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Oligoarginine-Conjugated Peptide Foldamers Inhibiting Vitamin D Receptor-Mediated Transcription

[Image: see text] The vitamin D receptor (VDR) is a nuclear receptor, which is involved in several physiological processes, including differentiation and bone homeostasis. The VDR is a promising target for the development of drugs against cancer and bone-related diseases. To date, several VDR antago...

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Autores principales: Takyo, Mami, Sato, Yumi, Hirata, Naoya, Tsuchiya, Keisuke, Ishida, Hiroaki, Kurohara, Takashi, Yanase, Yuta, Ito, Takahito, Kanda, Yasunari, Yamamoto, Keiko, Misawa, Takashi, Demizu, Yosuke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9774327/
https://www.ncbi.nlm.nih.gov/pubmed/36570290
http://dx.doi.org/10.1021/acsomega.2c05409
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author Takyo, Mami
Sato, Yumi
Hirata, Naoya
Tsuchiya, Keisuke
Ishida, Hiroaki
Kurohara, Takashi
Yanase, Yuta
Ito, Takahito
Kanda, Yasunari
Yamamoto, Keiko
Misawa, Takashi
Demizu, Yosuke
author_facet Takyo, Mami
Sato, Yumi
Hirata, Naoya
Tsuchiya, Keisuke
Ishida, Hiroaki
Kurohara, Takashi
Yanase, Yuta
Ito, Takahito
Kanda, Yasunari
Yamamoto, Keiko
Misawa, Takashi
Demizu, Yosuke
author_sort Takyo, Mami
collection PubMed
description [Image: see text] The vitamin D receptor (VDR) is a nuclear receptor, which is involved in several physiological processes, including differentiation and bone homeostasis. The VDR is a promising target for the development of drugs against cancer and bone-related diseases. To date, several VDR antagonists, which bind to the ligand binding domain of the VDR and compete with the endogenous agonist 1α,25(OH)D(3), have been reported. However, these ligands contain a secosteroidal skeleton, which is chemically unstable and complicated to synthesize. A few VDR antagonists with a nonsecosteroidal skeleton have been reported. Alternative inhibitors against VDR transactivation that act via different mechanisms are desirable. Here, we developed peptide-based VDR inhibitors capable of disrupting the VDR–coactivator interaction. It was reported that helical SRC2-3 peptides strongly bound to the VDR and competed with the coactivator in vitro. Therefore, we designed and synthesized a series of SRC2-3 derivatives by the introduction of nonproteinogenic amino acids, such as β-amino acids, and by side-chain stapling to stabilize helical structures and provide resistance against digestive enzymes. In addition, conjugation with a cell-penetrating peptide increased the cell membrane permeability and was a promising strategy for intracellular VDR inhibition. The nona-arginine-conjugated peptides 24 with side-chain stapling and 25 with cyclic β-amino acids showed strong intracellular VDR inhibitory activity, resulting in suppression of the target gene expression and inhibition of the cell differentiation of HL-60 cells. Herein, the peptide design, structure–activity relationship (SAR) study, and biological evaluation of the peptides are described.
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spelling pubmed-97743272022-12-23 Oligoarginine-Conjugated Peptide Foldamers Inhibiting Vitamin D Receptor-Mediated Transcription Takyo, Mami Sato, Yumi Hirata, Naoya Tsuchiya, Keisuke Ishida, Hiroaki Kurohara, Takashi Yanase, Yuta Ito, Takahito Kanda, Yasunari Yamamoto, Keiko Misawa, Takashi Demizu, Yosuke ACS Omega [Image: see text] The vitamin D receptor (VDR) is a nuclear receptor, which is involved in several physiological processes, including differentiation and bone homeostasis. The VDR is a promising target for the development of drugs against cancer and bone-related diseases. To date, several VDR antagonists, which bind to the ligand binding domain of the VDR and compete with the endogenous agonist 1α,25(OH)D(3), have been reported. However, these ligands contain a secosteroidal skeleton, which is chemically unstable and complicated to synthesize. A few VDR antagonists with a nonsecosteroidal skeleton have been reported. Alternative inhibitors against VDR transactivation that act via different mechanisms are desirable. Here, we developed peptide-based VDR inhibitors capable of disrupting the VDR–coactivator interaction. It was reported that helical SRC2-3 peptides strongly bound to the VDR and competed with the coactivator in vitro. Therefore, we designed and synthesized a series of SRC2-3 derivatives by the introduction of nonproteinogenic amino acids, such as β-amino acids, and by side-chain stapling to stabilize helical structures and provide resistance against digestive enzymes. In addition, conjugation with a cell-penetrating peptide increased the cell membrane permeability and was a promising strategy for intracellular VDR inhibition. The nona-arginine-conjugated peptides 24 with side-chain stapling and 25 with cyclic β-amino acids showed strong intracellular VDR inhibitory activity, resulting in suppression of the target gene expression and inhibition of the cell differentiation of HL-60 cells. Herein, the peptide design, structure–activity relationship (SAR) study, and biological evaluation of the peptides are described. American Chemical Society 2022-12-12 /pmc/articles/PMC9774327/ /pubmed/36570290 http://dx.doi.org/10.1021/acsomega.2c05409 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Takyo, Mami
Sato, Yumi
Hirata, Naoya
Tsuchiya, Keisuke
Ishida, Hiroaki
Kurohara, Takashi
Yanase, Yuta
Ito, Takahito
Kanda, Yasunari
Yamamoto, Keiko
Misawa, Takashi
Demizu, Yosuke
Oligoarginine-Conjugated Peptide Foldamers Inhibiting Vitamin D Receptor-Mediated Transcription
title Oligoarginine-Conjugated Peptide Foldamers Inhibiting Vitamin D Receptor-Mediated Transcription
title_full Oligoarginine-Conjugated Peptide Foldamers Inhibiting Vitamin D Receptor-Mediated Transcription
title_fullStr Oligoarginine-Conjugated Peptide Foldamers Inhibiting Vitamin D Receptor-Mediated Transcription
title_full_unstemmed Oligoarginine-Conjugated Peptide Foldamers Inhibiting Vitamin D Receptor-Mediated Transcription
title_short Oligoarginine-Conjugated Peptide Foldamers Inhibiting Vitamin D Receptor-Mediated Transcription
title_sort oligoarginine-conjugated peptide foldamers inhibiting vitamin d receptor-mediated transcription
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9774327/
https://www.ncbi.nlm.nih.gov/pubmed/36570290
http://dx.doi.org/10.1021/acsomega.2c05409
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