Literature DB >> 32826280

The Structural Basis of IRF-3 Activation upon Phosphorylation.

Tao Jing1, Baoyu Zhao1, Pengbiao Xu1, Xinsheng Gao1, Lei Chi1,2, Huajun Han1, Banumathi Sankaran3, Pingwei Li4.   

Abstract

The innate immune system is the first line of defense against bacterial and viral infections. The recognition of pathogen-associated molecular patterns by the RIG-I-like receptors, TLRs, and cGAS leads to the induction of IFN-I by activating the transcription factor IRF-3. Although the mechanism of IRF-3 activation has been extensively studied, the structural basis of IRF-3 activation upon phosphorylation is not fully understood. In this study, we determined the crystal structures of phosphorylated human and mouse IRF-3 bound to CREB-binding protein (CBP), which reveal that phosphorylated IRF-3 forms a dimer via pSer386 (pSer379 in mouse IRF-3) and a downstream pLxIS motif. Size-exclusion chromatography and cell-based studies show that mutations of key residues interacting with pSer386 severely impair IRF-3 activation and IFN-β induction. By contrast, phosphorylation of Ser396 within the pLxIS motif of human IRF-3 only plays a moderate role in IRF-3 activation. The mouse IRF-3/CBP complex structure reveals that the mechanism of mouse IRF-3 activation is similar but distinct from human IRF-3. These structural and functional studies reveal the detailed mechanism of IRF-3 activation upon phosphorylation.
Copyright © 2020 by The American Association of Immunologists, Inc.

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Year:  2020        PMID: 32826280      PMCID: PMC7511445          DOI: 10.4049/jimmunol.2000026

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


  36 in total

1.  Crystal structure of IRF-3 reveals mechanism of autoinhibition and virus-induced phosphoactivation.

Authors:  Bin Y Qin; Cheng Liu; Suvana S Lam; Hema Srinath; Rachel Delston; John J Correia; Rik Derynck; Kai Lin
Journal:  Nat Struct Biol       Date:  2003-10-12

Review 2.  Innate immune sensing and signaling of cytosolic nucleic acids.

Authors:  Jiaxi Wu; Zhijian J Chen
Journal:  Annu Rev Immunol       Date:  2014       Impact factor: 28.527

3.  Direct triggering of the type I interferon system by virus infection: activation of a transcription factor complex containing IRF-3 and CBP/p300.

Authors:  M Yoneyama; W Suhara; Y Fukuhara; M Fukuda; E Nishida; T Fujita
Journal:  EMBO J       Date:  1998-02-16       Impact factor: 11.598

Review 4.  Control of IRF-3 activation by phosphorylation.

Authors:  Mitsutoshi Yoneyama; Wakako Suhara; Takashi Fujita
Journal:  J Interferon Cytokine Res       Date:  2002-01       Impact factor: 2.607

5.  Structural and functional analysis of interferon regulatory factor 3: localization of the transactivation and autoinhibitory domains.

Authors:  R Lin; Y Mamane; J Hiscott
Journal:  Mol Cell Biol       Date:  1999-04       Impact factor: 4.272

6.  Analyses of virus-induced homomeric and heteromeric protein associations between IRF-3 and coactivator CBP/p300.

Authors:  W Suhara; M Yoneyama; T Iwamura; S Yoshimura; K Tamura; H Namiki; S Aimoto; T Fujita
Journal:  J Biochem       Date:  2000-08       Impact factor: 3.387

Review 7.  Triggering the interferon response: the role of IRF-3 transcription factor.

Authors:  J Hiscott; P Pitha; P Genin; H Nguyen; C Heylbroeck; Y Mamane; M Algarte; R Lin
Journal:  J Interferon Cytokine Res       Date:  1999-01       Impact factor: 2.607

8.  Cyclic GMP-AMP synthase is a cytosolic DNA sensor that activates the type I interferon pathway.

Authors:  Lijun Sun; Jiaxi Wu; Fenghe Du; Xiang Chen; Zhijian J Chen
Journal:  Science       Date:  2012-12-20       Impact factor: 47.728

9.  Interferon regulatory factor 3 is regulated by a dual phosphorylation-dependent switch.

Authors:  Daniel Panne; Sarah M McWhirter; Tom Maniatis; Stephen C Harrison
Journal:  J Biol Chem       Date:  2007-05-25       Impact factor: 5.157

10.  Identification of the minimal phosphoacceptor site required for in vivo activation of interferon regulatory factor 3 in response to virus and double-stranded RNA.

Authors:  Marc J Servant; Nathalie Grandvaux; Benjamin R tenOever; Delphine Duguay; Rongtuan Lin; John Hiscott
Journal:  J Biol Chem       Date:  2003-01-10       Impact factor: 5.157

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  2 in total

1.  AKT2 reduces IFNβ1 production to modulate antiviral responses and systemic lupus erythematosus.

Authors:  Xin Zheng; Jun Xiao; Qi Jiang; Lingming Zheng; Chang Liu; Chen Dong; Yuxiao Zheng; Peili Ni; Chi Zhang; Fang Zhang; Ruiyue Zhong; Huihua Ding; Qiong Wang; Ying Qiu; Minxia Gao; Jianping Ding; Nan Shen; Bin Wei; Hongyan Wang
Journal:  EMBO J       Date:  2022-02-22       Impact factor: 11.598

Review 2.  Role of Mitochondrial Nucleic Acid Sensing Pathways in Health and Patho-Physiology.

Authors:  Arpita Chowdhury; Steffen Witte; Abhishek Aich
Journal:  Front Cell Dev Biol       Date:  2022-02-11
  2 in total

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