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Cholesterol restricts lymphotoxin β receptor-triggered NF-κB signaling

BACKGROUND: Lymphotoxin β receptor (LTβR) plays important roles in the development of the immune system and immune response. At the cellular level, ligand-bound LTβR activates the pro-inflammatory NF-κB pathway but the detailed mechanisms regulating its signaling remain unknown. Understanding them i...

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Autores principales: Banach-Orłowska, Magdalena, Wyszyńska, Renata, Pyrzyńska, Beata, Maksymowicz, Małgorzata, Gołąb, Jakub, Miączyńska, Marta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6933913/
https://www.ncbi.nlm.nih.gov/pubmed/31878945
http://dx.doi.org/10.1186/s12964-019-0460-1
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author Banach-Orłowska, Magdalena
Wyszyńska, Renata
Pyrzyńska, Beata
Maksymowicz, Małgorzata
Gołąb, Jakub
Miączyńska, Marta
author_facet Banach-Orłowska, Magdalena
Wyszyńska, Renata
Pyrzyńska, Beata
Maksymowicz, Małgorzata
Gołąb, Jakub
Miączyńska, Marta
author_sort Banach-Orłowska, Magdalena
collection PubMed
description BACKGROUND: Lymphotoxin β receptor (LTβR) plays important roles in the development of the immune system and immune response. At the cellular level, ligand-bound LTβR activates the pro-inflammatory NF-κB pathway but the detailed mechanisms regulating its signaling remain unknown. Understanding them is of high importance since LTβR and its ligands are promising therapeutic targets. Here, we studied the consequences of perturbed cellular cholesterol content on LTβR-induced NF-κB signaling. METHODS: To modulate cholesterol availability and/or level in lung carcinoma A549 and H2228, and endothelial HUVEC cells different treatment regimens with filipin, methyl-β-cyclodextrin and simvastatin were applied. LTβR localization was studied by confocal microscopy. The activity of LTβR-induced NF-κB pathway was assessed by measuring the levels of NF-κB pathway inhibitor IκBα and phosphorylation of RelA transcription factor by Western blotting. The NF-κB transcriptional response, production of chemokines and adhesion molecules were examined by qRT-PCR, ELISA, and Western blotting, respectively. Adherence of different types of primary immune cells to epithelial A549 cells and endothelial HUVECs was measured fluorometrically. Interactions of LTβR with its protein partners were investigated by immunoprecipitation. RESULTS: We showed that filipin-mediated sequestration of cholesterol or its depletion from the plasma membrane with methyl-β-cyclodextrin impaired LTβR internalization and potentiated LTβR-dependent activation of the canonical branch of the NF-κB pathway. The latter was manifested by enhanced degradation of IκBα inhibitor, elevated RelA phosphorylation, substantial increase in the expression of NF-κB target genes encoding, among others, cytokines and adhesion molecules known to play important roles in immune response. It was followed by robust secretion of CXCL8 and upregulation of ICAM1, that favored the adhesion of immune cells (NK and T cells, neutrophils) to A549 cells and HUVECs. Mechanistically, we showed that cholesterol depletion stabilized interactions of ligand-stimulated LTβR with modified forms of TRAF2 and NEMO proteins. CONCLUSIONS: Our results showed that the reduction of the plasma membrane content of cholesterol or its sequestration strongly potentiated signaling outcome initiated by LTβR. Thus, drugs modulating cholesterol levels could potentially improve efficacy of LTβR-based therapies.
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spelling pubmed-69339132019-12-30 Cholesterol restricts lymphotoxin β receptor-triggered NF-κB signaling Banach-Orłowska, Magdalena Wyszyńska, Renata Pyrzyńska, Beata Maksymowicz, Małgorzata Gołąb, Jakub Miączyńska, Marta Cell Commun Signal Research BACKGROUND: Lymphotoxin β receptor (LTβR) plays important roles in the development of the immune system and immune response. At the cellular level, ligand-bound LTβR activates the pro-inflammatory NF-κB pathway but the detailed mechanisms regulating its signaling remain unknown. Understanding them is of high importance since LTβR and its ligands are promising therapeutic targets. Here, we studied the consequences of perturbed cellular cholesterol content on LTβR-induced NF-κB signaling. METHODS: To modulate cholesterol availability and/or level in lung carcinoma A549 and H2228, and endothelial HUVEC cells different treatment regimens with filipin, methyl-β-cyclodextrin and simvastatin were applied. LTβR localization was studied by confocal microscopy. The activity of LTβR-induced NF-κB pathway was assessed by measuring the levels of NF-κB pathway inhibitor IκBα and phosphorylation of RelA transcription factor by Western blotting. The NF-κB transcriptional response, production of chemokines and adhesion molecules were examined by qRT-PCR, ELISA, and Western blotting, respectively. Adherence of different types of primary immune cells to epithelial A549 cells and endothelial HUVECs was measured fluorometrically. Interactions of LTβR with its protein partners were investigated by immunoprecipitation. RESULTS: We showed that filipin-mediated sequestration of cholesterol or its depletion from the plasma membrane with methyl-β-cyclodextrin impaired LTβR internalization and potentiated LTβR-dependent activation of the canonical branch of the NF-κB pathway. The latter was manifested by enhanced degradation of IκBα inhibitor, elevated RelA phosphorylation, substantial increase in the expression of NF-κB target genes encoding, among others, cytokines and adhesion molecules known to play important roles in immune response. It was followed by robust secretion of CXCL8 and upregulation of ICAM1, that favored the adhesion of immune cells (NK and T cells, neutrophils) to A549 cells and HUVECs. Mechanistically, we showed that cholesterol depletion stabilized interactions of ligand-stimulated LTβR with modified forms of TRAF2 and NEMO proteins. CONCLUSIONS: Our results showed that the reduction of the plasma membrane content of cholesterol or its sequestration strongly potentiated signaling outcome initiated by LTβR. Thus, drugs modulating cholesterol levels could potentially improve efficacy of LTβR-based therapies. BioMed Central 2019-12-26 /pmc/articles/PMC6933913/ /pubmed/31878945 http://dx.doi.org/10.1186/s12964-019-0460-1 Text en © The Author(s). 2019 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Banach-Orłowska, Magdalena
Wyszyńska, Renata
Pyrzyńska, Beata
Maksymowicz, Małgorzata
Gołąb, Jakub
Miączyńska, Marta
Cholesterol restricts lymphotoxin β receptor-triggered NF-κB signaling
title Cholesterol restricts lymphotoxin β receptor-triggered NF-κB signaling
title_full Cholesterol restricts lymphotoxin β receptor-triggered NF-κB signaling
title_fullStr Cholesterol restricts lymphotoxin β receptor-triggered NF-κB signaling
title_full_unstemmed Cholesterol restricts lymphotoxin β receptor-triggered NF-κB signaling
title_short Cholesterol restricts lymphotoxin β receptor-triggered NF-κB signaling
title_sort cholesterol restricts lymphotoxin β receptor-triggered nf-κb signaling
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6933913/
https://www.ncbi.nlm.nih.gov/pubmed/31878945
http://dx.doi.org/10.1186/s12964-019-0460-1
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