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Molecular Influence of Resiniferatoxin on the Urinary Bladder Wall Based on Differential Gene Expression Profiling

Resiniferatoxin (RTX) is a potent capsaicin analog used as a drug for experimental therapy to treat neurogenic disorders associated with enhanced nociceptive transmission, including lower urinary tract symptoms. The present study, for the first time, investigated the transcriptomic profile of contro...

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Autores principales: Lepiarczyk, Ewa, Paukszto, Łukasz, Wiszpolska, Marta, Łopieńska-Biernat, Elżbieta, Bossowska, Agnieszka, Majewski, Mariusz Krzysztof, Majewska, Marta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9914288/
https://www.ncbi.nlm.nih.gov/pubmed/36766804
http://dx.doi.org/10.3390/cells12030462
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author Lepiarczyk, Ewa
Paukszto, Łukasz
Wiszpolska, Marta
Łopieńska-Biernat, Elżbieta
Bossowska, Agnieszka
Majewski, Mariusz Krzysztof
Majewska, Marta
author_facet Lepiarczyk, Ewa
Paukszto, Łukasz
Wiszpolska, Marta
Łopieńska-Biernat, Elżbieta
Bossowska, Agnieszka
Majewski, Mariusz Krzysztof
Majewska, Marta
author_sort Lepiarczyk, Ewa
collection PubMed
description Resiniferatoxin (RTX) is a potent capsaicin analog used as a drug for experimental therapy to treat neurogenic disorders associated with enhanced nociceptive transmission, including lower urinary tract symptoms. The present study, for the first time, investigated the transcriptomic profile of control and RTX-treated porcine urinary bladder walls. We applied multistep bioinformatics and discovered 129 differentially expressed genes (DEGs): 54 upregulated and 75 downregulated. Metabolic pathways analysis revealed five significant Kyoto Encyclopedia of Genes and Genomes (KEGG) items (‘folate biosynthesis’, ‘metabolic pathways’, ‘sulfur relay system’, ‘sulfur metabolism’ and ‘serotonergic synapse’) that were altered after RTX intravesical administration. A thorough analysis of the detected DEGs indicated that RTX treatment influenced the signaling pathways regulating nerve growth, myelination, axon specification, and elongation. Many of the revealed DEGs are involved in the nerve degeneration process; however, some of them were implicated in the initiation of neuroprotective mechanisms. Interestingly, RTX intravesical installation was followed by changes in the expression of genes involved in synaptic plasticity and neuromodulation, including 5-HT, H2S, glutamate, and GABA transmission. The obtained results suggest that the toxin may exert a therapeutic, antinociceptive effect not only by acting on TRPV1 receptors.
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spelling pubmed-99142882023-02-11 Molecular Influence of Resiniferatoxin on the Urinary Bladder Wall Based on Differential Gene Expression Profiling Lepiarczyk, Ewa Paukszto, Łukasz Wiszpolska, Marta Łopieńska-Biernat, Elżbieta Bossowska, Agnieszka Majewski, Mariusz Krzysztof Majewska, Marta Cells Article Resiniferatoxin (RTX) is a potent capsaicin analog used as a drug for experimental therapy to treat neurogenic disorders associated with enhanced nociceptive transmission, including lower urinary tract symptoms. The present study, for the first time, investigated the transcriptomic profile of control and RTX-treated porcine urinary bladder walls. We applied multistep bioinformatics and discovered 129 differentially expressed genes (DEGs): 54 upregulated and 75 downregulated. Metabolic pathways analysis revealed five significant Kyoto Encyclopedia of Genes and Genomes (KEGG) items (‘folate biosynthesis’, ‘metabolic pathways’, ‘sulfur relay system’, ‘sulfur metabolism’ and ‘serotonergic synapse’) that were altered after RTX intravesical administration. A thorough analysis of the detected DEGs indicated that RTX treatment influenced the signaling pathways regulating nerve growth, myelination, axon specification, and elongation. Many of the revealed DEGs are involved in the nerve degeneration process; however, some of them were implicated in the initiation of neuroprotective mechanisms. Interestingly, RTX intravesical installation was followed by changes in the expression of genes involved in synaptic plasticity and neuromodulation, including 5-HT, H2S, glutamate, and GABA transmission. The obtained results suggest that the toxin may exert a therapeutic, antinociceptive effect not only by acting on TRPV1 receptors. MDPI 2023-01-31 /pmc/articles/PMC9914288/ /pubmed/36766804 http://dx.doi.org/10.3390/cells12030462 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
Lepiarczyk, Ewa
Paukszto, Łukasz
Wiszpolska, Marta
Łopieńska-Biernat, Elżbieta
Bossowska, Agnieszka
Majewski, Mariusz Krzysztof
Majewska, Marta
Molecular Influence of Resiniferatoxin on the Urinary Bladder Wall Based on Differential Gene Expression Profiling
title Molecular Influence of Resiniferatoxin on the Urinary Bladder Wall Based on Differential Gene Expression Profiling
title_full Molecular Influence of Resiniferatoxin on the Urinary Bladder Wall Based on Differential Gene Expression Profiling
title_fullStr Molecular Influence of Resiniferatoxin on the Urinary Bladder Wall Based on Differential Gene Expression Profiling
title_full_unstemmed Molecular Influence of Resiniferatoxin on the Urinary Bladder Wall Based on Differential Gene Expression Profiling
title_short Molecular Influence of Resiniferatoxin on the Urinary Bladder Wall Based on Differential Gene Expression Profiling
title_sort molecular influence of resiniferatoxin on the urinary bladder wall based on differential gene expression profiling
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9914288/
https://www.ncbi.nlm.nih.gov/pubmed/36766804
http://dx.doi.org/10.3390/cells12030462
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