Expression and Function of the Cholinergic System in Immune Cells

T and B cells express most cholinergic system components—e.g., acetylcholine (ACh), choline acetyltransferase (ChAT), acetylcholinesterase, and both muscarinic and nicotinic ACh receptors (mAChRs and nAChRs, respectively). Using ChATBAC-eGFP transgenic mice, ChAT expression has been confirmed in T a...

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Main Authors: Takeshi Fujii, Masato Mashimo, Yasuhiro Moriwaki, Hidemi Misawa, Shiro Ono, Kazuhide Horiguchi, Koichiro Kawashima
Format: Article
Language:English
Published: Frontiers Media S.A. 2017-09-01
Series:Frontiers in Immunology
Subjects:
Online Access:http://journal.frontiersin.org/article/10.3389/fimmu.2017.01085/full
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spelling doaj-96cb0373fd66463997f1fff09e08288d2020-11-25T01:07:32ZengFrontiers Media S.A.Frontiers in Immunology1664-32242017-09-01810.3389/fimmu.2017.01085287940Expression and Function of the Cholinergic System in Immune CellsTakeshi Fujii0Masato Mashimo1Yasuhiro Moriwaki2Hidemi Misawa3Shiro Ono4Kazuhide Horiguchi5Koichiro Kawashima6Faculty of Pharmaceutical Sciences, Department of Pharmacology, Doshisha Women’s College of Liberal Arts, Kyoto, JapanFaculty of Pharmaceutical Sciences, Department of Pharmacology, Doshisha Women’s College of Liberal Arts, Kyoto, JapanFaculty of Pharmacy, Department of Pharmacology, Keio University, Tokyo, JapanFaculty of Pharmacy, Department of Pharmacology, Keio University, Tokyo, JapanLaboratory of Immunology, Faculty of Pharmacy, Osaka Ohtani University, Osaka, JapanDepartment of Anatomy, Division of Medicine, University of Fukui Faculty of Medical Sciences, Fukui, JapanDepartment of Molecular Pharmacology, Kitasato University School of Pharmaceutical Sciences, Tokyo, JapanT and B cells express most cholinergic system components—e.g., acetylcholine (ACh), choline acetyltransferase (ChAT), acetylcholinesterase, and both muscarinic and nicotinic ACh receptors (mAChRs and nAChRs, respectively). Using ChATBAC-eGFP transgenic mice, ChAT expression has been confirmed in T and B cells, dendritic cells, and macrophages. Moreover, T cell activation via T-cell receptor/CD3-mediated pathways upregulates ChAT mRNA expression and ACh synthesis, suggesting that this lymphocytic cholinergic system contributes to the regulation of immune function. Immune cells express all five mAChRs (M1–M5). Combined M1/M5 mAChR-deficient (M1/M5-KO) mice produce less antigen-specific antibody than wild-type (WT) mice. Furthermore, spleen cells in M1/M5-KO mice produce less tumor necrosis factor (TNF)-α and interleukin (IL)-6, suggesting M1/M5 mAChRs are involved in regulating pro-inflammatory cytokine and antibody production. Immune cells also frequently express the α2, α5, α6, α7, α9, and α10 nAChR subunits. α7 nAChR-deficient (α7-KO) mice produce more antigen-specific antibody than WT mice, and spleen cells from α7-KO mice produce more TNF-α and IL-6 than WT cells. This suggests that α7 nAChRs are involved in regulating cytokine production and thus modulate antibody production. Evidence also indicates that nicotine modulates immune responses by altering cytokine production and that α7 nAChR signaling contributes to immunomodulation through modification of T cell differentiation. Together, these findings suggest the involvement of both mAChRs and nAChRs in the regulation of immune function. The observation that vagus nerve stimulation protects mice from lethal endotoxin shock led to the notion of a cholinergic anti-inflammatory reflex pathway, and the spleen is an essential component of this anti-inflammatory reflex. Because the spleen lacks direct vagus innervation, it has been postulated that ACh synthesized by a subset of CD4+ T cells relays vagal nerve signals to α7 nAChRs on splenic macrophages, which downregulates TNF-α synthesis and release, thereby modulating inflammatory responses. However, because the spleen is innervated solely by the noradrenergic splenic nerve, confirmation of an anti-inflammatory reflex pathway involving the spleen requires several more hypotheses to be addressed. We will review and discuss these issues in the context of the cholinergic system in immune cells.http://journal.frontiersin.org/article/10.3389/fimmu.2017.01085/fulldendritic celllymphocytemacrophagemAChRnAChRSLURP-1
collection DOAJ
language English
format Article
sources DOAJ
author Takeshi Fujii
Masato Mashimo
Yasuhiro Moriwaki
Hidemi Misawa
Shiro Ono
Kazuhide Horiguchi
Koichiro Kawashima
spellingShingle Takeshi Fujii
Masato Mashimo
Yasuhiro Moriwaki
Hidemi Misawa
Shiro Ono
Kazuhide Horiguchi
Koichiro Kawashima
Expression and Function of the Cholinergic System in Immune Cells
Frontiers in Immunology
dendritic cell
lymphocyte
macrophage
mAChR
nAChR
SLURP-1
author_facet Takeshi Fujii
Masato Mashimo
Yasuhiro Moriwaki
Hidemi Misawa
Shiro Ono
Kazuhide Horiguchi
Koichiro Kawashima
author_sort Takeshi Fujii
title Expression and Function of the Cholinergic System in Immune Cells
title_short Expression and Function of the Cholinergic System in Immune Cells
title_full Expression and Function of the Cholinergic System in Immune Cells
title_fullStr Expression and Function of the Cholinergic System in Immune Cells
title_full_unstemmed Expression and Function of the Cholinergic System in Immune Cells
title_sort expression and function of the cholinergic system in immune cells
publisher Frontiers Media S.A.
series Frontiers in Immunology
issn 1664-3224
publishDate 2017-09-01
description T and B cells express most cholinergic system components—e.g., acetylcholine (ACh), choline acetyltransferase (ChAT), acetylcholinesterase, and both muscarinic and nicotinic ACh receptors (mAChRs and nAChRs, respectively). Using ChATBAC-eGFP transgenic mice, ChAT expression has been confirmed in T and B cells, dendritic cells, and macrophages. Moreover, T cell activation via T-cell receptor/CD3-mediated pathways upregulates ChAT mRNA expression and ACh synthesis, suggesting that this lymphocytic cholinergic system contributes to the regulation of immune function. Immune cells express all five mAChRs (M1–M5). Combined M1/M5 mAChR-deficient (M1/M5-KO) mice produce less antigen-specific antibody than wild-type (WT) mice. Furthermore, spleen cells in M1/M5-KO mice produce less tumor necrosis factor (TNF)-α and interleukin (IL)-6, suggesting M1/M5 mAChRs are involved in regulating pro-inflammatory cytokine and antibody production. Immune cells also frequently express the α2, α5, α6, α7, α9, and α10 nAChR subunits. α7 nAChR-deficient (α7-KO) mice produce more antigen-specific antibody than WT mice, and spleen cells from α7-KO mice produce more TNF-α and IL-6 than WT cells. This suggests that α7 nAChRs are involved in regulating cytokine production and thus modulate antibody production. Evidence also indicates that nicotine modulates immune responses by altering cytokine production and that α7 nAChR signaling contributes to immunomodulation through modification of T cell differentiation. Together, these findings suggest the involvement of both mAChRs and nAChRs in the regulation of immune function. The observation that vagus nerve stimulation protects mice from lethal endotoxin shock led to the notion of a cholinergic anti-inflammatory reflex pathway, and the spleen is an essential component of this anti-inflammatory reflex. Because the spleen lacks direct vagus innervation, it has been postulated that ACh synthesized by a subset of CD4+ T cells relays vagal nerve signals to α7 nAChRs on splenic macrophages, which downregulates TNF-α synthesis and release, thereby modulating inflammatory responses. However, because the spleen is innervated solely by the noradrenergic splenic nerve, confirmation of an anti-inflammatory reflex pathway involving the spleen requires several more hypotheses to be addressed. We will review and discuss these issues in the context of the cholinergic system in immune cells.
topic dendritic cell
lymphocyte
macrophage
mAChR
nAChR
SLURP-1
url http://journal.frontiersin.org/article/10.3389/fimmu.2017.01085/full
work_keys_str_mv AT takeshifujii expressionandfunctionofthecholinergicsysteminimmunecells
AT masatomashimo expressionandfunctionofthecholinergicsysteminimmunecells
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AT hidemimisawa expressionandfunctionofthecholinergicsysteminimmunecells
AT shiroono expressionandfunctionofthecholinergicsysteminimmunecells
AT kazuhidehoriguchi expressionandfunctionofthecholinergicsysteminimmunecells
AT koichirokawashima expressionandfunctionofthecholinergicsysteminimmunecells
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