Membrane-Tethered Mucin 1 Is Stimulated by Interferon and Virus Infection in Multiple Cell Types and Inhibits Influenza A Virus Infection in Human Airway Epithelium

被引:8
作者
Iverson, Ethan [1 ]
Griswold, Kira [1 ]
Song, Daniel [2 ]
Gagliardi, Talita B. [1 ]
Hamidzadeh, Kajal [1 ]
Kesimer, Mehmet [3 ]
Sinha, Sanju [4 ,5 ]
Perry, Melissa [1 ]
Duncan, Gregg A. [2 ]
Scull, Margaret A. [1 ]
机构
[1] Univ Maryland, Maryland Pathogen Res Inst, Dept Cell Biol & Mol Genet, College Pk, MD 20742 USA
[2] Univ Maryland, Fischell Dept Bioengn, College Pk, MD USA
[3] Univ N Carolina, Mars Lung Inst, Chapel Hill, NC USA
[4] NCI, Canc Data Sci Lab, NIH, Bethesda, MD USA
[5] Univ Maryland, Ctr Bioinformat & Computat Biol, College Pk, MD USA
来源
MBIO | 2022年 / 13卷 / 04期
关键词
influenza virus; mucin; interferon; airway epithelium; macrophage; RECEPTOR-BINDING PROPERTIES; GROWTH-FACTOR RECEPTOR; ALVEOLAR MACROPHAGES; IN-VITRO; EXPRESSION; PROTEIN; INFLAMMATION; REPLICATION; ONCOPROTEIN; ENDOCYTOSIS;
D O I
10.1128/mbio.01055-22
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Influenza A virus (IAV) targets airway epithelial cells for infection. Large, heavily glycosylated molecules known as tethered mucins extend from the airway epithelial cell surface and may physically restrict pathogen access to underlying cells. Influenza A virus (IAV) causes significant morbidity and mortality in the human population. Tethered mucin 1 (MUC1) is highly expressed in airway epithelium, the primary site of IAV replication, and also by other cell types that influence IAV infection, including macrophages. MUC1 has the potential to influence infection dynamics through physical interactions and/or signaling activity, yet MUC1 modulation and its impact during viral pathogenesis remain unclear. Thus, we investigated MUC1-IAV interactions in an in vitro model of human airway epithelium (HAE). Our data indicate that a recombinant IAV hemagglutinin (H3) and H3N2 virus can bind endogenous HAE MUC1. Notably, infection of HAE with H1N1 or H3N2 IAV strains does not trigger MUC1 shedding but instead stimulates an increase in cell-associated MUC1 protein. We observed a similar increase after type I or III interferon (IFN) stimulation; however, inhibition of IFN signaling during H1N1 infection only partially abrogated this increase, indicating that multiple soluble factors contribute to MUC1 upregulation during the antiviral response. In addition to HAE, primary human monocyte-derived macrophages also upregulated MUC1 protein in response to IFN treatment and conditioned media from IAV-infected HAE. Then, to determine the impact of MUC1 on IAV pathogenesis, we developed HAE genetically depleted of MUC1 and found that MUC1 knockout cultures exhibited enhanced viral growth compared to control cultures for several IAV strains. Together, our data support a model whereby MUC1 inhibits productive uptake of IAV in HAE. Infection then stimulates MUC1 expression on multiple cell types through IFN-dependent and -independent mechanisms that further impact infection dynamics. IMPORTANCE Influenza A virus (IAV) targets airway epithelial cells for infection. Large, heavily glycosylated molecules known as tethered mucins extend from the airway epithelial cell surface and may physically restrict pathogen access to underlying cells. Additionally, tethered mucin 1 (MUC1) can be differentially phosphorylated based on external stimuli and can influence inflammation. Given MUC1's multifunctional capability, we sought to define its role during IAV infection. Here, we demonstrate that IAV directly interacts with MUC1 in a physiologically relevant model of human airway epithelium (HAE) and find that MUC1 protein expression is elevated throughout the epithelium and in primary human monocyte-derived macrophages in response to antiviral signals produced during infection. Using CRISPR/Cas9-modified HAE, we demonstrated more efficient IAV infection when MUC1 is genetically ablated. Our data suggest that MUC1 physically restricts IAV uptake and represents a dynamic component of the host response that acts to inhibit viral spread, yielding new insight into mucin-mediated antiviral defense.
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页数:20
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共 82 条
  • [11] The Cytoplasmic Tail of MUC1: A Very Busy Place
    Carson, Daniel D.
    [J]. SCIENCE SIGNALING, 2008, 1 (27) : pe35
  • [12] CRISPR-Cas9-mediated gene knockout in primary human airway epithelial cells reveals a proinflammatory role for MUC18
    Chu, H. W.
    Rios, C.
    Huang, C.
    Wesolowska-Andersen, A.
    Burchard, E. G.
    O'Connor, B. P.
    Fingerlin, T. E.
    Nichols, D.
    Reynolds, S. D.
    Seibold, M. A.
    [J]. GENE THERAPY, 2015, 22 (10) : 822 - 829
  • [13] Inference of CRISPR Edits from Sanger Trace Data
    Conant, David
    Hsiau, Tim
    Rossi, Nicholas
    Oki, Jennifer
    Maures, Travis
    Waite, Kelsey
    Yang, Joyce
    Joshi, Sahil
    Kelso, Reed
    Holden, Kevin
    Enzmann, Brittany L.
    Stoner, Rich
    [J]. CRISPR JOURNAL, 2022, 5 (01): : 123 - 130
  • [14] Relevance of MUC1 mucin variable number of tandem repeats polymorphism in H pylori adhesion to gastric epithelial cells
    Costa, Natalia R.
    Mendes, Nuno
    Marcos, Nuno T.
    Reis, Celso A.
    Caffrey, Thomas
    Hollingsworth, Michael A.
    Santos-Silva, Filipe
    [J]. WORLD JOURNAL OF GASTROENTEROLOGY, 2008, 14 (09) : 1411 - 1414
  • [15] Membrane-tethered mucin-like polypeptides sterically inhibit binding and slow fusion kinetics of influenza A virus
    Delaveris, Corleone S.
    Webster, Elizabeth R.
    Banik, Steven M.
    Boxer, Steven G.
    Bertozzi, Carolyn R.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (23) : 12643 - 12650
  • [16] The Role of the Cell Surface Mucin MUC1 as a Barrier to Infection and Regulator of Inflammation
    Dhar, Poshmaal
    McAuley, Julie
    [J]. FRONTIERS IN CELLULAR AND INFECTION MICROBIOLOGY, 2019, 9
  • [17] Mucin 1 protects against severe Streptococcus pneumoniae infection
    Dhar, Poshmaal
    Ng, Garrett Z.
    Dunne, Eileen M.
    Sutton, Philip
    [J]. VIRULENCE, 2017, 8 (08) : 1631 - 1642
  • [18] Analysis of IAV Replication and Co-infection Dynamics by a Versatile RNA Viral Genome Labeling Method
    Dou, Dan
    Hernandez-Neuta, Ivan
    Wang, Hao
    Ostbye, Henrik
    Qian, Xiaoyan
    Thiele, Swantje
    Resa-Infante, Patricia
    Kouassi, Nancy Mounogou
    Sender, Vicky
    Hentrich, Karina
    Mellroth, Peter
    Henriques-Normark, Birgitta
    Gabriel, Guelsah
    Nilsson, Mats
    Daniels, Robert
    [J]. CELL REPORTS, 2017, 20 (01): : 251 - 263
  • [19] Interaction Between MUC1 and STAT1 Drives IFITM1 Overexpression in Aromatase Inhibitor-Resistant Breast Cancer Cells and Mediates Estrogen-Induced Apoptosis
    Escher, Taylor E.
    Lui, Asona J.
    Geanes, Eric S.
    Waller, Katherine R.
    Tawfik, Ossama
    Hagan, Christy R.
    Lewis-Wambi, Joan
    [J]. MOLECULAR CANCER RESEARCH, 2019, 17 (05) : 1180 - 1194
  • [20] Rescue of influenza A virus from recombinant DNA
    Fodor, E
    Devenish, L
    Engelhardt, OG
    Palese, P
    Brownlee, GG
    García-Sastre, A
    [J]. JOURNAL OF VIROLOGY, 1999, 73 (11) : 9679 - 9682