway independent of T1R3. This cAMP most likely signals through EPAC to increase ER Ca(2+) efflux. Stimulation with denatonium benzoate, a bitter taste receptor agonist which activates largely nuclear and mitochondrial Ca(2+) responses, resulted in a dramatically increased cytosolic Ca(2+) response in cells treated with lactisole. This cytosolic Ca(2+) signaling activated NO production in the presence of lactisole. Thus, lactisole may be useful coupled with bitter compounds as a therapeutic nasal rinse or spray to enhance beneficial antibacterial NO production in patients suffering from chronic inflammatory diseases such as chronic rhinosinusitis. MDPI 2023-01-19 /pmc/articles/PMC9919013/ /pubmed/36771227 http://dx.doi.org/10.3390/nu15030517 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
McMahon, Derek B.
Jolivert, Jennifer F.
Kuek, Li Eon
Adappa, Nithin D.
Palmer, James N.
Lee, Robert J.
Utilizing the Off-Target Effects of T1R3 Antagonist Lactisole to Enhance Nitric Oxide Production in Basal Airway Epithelial Cells
title Utilizing the Off-Target Effects of T1R3 Antagonist Lactisole to Enhance Nitric Oxide Production in Basal Airway Epithelial Cells
title_full Utilizing the Off-Target Effects of T1R3 Antagonist Lactisole to Enhance Nitric Oxide Production in Basal Airway Epithelial Cells
title_fullStr Utilizing the Off-Target Effects of T1R3 Antagonist Lactisole to Enhance Nitric Oxide Production in Basal Airway Epithelial Cells
title_full_unstemmed Utilizing the Off-Target Effects of T1R3 Antagonist Lactisole to Enhance Nitric Oxide Production in Basal Airway Epithelial Cells
title_short Utilizing the Off-Target Effects of T1R3 Antagonist Lactisole to Enhance Nitric Oxide Production in Basal Airway Epithelial Cells
title_sort utilizing the off-target effects of t1r3 antagonist lactisole to enhance nitric oxide production in basal airway epithelial cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9919013/
https://www.ncbi.nlm.nih.gov/pubmed/36771227
http://dx.doi.org/10.3390/nu15030517
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