Trimebutine suppresses Toll-like receptor 2/4/7/8/9 signaling pathways in macrophages.


Journal

Archives of biochemistry and biophysics
ISSN: 1096-0384
Titre abrégé: Arch Biochem Biophys
Pays: United States
ID NLM: 0372430

Informations de publication

Date de publication:
30 10 2021
Historique:
received: 28 01 2021
revised: 26 08 2021
accepted: 08 09 2021
pubmed: 14 9 2021
medline: 16 11 2021
entrez: 13 9 2021
Statut: ppublish

Résumé

Because of the critical roles of Toll-like receptors (TLRs) and receptor for advanced glycation end-products (RAGE) in the pathophysiology of various acute and chronic inflammatory diseases, continuous efforts have been made to discover novel therapeutic inhibitors of TLRs and RAGE to treat inflammatory disorders. A recent study by our group has demonstrated that trimebutine, a spasmolytic drug, suppresses the high mobility group box 1‒RAGE signaling that is associated with triggering proinflammatory signaling pathways in macrophages. Our present work showed that trimebutine suppresses interleukin-6 (IL-6) production in lipopolysaccharide (LPS, a stimulant of TLR4)-stimulated macrophages of RAGE-knockout mice. In addition, trimebutine suppresses the LPS-induced production of various proinflammatory cytokines and chemokines in mouse macrophage-like RAW264.7 cells. Importantly, trimebutine suppresses IL-6 production induced by TLR2-and TLR7/8/9 stimulants. Furthermore, trimebutine greatly reduces mortality in a mouse model of LPS-induced sepsis. Studies exploring the action mechanism of trimebutine revealed that it inhibits the LPS-induced activation of IL-1 receptor-associated kinase 1 (IRAK1), and the subsequent activations of extracellular signal-related kinase 1/2 (ERK1/2), c-Jun N-terminal kinase (JNK), and nuclear factor-κB (NF-κB). These findings suggest that trimebutine exerts anti-inflammatory effects on TLR signaling by downregulating IRAK1‒ERK1/2‒JNK pathway and NF-κB activity, thereby indicating the therapeutic potential of trimebutine in inflammatory diseases. Therefore, trimebutine can be a novel anti-inflammatory drug-repositioning candidate and may provide an important scaffold for designing more effective dual anti-inflammatory drugs that target TLR/RAGE signaling.

Identifiants

pubmed: 34517011
pii: S0003-9861(21)00278-2
doi: 10.1016/j.abb.2021.109029
pii:
doi:

Substances chimiques

Ager protein, mouse 0
Anti-Inflammatory Agents 0
Chemokines 0
Interleukin-6 0
Lipopolysaccharides 0
Receptor for Advanced Glycation End Products 0
Toll-Like Receptors 0
interleukin-6, mouse 0
Trimebutine QZ1OJ92E5R

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

109029

Informations de copyright

Copyright © 2021 Elsevier Inc. All rights reserved.

Auteurs

Natsumi Ogawa (N)

Department of Biochemistry, Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda, Chiba, 278-8510, Japan.

Shingo Nakajima (S)

Department of Biochemistry, Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda, Chiba, 278-8510, Japan.

Kenya Tamada (K)

Department of Biochemistry, Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda, Chiba, 278-8510, Japan.

Natsuki Yokoue (N)

Department of Biochemistry, Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda, Chiba, 278-8510, Japan.

Haruki Tachibana (H)

Department of Biochemistry, Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda, Chiba, 278-8510, Japan.

Miwa Okazawa (M)

Department of Genomic Medicinal Science, Research Institute for Science and Technology, Organization for Research Advancement, Tokyo University of Science, Noda, Chiba, 278-8510, Japan.

Takahiro Oyama (T)

Department of Genomic Medicinal Science, Research Institute for Science and Technology, Organization for Research Advancement, Tokyo University of Science, Noda, Chiba, 278-8510, Japan; Hinoki Shinyaku Co., Ltd., Chiyoda-ku, Tokyo, 102-0084, Japan.

Hideaki Abe (H)

Department of Genomic Medicinal Science, Research Institute for Science and Technology, Organization for Research Advancement, Tokyo University of Science, Noda, Chiba, 278-8510, Japan; Hinoki Shinyaku Co., Ltd., Chiyoda-ku, Tokyo, 102-0084, Japan.

Hiroaki Yamazaki (H)

Department of Genomic Medicinal Science, Research Institute for Science and Technology, Organization for Research Advancement, Tokyo University of Science, Noda, Chiba, 278-8510, Japan; Hinoki Shinyaku Co., Ltd., Chiyoda-ku, Tokyo, 102-0084, Japan.

Atsushi Yoshimori (A)

Institute for Theoretical Medicine, Inc., Fujisawa, Kanagawa, 251-0012, Japan.

Akira Sato (A)

Department of Biochemistry, Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda, Chiba, 278-8510, Japan.

Takanori Kamiya (T)

Hinoki Shinyaku Co., Ltd., Chiyoda-ku, Tokyo, 102-0084, Japan.

Takehiko Yokomizo (T)

Department of Biochemistry, Juntendo University School of Medicine, Bunkyo-ku, Tokyo, 113-8421, Japan.

Fumiaki Uchiumi (F)

Department of Gene Regulation, Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda, Chiba, 278-8510, Japan.

Takehiko Abe (T)

Hinoki Shinyaku Co., Ltd., Chiyoda-ku, Tokyo, 102-0084, Japan.

Sei-Ichi Tanuma (SI)

Department of Biochemistry, Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda, Chiba, 278-8510, Japan; Department of Genomic Medicinal Science, Research Institute for Science and Technology, Organization for Research Advancement, Tokyo University of Science, Noda, Chiba, 278-8510, Japan. Electronic address: tanuma@rs.tus.ac.jp.

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Classifications MeSH