» Articles » PMID: 19286971

Sympathetic Nervous System Control of Anti-influenza CD8+ T Cell Responses

Overview
Specialty Science
Date 2009 Mar 17
PMID 19286971
Citations 54
Authors
Affiliations
Soon will be listed here.
Abstract

Despite the longstanding appreciation of communication between the nervous and the immune systems, the nature and significance of these interactions to immunity remain enigmatic. Here, we show that 6-hydroxydopamine-mediated ablation of the mouse peripheral sympathetic nervous system increases primary CD8(+) T cell responses to viral and cellular antigens presented by direct priming or cross-priming. The sympathetic nervous system also suppresses antiviral CD4(+) T cell responses, but this is not required for suppressing CD8(+) T cell responses. Adoptive transfer experiments indicate that enhanced CD8(+) responses do not result from permanent alterations in CD8(+) T cell function in sympathectomized mice. Rather, additional findings suggest that the sympathetic nervous system tempers the capacity of antigen-presenting cells to activate naïve CD8(+) T cells. We also show that antiviral CD8(+) T cell responses are enhanced by administration of a beta(2) (but not beta(1) or alpha) adrenergic antagonist. These findings demonstrate a critical role for the sympathetic nervous system in limiting CD8(+) T cell responses and indicate that CD8(+) T cell responses may be altered in patients using beta-blockers, one of the most widely prescribed classes of drugs.

Citing Articles

Neuroscience in peripheral cancers: tumors hijacking nerves and neuroimmune crosstalk.

Fan H, Liang X, Tang Y MedComm (2020). 2024; 5(11):e784.

PMID: 39492832 PMC: 11527832. DOI: 10.1002/mco2.784.


Jonathan Yewdell Discusses Viral Immunology, Vaccine Development, Navigating a Scientific Career, and Offers Perspectives on Transforming Scientific Publishing and Research Education.

Greenspan N Pathog Immun. 2024; 9(2):94-134.

PMID: 39381058 PMC: 11460944. DOI: 10.20411/pai.v9i2.753.


CD8 T cells induce the peritubular capillary rarefaction during AKI to CKD transition.

Jiang W, Tang T, Zhang Y, Li Z, Wen Y, Yang Q Int J Biol Sci. 2024; 20(8):2980-2993.

PMID: 38904017 PMC: 11186369. DOI: 10.7150/ijbs.96812.


T cells at the interface of neuroimmune communication.

Reel J, Abbadi J, Cox M J Allergy Clin Immunol. 2023; 153(4):894-903.

PMID: 37952833 PMC: 10999355. DOI: 10.1016/j.jaci.2023.10.026.


The β-adrenergic receptor links sympathetic nerves to T cell exhaustion.

Globig A, Zhao S, Roginsky J, Maltez V, Guiza J, Avina-Ochoa N Nature. 2023; 622(7982):383-392.

PMID: 37731001 PMC: 10871066. DOI: 10.1038/s41586-023-06568-6.


References
1.
Sanders V, Baker R, Kasprowicz D, Fuchs B, Street N . Differential expression of the beta2-adrenergic receptor by Th1 and Th2 clones: implications for cytokine production and B cell help. J Immunol. 1997; 158(9):4200-10. View

2.
Livnat S, Felten S, Carlson S, Bellinger D, Felten D . Involvement of peripheral and central catecholamine systems in neural-immune interactions. J Neuroimmunol. 1985; 10(1):5-30. DOI: 10.1016/0165-5728(85)90031-1. View

3.
Reilly F, McCuskey P, Miller M, McCuskey R, MEINEKE H . Innervation of the periarteriolar lymphatic sheath of the spleen. Tissue Cell. 1979; 11(1):121-6. DOI: 10.1016/0040-8166(79)90012-0. View

4.
Benton K, Misplon J, Lo C, Brutkiewicz R, Prasad S, Epstein S . Heterosubtypic immunity to influenza A virus in mice lacking IgA, all Ig, NKT cells, or gamma delta T cells. J Immunol. 2001; 166(12):7437-45. DOI: 10.4049/jimmunol.166.12.7437. View

5.
Fu T, Mylin L, Schell T, Bacik I, Russ G, Yewdell J . An endoplasmic reticulum-targeting signal sequence enhances the immunogenicity of an immunorecessive simian virus 40 large T antigen cytotoxic T-lymphocyte epitope. J Virol. 1998; 72(2):1469-81. PMC: 124628. DOI: 10.1128/JVI.72.2.1469-1481.1998. View