Literature DB >> 28328242

Human Airway Epithelial Cells Direct Significant Rhinovirus Replication in Monocytic Cells by Enhancing ICAM1 Expression.

Xu Zhou1, Lingxiang Zhu1, Rosa Lizarraga1, Yin Chen1.   

Abstract

Human rhinovirus (RV) is the major cause of common cold, and it also plays a significant role in asthma and asthma exacerbation. The airway epithelium is the primary site of RV infection and production. In contrast, monocytic cells (e.g., monocytes and macrophages) are believed to be nonpermissive for RV replication. Instead, RV has been shown to modulate inflammatory gene expressions in these cells via a replication-independent mechanism. In the study presented here, replication of RV16 (a major-group RV) was found to be significantly enhanced in monocytes when it was cocultivated with airway epithelial cells. This effect appeared to be mediated by secretory components from epithelial cells, which stimulated RV16 replication and significantly elevated the expression of a number of proinflammatory cytokines. The lack of such an effect on RV1A, a minor-group RV that enters the cell by a different receptor, suggests that intercellular adhesion molecule 1 (ICAM1), the receptor for major-group RVs, may be involved. Indeed, conditioned media from epithelial cells significantly increased ICAM1 expression in monocytes. Consistently, ICAM1 overexpression and ICAM1 knockdown enhanced and blocked RV production, respectively, confirming the role of ICAM1 in this process. Thus, this is the first report demonstrating that airway epithelial cells direct significant RV16 replication in monocytic cells via an ICAM1-dependent mechanism. This finding will open a new avenue for the study of RV infection in airway disease and its exacerbation.

Entities:  

Keywords:  ICAM1; airway; epithelium; rhinovirus

Mesh:

Substances:

Year:  2017        PMID: 28328242      PMCID: PMC5576581          DOI: 10.1165/rcmb.2016-0271OC

Source DB:  PubMed          Journal:  Am J Respir Cell Mol Biol        ISSN: 1044-1549            Impact factor:   6.914


  44 in total

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Authors:  Yin Chen; Edward Hamati; Pak-Kei Lee; Wai-Ming Lee; Shinichiro Wachi; David Schnurr; Shigeo Yagi; Gregory Dolganov; Homer Boushey; Pedro Avila; Reen Wu
Journal:  Am J Respir Cell Mol Biol       Date:  2005-10-06       Impact factor: 6.914

2.  Rhinoviruses induce interleukin-8 mRNA and protein production in human monocytes.

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Journal:  J Infect Dis       Date:  1997-02       Impact factor: 5.226

3.  Interleukin-8 induces nuclear transcription factor-kappaB through a TRAF6-dependent pathway.

Authors:  Sunil K Manna; Govindarajan T Ramesh
Journal:  J Biol Chem       Date:  2004-12-09       Impact factor: 5.157

4.  Rhinovirus enters but does not replicate inside monocytes and airway macrophages.

Authors:  J E Gern; E C Dick; W M Lee; S Murray; K Meyer; Z T Handzel; W W Busse
Journal:  J Immunol       Date:  1996-01-15       Impact factor: 5.422

5.  Toll-like receptor 2-expressing macrophages are required and sufficient for rhinovirus-induced airway inflammation.

Authors:  Mingyuan Han; Yutein Chung; Jun Young Hong; Charu Rajput; Jing Lei; Joanna L Hinde; Qiang Chen; Steven P Weng; J Kelley Bentley; Marc B Hershenson
Journal:  J Allergy Clin Immunol       Date:  2016-04-12       Impact factor: 10.793

6.  The role of p38 MAPK in rhinovirus-induced monocyte chemoattractant protein-1 production by monocytic-lineage cells.

Authors:  David J Hall; Mary Ellen Bates; Lasya Guar; Mark Cronan; Nichole Korpi; Paul J Bertics
Journal:  J Immunol       Date:  2005-06-15       Impact factor: 5.422

7.  Activation of the small G-protein Rac by human rhinovirus attenuates the TLR3/IFN-α axis while promoting CCL2 release in human monocyte-lineage cells.

Authors:  Michael T Schreiber; Bryce Schuler; LuYuan Li; David J Hall
Journal:  Innate Immun       Date:  2012-10-11       Impact factor: 2.680

8.  Macrophage/epithelial cell CCL2 contributes to rhinovirus-induced hyperresponsiveness and inflammation in a mouse model of allergic airways disease.

Authors:  Dina Schneider; Jun Young Hong; Emily R Bowman; Yutein Chung; Deepti R Nagarkar; Christina L McHenry; Adam M Goldsmith; J Kelley Bentley; Toby C Lewis; Marc B Hershenson
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2012-11-30       Impact factor: 5.464

9.  Rhinovirus-induced wheezing in infancy--the first sign of childhood asthma?

Authors:  Anne Kotaniemi-Syrjänen; Raija Vainionpää; Tiina M Reijonen; Matti Waris; Kaj Korhonen; Matti Korppi
Journal:  J Allergy Clin Immunol       Date:  2003-01       Impact factor: 10.793

10.  The relationship of rhinovirus-associated asthma hospitalizations with inhaled corticosteroids and smoking.

Authors:  Daniel L Venarske; William W Busse; Marie R Griffin; Tebeb Gebretsadik; Ayumi K Shintani; Patricia A Minton; R Stokes Peebles; Robert Hamilton; Elizabeth Weisshaar; Rose Vrtis; Stanley B Higgins; Tina V Hartert
Journal:  J Infect Dis       Date:  2006-04-27       Impact factor: 5.226

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  12 in total

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Journal:  Immunol Allergy Clin North Am       Date:  2019-05-07       Impact factor: 3.479

2.  Rhinovirus infection induces distinct transcriptome profiles in polarized human macrophages.

Authors:  Charu Rajput; Megan P Walsh; Breanna N Eder; Ediri E Metitiri; Antonia P Popova; Marc B Hershenson
Journal:  Physiol Genomics       Date:  2018-03-09       Impact factor: 3.107

3.  Arpin is critical for phagocytosis in macrophages and is targeted by human rhinovirus.

Authors:  Jamil Jubrail; Kshanti Africano-Gomez; Floriane Herit; Anna Mularski; Pierre Bourdoncle; Lisa Oberg; Elisabeth Israelsson; Pierre-Regis Burgel; Gaell Mayer; Danen M Cunoosamy; Nisha Kurian; Florence Niedergang
Journal:  EMBO Rep       Date:  2019-11-13       Impact factor: 8.807

4.  Plasticity of Naturally Occurring Regulatory T Cells in Allergic Airway Disease Is Modulated by the Transcriptional Activity of Il-6.

Authors:  Morgan MacBeth; Anthony Joetham; Erwin W Gelfand; Michaela Schedel
Journal:  Int J Mol Sci       Date:  2021-04-27       Impact factor: 5.923

Review 5.  Rhinovirus and Innate Immune Function of Airway Epithelium.

Authors:  Haleh Ganjian; Charu Rajput; Manal Elzoheiry; Umadevi Sajjan
Journal:  Front Cell Infect Microbiol       Date:  2020-06-19       Impact factor: 5.293

6.  Construction of a recombinant rhinovirus accommodating fluorescent marker expression.

Authors:  Mingyuan Han; Charu Rajput; Joanna L Hinde; Qian Wu; Jing Lei; Tomoko Ishikawa; J Kelley Bentley; Marc B Hershenson
Journal:  Influenza Other Respir Viruses       Date:  2018-09-06       Impact factor: 4.380

7.  Respiratory epithelial cells as master communicators during viral infections.

Authors:  Tanya A Miura
Journal:  Curr Clin Microbiol Rep       Date:  2019-02-13

8.  Altered transcriptional and chromatin responses to rhinovirus in bronchial epithelial cells from adults with asthma.

Authors:  Britney A Helling; Débora R Sobreira; Grace T Hansen; Noboru J Sakabe; Kaixuan Luo; Christine Billstrand; Bharathi Laxman; Raluca I Nicolae; Dan L Nicolae; Yury A Bochkov; James E Gern; Marcelo A Nobrega; Steven R White; Carole Ober
Journal:  Commun Biol       Date:  2020-11-13

Review 9.  Innate Immune Responses to Highly Pathogenic Coronaviruses and Other Significant Respiratory Viral Infections.

Authors:  Hanaa Ahmed-Hassan; Brianna Sisson; Rajni Kant Shukla; Yasasvi Wijewantha; Nicholas T Funderburg; Zihai Li; Don Hayes; Thorsten Demberg; Namal P M Liyanage
Journal:  Front Immunol       Date:  2020-08-18       Impact factor: 7.561

10.  Asthmatic Bronchial Smooth Muscle Increases CCL5-Dependent Monocyte Migration in Response to Rhinovirus-Infected Epithelium.

Authors:  Benoit Allard; Hannah Levardon; Pauline Esteves; Alexis Celle; Elise Maurat; Matthieu Thumerel; Pierre Olivier Girodet; Thomas Trian; Patrick Berger
Journal:  Front Immunol       Date:  2020-01-06       Impact factor: 7.561

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