Literature DB >> 22634618

Transcriptional regulation of murine IL-33 by TLR and non-TLR agonists.

Swamy Kumar Polumuri1, Gift Gunaraj Jayakar, Kari Ann Shirey, Zachary J Roberts, Darren J Perkins, Paula M Pitha, Stefanie N Vogel.   

Abstract

IL-33, a member of the IL-1 family of cytokines, is produced by many cell types, including macrophages, yet its regulation is largely unknown. Treatment of primary murine macrophages with a panel of TLR (e.g., TLR2, TLR3, TLR4, and TLR9) agonists and non-TLR (e.g., MDA5, RIG-I) agonists revealed a pattern of gene and protein expression consistent with a role for IFN regulatory factor-3 (IRF-3) in the expression of IL-33. Accordingly, induction of IL-33 mRNA was attenuated in IRF-3(-/-) macrophages and TBK-1(-/-) mouse embryonic fibroblasts. Despite the fact that all IL-33 agonists were IRF-3 dependent, LPS-induced IL-33 mRNA was fully inducible in IFN-β(-/-) macrophages, indicating that IL-33 is not dependent on IFN-β as an intermediate. Epinephrine and Bordetella pertussis adenylate cyclase toxin (ACT), cAMP-activating agents, activate CREB and greatly synergize with LPS to induce IL-33 mRNA in macrophages. Both LPS-induced and ACT/LPS-enhanced expression of IL-33 mRNA was partially, but significantly, inhibited by the protein kinase A inhibitor H-89 but not by tyrosine kinase or protein kinase C inhibitors. Two IL-33 mRNA species derived from two alternative promoters encode full-length IL-33; however, the shorter "A" species is preferentially induced by all IL-33-inducing agonists except Newcastle disease virus, a RIG-I agonist that induced expression of both "A" and "B" transcripts. Together, these studies greatly extend what is currently known about the regulation of IL-33 induction in macrophages stimulated by bacterial and viral agonists that engage distinct innate immune signaling pathways.

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Year:  2012        PMID: 22634618      PMCID: PMC3437667          DOI: 10.4049/jimmunol.1003554

Source DB:  PubMed          Journal:  J Immunol        ISSN: 0022-1767            Impact factor:   5.422


  68 in total

1.  Cutting edge: The ST2 ligand IL-33 potently activates and drives maturation of human mast cells.

Authors:  Zoulfia Allakhverdi; Dirk E Smith; Michael R Comeau; Guy Delespesse
Journal:  J Immunol       Date:  2007-08-15       Impact factor: 5.422

2.  Differential roles of MDA5 and RIG-I helicases in the recognition of RNA viruses.

Authors:  Hiroki Kato; Osamu Takeuchi; Shintaro Sato; Mitsutoshi Yoneyama; Masahiro Yamamoto; Kosuke Matsui; Satoshi Uematsu; Andreas Jung; Taro Kawai; Ken J Ishii; Osamu Yamaguchi; Kinya Otsu; Tohru Tsujimura; Chang-Sung Koh; Caetano Reis e Sousa; Yoshiharu Matsuura; Takashi Fujita; Shizuo Akira
Journal:  Nature       Date:  2006-04-09       Impact factor: 49.962

3.  IL-33, an interleukin-1-like cytokine that signals via the IL-1 receptor-related protein ST2 and induces T helper type 2-associated cytokines.

Authors:  Jochen Schmitz; Alexander Owyang; Elizabeth Oldham; Yaoli Song; Erin Murphy; Terril K McClanahan; Gerard Zurawski; Mehrdad Moshrefi; Jinzhong Qin; Xiaoxia Li; Daniel M Gorman; J Fernando Bazan; Robert A Kastelein
Journal:  Immunity       Date:  2005-11       Impact factor: 31.745

4.  IL-33, the IL-1-like cytokine ligand for ST2 receptor, is a chromatin-associated nuclear factor in vivo.

Authors:  Virginie Carriere; Lucie Roussel; Nathalie Ortega; Delphine-Armelle Lacorre; Laure Americh; Luc Aguilar; Gérard Bouche; Jean-Philippe Girard
Journal:  Proc Natl Acad Sci U S A       Date:  2006-12-21       Impact factor: 11.205

5.  The cAMP signalling pathway activates CREB through PKA, p38 and MSK1 in NIH 3T3 cells.

Authors:  Marit Pedersen Delghandi; Mona Johannessen; Ugo Moens
Journal:  Cell Signal       Date:  2005-03-16       Impact factor: 4.315

6.  Variable p-CREB expression depicts different asthma phenotypes.

Authors:  G Chiappara; P Chanez; A Bruno; E Pace; F Pompeo; J Bousquet; G Bonsignore; M Gjomarkaj
Journal:  Allergy       Date:  2007-07       Impact factor: 13.146

7.  TLR3- and Th2 cytokine-dependent production of thymic stromal lymphopoietin in human airway epithelial cells.

Authors:  Atsushi Kato; Silvio Favoreto; Pedro C Avila; Robert P Schleimer
Journal:  J Immunol       Date:  2007-07-15       Impact factor: 5.422

8.  Thymic stromal lymphopoietin is released by human epithelial cells in response to microbes, trauma, or inflammation and potently activates mast cells.

Authors:  Zoulfia Allakhverdi; Michael R Comeau; Heidi K Jessup; Bo-Rin Park Yoon; Avery Brewer; Suzanne Chartier; Nicole Paquette; Steven F Ziegler; Marika Sarfati; Guy Delespesse
Journal:  J Exp Med       Date:  2007-01-22       Impact factor: 14.307

9.  IL-33 and ST2 comprise a critical biomechanically induced and cardioprotective signaling system.

Authors:  Shoji Sanada; Daihiko Hakuno; Luke J Higgins; Eric R Schreiter; Andrew N J McKenzie; Richard T Lee
Journal:  J Clin Invest       Date:  2007-05-10       Impact factor: 14.808

10.  The chemotherapeutic agent DMXAA potently and specifically activates the TBK1-IRF-3 signaling axis.

Authors:  Zachary J Roberts; Nadege Goutagny; Pin-Yu Perera; Hiroki Kato; Himanshu Kumar; Taro Kawai; Shizuo Akira; Ram Savan; David van Echo; Katherine A Fitzgerald; Howard A Young; Lai-Ming Ching; Stefanie N Vogel
Journal:  J Exp Med       Date:  2007-06-11       Impact factor: 14.307

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  53 in total

1.  A network map of IL-33 signaling pathway.

Authors:  Sneha M Pinto; Yashwanth Subbannayya; D A B Rex; Rajesh Raju; Oishi Chatterjee; Jayshree Advani; Aneesha Radhakrishnan; T S Keshava Prasad; Mohan R Wani; Akhilesh Pandey
Journal:  J Cell Commun Signal       Date:  2018-04-28       Impact factor: 5.782

Review 2.  Implications for Interleukin-33 in solid organ transplantation.

Authors:  Quan Liu; Hēth R Turnquist
Journal:  Cytokine       Date:  2013-03-27       Impact factor: 3.861

Review 3.  Interleukin-33 in tumorigenesis, tumor immune evasion, and cancer immunotherapy.

Authors:  Binfeng Lu; Min Yang; Qingqing Wang
Journal:  J Mol Med (Berl)       Date:  2016-02-27       Impact factor: 4.599

4.  Epithelial-derived nuclear IL-33 aggravates inflammation in the pathogenesis of reflux esophagitis.

Authors:  Jing Shan; Tadayuki Oshima; Taichiro Muto; Koubun Yasuda; Hirokazu Fukui; Jiro Watari; Kenji Nakanishi; Hiroto Miwa
Journal:  J Gastroenterol       Date:  2014-08-17       Impact factor: 7.527

5.  Dynamic modulation of innate immune response by varying dosages of lipopolysaccharide (LPS) in human monocytic cells.

Authors:  Matthew C Morris; Elizabeth A Gilliam; Julia Button; Liwu Li
Journal:  J Biol Chem       Date:  2014-06-26       Impact factor: 5.157

6.  IFN-γ directly controls IL-33 protein level through a STAT1- and LMP2-dependent mechanism.

Authors:  Pavel Kopach; Virginia Lockatell; Edward M Pickering; Ronald E Haskell; Richard D Anderson; Jeffrey D Hasday; Nevins W Todd; Irina G Luzina; Sergei P Atamas
Journal:  J Biol Chem       Date:  2014-03-11       Impact factor: 5.157

7.  Endogenous prostaglandin E2 amplifies IL-33 production by macrophages through an E prostanoid (EP)2/EP4-cAMP-EPAC-dependent pathway.

Authors:  Sachin K Samuchiwal; Barbara Balestrieri; Hannah Raff; Joshua A Boyce
Journal:  J Biol Chem       Date:  2017-03-24       Impact factor: 5.157

8.  Serum amyloid A induces interleukin-33 expression through an IRF7-dependent pathway.

Authors:  Lei Sun; Ziyan Zhu; Ni Cheng; Qian Yan; Richard D Ye
Journal:  Eur J Immunol       Date:  2014-05-22       Impact factor: 5.532

9.  Phosphoinositide 3-Kinase δ Regulates Dectin-2 Signaling and the Generation of Th2 and Th17 Immunity.

Authors:  Min Jung Lee; Eri Yoshimoto; Shinobu Saijo; Yoichiro Iwakura; Xin Lin; Howard R Katz; Yoshihide Kanaoka; Nora A Barrett
Journal:  J Immunol       Date:  2016-05-18       Impact factor: 5.422

10.  Anti-interleukin-33 inhibits cigarette smoke-induced lung inflammation in mice.

Authors:  Chuan Qiu; Yan Li; Mingcai Li; Min Li; Xiaojin Liu; Charles McSharry; Damo Xu
Journal:  Immunology       Date:  2013-01       Impact factor: 7.397

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