Literature DB >> 23558133

Suppressor of cytokine signalling protein SOCS1 and UBP43 regulate the expression of type I interferon-stimulated genes in human microvascular endothelial cells infected with Rickettsia conorii.

Punsiri M Colonne1,2, Abha Sahni3, Sanjeev K Sahni4,3.   

Abstract

Rickettsia conorii, the causative agent of Mediterranean spotted fever, preferentially infects human microvascular endothelium and activates pro-inflammatory innate immune responses as evidenced by enhanced expression and secretion of cytokines and chemokines. Our recent studies reveal that human microvascular endothelial cells (HMECs) infected with R. conorii also launch 'antiviral' host defence mechanisms typically governed by type I interferons. To summarize, infected HMECs secrete IFN-β to activate STAT1 in an autocrine/paracrine manner and display increased expression of IFN-stimulated genes, for example ISG15, which in turn activate innate responses to interfere with intracellular replication of rickettsiae. We now present evidence that UBP43 and SOCS1, known negative regulators of JAK/STAT signalling, are also induced in R. conorii-infected HMECs, of which UBP43 but not SOCS1 functions to negatively regulate STAT1 activation. Interestingly, UBP43 induction is almost completely abolished in the presence of IFN-β-neutralizing antibody, implicating an important role for UBP43 as a feedback inhibitor for IFN-β-mediated STAT1 activation. In contrast, SOCS1 expression is only partially affected by IFN-β neutralization, implicating potential involvement of as-yet-unidentified IFN-independent mechanism(s) in SOCS1 induction during R. conorii infection. A number of IFN-stimulated genes, including ISG15, OAS1, MX1, IRF1, IRF9 and TAP1 are also induced in an IFN-β-dependent manner, whereas GBP1 remains unaffected by IFN-β neutralization. Increased STAT1 phosphorylation in HMECs subjected to UBP43 knockdown led to transcriptional activation of OAS1, MX1 and GBP1, confirming the negative regulatory role of UBP43. Although IRF1, IRF9 and TAP1 were induced by IFN-β, siRNA-mediated silencing of UBP43 or SOCS1 did not significantly affect their transcriptional activation. Expression of ISG15 was, however, increased in HMECs transfected with siRNA for UBP43 and SOCS1. Thus, unique regulatory patterns of induced expression of UBP43, SOCS1 and IFN-stimulated genes represent pathogen-specific responses underlying IFN-β-mediated host endothelial signalling during the pathogenesis of spotted fever group rickettsiosis.

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Year:  2013        PMID: 23558133      PMCID: PMC3709555          DOI: 10.1099/jmm.0.054502-0

Source DB:  PubMed          Journal:  J Med Microbiol        ISSN: 0022-2615            Impact factor:   2.472


  48 in total

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Journal:  FASEB J       Date:  2006-03-29       Impact factor: 5.191

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3.  Mx protein: constitutive expression in 3T3 cells transformed with cloned Mx cDNA confers selective resistance to influenza virus.

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4.  Distinct roles of the NH2- and COOH-terminal domains of the protein inhibitor of activated signal transducer and activator of transcription (STAT) 1 (PIAS1) in cytokine-induced PIAS1-Stat1 interaction.

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5.  The helical domain of GBP-1 mediates the inhibition of endothelial cell proliferation by inflammatory cytokines.

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6.  [Epidemiologic features of Mediterranean spotted fever in Portugal].

Authors:  Rita de Sousa; Sónia Dória Nóbrega; Fátima Bacellar; Jorge Torgal
Journal:  Acta Med Port       Date:  2003-12-01

7.  Demonstration of Rickettsia conorii-induced endothelial injury in vivo by measuring circulating endothelial cells, thrombomodulin, and von Willebrand factor in patients with Mediterranean spotted fever.

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Review 8.  The SOCS box: a tale of destruction and degradation.

Authors:  Benjamin T Kile; Brenda A Schulman; Warren S Alexander; Nicos A Nicola; Helene M E Martin; Douglas J Hilton
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9.  Regulated expression of a gene encoding a nuclear factor, IRF-1, that specifically binds to IFN-beta gene regulatory elements.

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10.  Human guanylate binding proteins potentiate the anti-chlamydia effects of interferon-gamma.

Authors:  Illya Tietzel; Christelle El-Haibi; Rey A Carabeo
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  11 in total

Review 1.  Recent molecular insights into rickettsial pathogenesis and immunity.

Authors:  Sanjeev K Sahni; Hema P Narra; Abha Sahni; David H Walker
Journal:  Future Microbiol       Date:  2013-10       Impact factor: 3.165

Review 2.  Pathogenesis of Rickettsial Diseases: Pathogenic and Immune Mechanisms of an Endotheliotropic Infection.

Authors:  Abha Sahni; Rong Fang; Sanjeev K Sahni; David H Walker
Journal:  Annu Rev Pathol       Date:  2018-08-27       Impact factor: 23.472

3.  Endothelial Cell Proteomic Response to Rickettsia conorii Infection Reveals Activation of the Janus Kinase (JAK)-Signal Transducer and Activator of Transcription (STAT)-Inferferon Stimulated Gene (ISG)15 Pathway and Reprogramming Plasma Membrane Integrin/Cadherin Signaling.

Authors:  Yingxin Zhao; Gustavo Valbuena; David H Walker; Michal Gazi; Marylin Hidalgo; Rita DeSousa; Jose Antonio Oteo; Yenny Goez; Allan R Brasier
Journal:  Mol Cell Proteomics       Date:  2015-11-11       Impact factor: 5.911

Review 4.  Multiple functions of USP18.

Authors:  Nadine Honke; Namir Shaabani; Dong-Er Zhang; Cornelia Hardt; Karl S Lang
Journal:  Cell Death Dis       Date:  2016-11-03       Impact factor: 8.469

Review 5.  SOCS Proteins as Regulators of Inflammatory Responses Induced by Bacterial Infections: A Review.

Authors:  Skyla A Duncan; Dieudonné R Baganizi; Rajnish Sahu; Shree R Singh; Vida A Dennis
Journal:  Front Microbiol       Date:  2017-12-12       Impact factor: 5.640

Review 6.  USP18 - a multifunctional component in the interferon response.

Authors:  Anja Basters; Klaus-Peter Knobeloch; Günter Fritz
Journal:  Biosci Rep       Date:  2018-11-15       Impact factor: 3.840

7.  Global Transcriptomic Profiling of Pulmonary Gene Expression in an Experimental Murine Model of Rickettsia conorii Infection.

Authors:  Hema P Narra; Abha Sahni; Kamil Khanipov; Yuriy Fofanov; Sanjeev K Sahni
Journal:  Genes (Basel)       Date:  2019-03-08       Impact factor: 4.096

8.  Cutaneous Immunoprofiles of Three Spotted Fever Group Rickettsia Cases.

Authors:  Na Jia; Hong-Bo Liu; Yuan-Chun Zheng; Wen-Qiang Shi; Ran Wei; Yan-Li Chu; Nian-Zhi Ning; Bao-Gui Jiang; Rui-Ruo Jiang; Tao Li; Qiu-Bo Huo; Cai Bian; Xiong Liu; Yi Sun; Lian-Feng Li; Qian Wang; Wei Wei; Ya-Wei Wang; Frans Jongejan; Jia-Fu Jiang; Ju-Liang Song; Hui Wang; Wu-Chun Cao
Journal:  Infect Immun       Date:  2020-03-23       Impact factor: 3.441

Review 9.  Emerging Roles of USP18: From Biology to Pathophysiology.

Authors:  Ji An Kang; Young Joo Jeon
Journal:  Int J Mol Sci       Date:  2020-09-17       Impact factor: 5.923

10.  Contribution of classical complement activation and IgM to the control of Rickettsia infection.

Authors:  Mustapha Dahmani; Jack H Cook; Jinyi C Zhu; Sean P Riley
Journal:  Mol Microbiol       Date:  2021-11-13       Impact factor: 3.979

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