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Next-generation retinoid X receptor agonists increase ATRA signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics

Retinoid X receptors (RXRs) are nuclear transcription factors that partner with other nuclear receptors to regulate numerous physiological processes. Although RXR represents a valid therapeutic target, only a few RXR-specific ligands (rexinoids) have been identified, in part due to the lack of clari...

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Autores principales: Melo, Nathalia, Belyaeva, Olga V., Berger, Wilhelm K., Halasz, Laszlo, Yu, Jianshi, Pilli, Nagesh, Yang, Zhengrong, Klyuyeva, Alla V., Elmets, Craig A., Atigadda, Venkatram, Muccio, Donald D., Kane, Maureen A., Nagy, Laszlo, Kedishvili, Natalia Y., Renfrow, Matthew B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9807999/
https://www.ncbi.nlm.nih.gov/pubmed/36436565
http://dx.doi.org/10.1016/j.jbc.2022.102746
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author Melo, Nathalia
Belyaeva, Olga V.
Berger, Wilhelm K.
Halasz, Laszlo
Yu, Jianshi
Pilli, Nagesh
Yang, Zhengrong
Klyuyeva, Alla V.
Elmets, Craig A.
Atigadda, Venkatram
Muccio, Donald D.
Kane, Maureen A.
Nagy, Laszlo
Kedishvili, Natalia Y.
Renfrow, Matthew B.
author_facet Melo, Nathalia
Belyaeva, Olga V.
Berger, Wilhelm K.
Halasz, Laszlo
Yu, Jianshi
Pilli, Nagesh
Yang, Zhengrong
Klyuyeva, Alla V.
Elmets, Craig A.
Atigadda, Venkatram
Muccio, Donald D.
Kane, Maureen A.
Nagy, Laszlo
Kedishvili, Natalia Y.
Renfrow, Matthew B.
author_sort Melo, Nathalia
collection PubMed
description Retinoid X receptors (RXRs) are nuclear transcription factors that partner with other nuclear receptors to regulate numerous physiological processes. Although RXR represents a valid therapeutic target, only a few RXR-specific ligands (rexinoids) have been identified, in part due to the lack of clarity on how rexinoids selectively modulate RXR response. Previously, we showed that rexinoid UAB30 potentiates all-trans-retinoic acid (ATRA) signaling in human keratinocytes, in part by stimulating ATRA biosynthesis. Here, we examined the mechanism of action of next-generation rexinoids UAB110 and UAB111 that are more potent in vitro than UAB30 and the FDA-approved Targretin. Both UAB110 and UAB111 enhanced ATRA signaling in human organotypic epithelium at a 50-fold lower concentration than UAB30. This was consistent with the 2- to 5- fold greater increase in ATRA in organotypic epidermis treated with UAB110/111 versus UAB30. Furthermore, at 0.2 μM, UAB110/111 increased the expression of ATRA genes up to 16-fold stronger than Targretin. The less toxic and more potent UAB110 also induced more changes in differential gene expression than Targretin. Additionally, our hydrogen deuterium exchange mass spectrometry analysis showed that both ligands reduced the dynamics of the ligand-binding pocket but also induced unique dynamic responses that were indicative of higher affinity binding relative to UAB30, especially for Helix 3. UAB110 binding also showed increased dynamics towards the dimer interface through the Helix 8 and Helix 9 regions. These data suggest that UAB110 and UAB111 are potent activators of RXR–RAR signaling pathways but accomplish activation through different molecular responses to ligand binding.
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spelling pubmed-98079992023-01-05 Next-generation retinoid X receptor agonists increase ATRA signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics Melo, Nathalia Belyaeva, Olga V. Berger, Wilhelm K. Halasz, Laszlo Yu, Jianshi Pilli, Nagesh Yang, Zhengrong Klyuyeva, Alla V. Elmets, Craig A. Atigadda, Venkatram Muccio, Donald D. Kane, Maureen A. Nagy, Laszlo Kedishvili, Natalia Y. Renfrow, Matthew B. J Biol Chem Research Article Retinoid X receptors (RXRs) are nuclear transcription factors that partner with other nuclear receptors to regulate numerous physiological processes. Although RXR represents a valid therapeutic target, only a few RXR-specific ligands (rexinoids) have been identified, in part due to the lack of clarity on how rexinoids selectively modulate RXR response. Previously, we showed that rexinoid UAB30 potentiates all-trans-retinoic acid (ATRA) signaling in human keratinocytes, in part by stimulating ATRA biosynthesis. Here, we examined the mechanism of action of next-generation rexinoids UAB110 and UAB111 that are more potent in vitro than UAB30 and the FDA-approved Targretin. Both UAB110 and UAB111 enhanced ATRA signaling in human organotypic epithelium at a 50-fold lower concentration than UAB30. This was consistent with the 2- to 5- fold greater increase in ATRA in organotypic epidermis treated with UAB110/111 versus UAB30. Furthermore, at 0.2 μM, UAB110/111 increased the expression of ATRA genes up to 16-fold stronger than Targretin. The less toxic and more potent UAB110 also induced more changes in differential gene expression than Targretin. Additionally, our hydrogen deuterium exchange mass spectrometry analysis showed that both ligands reduced the dynamics of the ligand-binding pocket but also induced unique dynamic responses that were indicative of higher affinity binding relative to UAB30, especially for Helix 3. UAB110 binding also showed increased dynamics towards the dimer interface through the Helix 8 and Helix 9 regions. These data suggest that UAB110 and UAB111 are potent activators of RXR–RAR signaling pathways but accomplish activation through different molecular responses to ligand binding. American Society for Biochemistry and Molecular Biology 2022-11-24 /pmc/articles/PMC9807999/ /pubmed/36436565 http://dx.doi.org/10.1016/j.jbc.2022.102746 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Melo, Nathalia
Belyaeva, Olga V.
Berger, Wilhelm K.
Halasz, Laszlo
Yu, Jianshi
Pilli, Nagesh
Yang, Zhengrong
Klyuyeva, Alla V.
Elmets, Craig A.
Atigadda, Venkatram
Muccio, Donald D.
Kane, Maureen A.
Nagy, Laszlo
Kedishvili, Natalia Y.
Renfrow, Matthew B.
Next-generation retinoid X receptor agonists increase ATRA signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics
title Next-generation retinoid X receptor agonists increase ATRA signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics
title_full Next-generation retinoid X receptor agonists increase ATRA signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics
title_fullStr Next-generation retinoid X receptor agonists increase ATRA signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics
title_full_unstemmed Next-generation retinoid X receptor agonists increase ATRA signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics
title_short Next-generation retinoid X receptor agonists increase ATRA signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics
title_sort next-generation retinoid x receptor agonists increase atra signaling in organotypic epithelium cultures and have distinct effects on receptor dynamics
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9807999/
https://www.ncbi.nlm.nih.gov/pubmed/36436565
http://dx.doi.org/10.1016/j.jbc.2022.102746
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