Literature DB >> 27726182

The intrinsic microglial clock system regulates interleukin-6 expression.

Ryota Nakazato1,2, Shogo Hotta1, Daisuke Yamada1,3, Miki Kou1, Saki Nakamura1, Yoshifumi Takahata4,5, Hajime Tei4, Rika Numano6, Akiko Hida7, Shigeki Shimba8, Michihiro Mieda9, Eiichi Hinoi1, Yukio Yoneda1, Takeshi Takarada1,10.   

Abstract

Similar to neurons, microglia have an intrinsic molecular clock. The master clock oscillator Bmal1 modulates interleukin-6 upregulation in microglial cells exposed to lipopolysaccharide. Bmal1 can play a role in microglial inflammatory responses. We previously demonstrated that gliotransmitter ATP induces transient expression of the clock gene Period1 via P2X7 purinergic receptors in cultured microglia. In this study, we further investigated mechanisms underlying the regulation of pro-inflammatory cytokine production by clock molecules in microglial cells. Several clock gene transcripts exhibited oscillatory diurnal rhythmicity in microglial BV-2 cells. Real-time luciferase monitoring also showed diurnal oscillatory luciferase activity in cultured microglia from Per1::Luciferase transgenic mice. Lipopolysaccharide (LPS) strongly induced the expression of pro-inflammatory cytokines in BV-2 cells, whereas an siRNA targeting Brain and muscle aryl hydrocarbon receptor nuclear translocator-like protein 1 (Bmal1), a core positive component of the microglial molecular clock, selectively inhibited LPS-induced interleukin-6 (IL-6) expression. In addition, LPS-induced IL-6 expression was attenuated in microglia from Bmal1-deficient mice. This phenotype was recapitulated by pharmacological disruption of oscillatory diurnal rhythmicity using the synthetic Rev-Erb agonist SR9011. Promoter analysis of the Il6 gene revealed that Bmal1 is required for LPS-induced IL-6 expression in microglia. Mice conditionally Bmal1 deficient in cells expressing CD11b, including microglia, exhibited less potent upregulation of Il6 expression following middle cerebral artery occlusion compared with that in control mice, with a significant attenuation of neuronal damage. These results suggest that the intrinsic microglial clock modulates the inflammatory response, including the positive regulation of IL-6 expression in a particular pathological situation in the brain, GLIA 2016. GLIA 2017;65:198-208.
© 2016 Wiley Periodicals, Inc.

Entities:  

Keywords:  Bmal1; IL-6; clock genes; microglia

Mesh:

Substances:

Year:  2016        PMID: 27726182     DOI: 10.1002/glia.23087

Source DB:  PubMed          Journal:  Glia        ISSN: 0894-1491            Impact factor:   7.452


  21 in total

1.  Circadian clock protein Rev-erbα regulates neuroinflammation.

Authors:  Percy Griffin; Julie M Dimitry; Patrick W Sheehan; Brian V Lananna; Chun Guo; Michelle L Robinette; Matthew E Hayes; Michelle R Cedeño; Collin J Nadarajah; Lubov A Ezerskiy; Marco Colonna; Jinsong Zhang; Adam Q Bauer; Thomas P Burris; Erik S Musiek
Journal:  Proc Natl Acad Sci U S A       Date:  2019-02-21       Impact factor: 11.205

2.  The Circadian Clock of Polarized Microglia and Its Interaction with Mouse Brain Oscillators.

Authors:  Petra Honzlová; Kateryna Semenovykh; Alena Sumová
Journal:  Cell Mol Neurobiol       Date:  2022-07-11       Impact factor: 4.231

Review 3.  The wrinkling of time: Aging, inflammation, oxidative stress, and the circadian clock in neurodegeneration.

Authors:  Brian V Lananna; Erik S Musiek
Journal:  Neurobiol Dis       Date:  2020-03-13       Impact factor: 5.996

Review 4.  Stress and aging act through common mechanisms to elicit neuroinflammatory priming.

Authors:  Laura K Fonken; Matthew G Frank; Andrew D Gaudet; Steven F Maier
Journal:  Brain Behav Immun       Date:  2018-07-17       Impact factor: 7.217

5.  Circadian Rhythms in AD pathogenesis: A Critical Appraisal.

Authors:  Erik S Musiek
Journal:  Curr Sleep Med Rep       Date:  2017-04-22

6.  Chi3l1/YKL-40 is controlled by the astrocyte circadian clock and regulates neuroinflammation and Alzheimer's disease pathogenesis.

Authors:  Brian V Lananna; Celia A McKee; Melvin W King; Jorge L Del-Aguila; Julie M Dimitry; Fabiana H G Farias; Collin J Nadarajah; David D Xiong; Chun Guo; Alexander J Cammack; Jack A Elias; Jinsong Zhang; Carlos Cruchaga; Erik S Musiek
Journal:  Sci Transl Med       Date:  2020-12-16       Impact factor: 17.956

Review 7.  The Role of Mammalian Glial Cells in Circadian Rhythm Regulation.

Authors:  Donají Chi-Castañeda; Arturo Ortega
Journal:  Neural Plast       Date:  2017-12-25       Impact factor: 3.599

8.  NAMPT and BMAL1 Are Independently Involved in the Palmitate-Mediated Induction of Neuroinflammation in Hypothalamic Neurons.

Authors:  Andy Tran; Wenyuan He; Nan Jiang; Jim T C Chen; Denise D Belsham
Journal:  Front Endocrinol (Lausanne)       Date:  2020-06-12       Impact factor: 5.555

Review 9.  Systems and Circuits Linking Chronic Pain and Circadian Rhythms.

Authors:  Andrew E Warfield; Jonathan F Prather; William D Todd
Journal:  Front Neurosci       Date:  2021-07-02       Impact factor: 5.152

Review 10.  Circadian rhythms in innate immunity and stress responses.

Authors:  Matthew Baxter; David W Ray
Journal:  Immunology       Date:  2020-01-03       Impact factor: 7.215

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