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Fatal swine acute diarrhoea syndrome caused by an HKU2‐related coronavirus of bat origin |
Zhou |
2018 |
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Discovery of a novel swine enteric alphacoronavirus (SeACoV) in Southern China |
Pan |
2017 |
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A new Bat‐HKU2‐like coronavirus in Swine, China, 2017 |
Gong |
2017 |
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Swine enteric alphacoronavirus (swine acute diarrhea syndrome coronavirus): an update three years after its discovery |
Yang |
2020 |
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Retrospective detection and phylogenetic analysis of swine acute diarrhoea syndrome coronavirus in pigs in Southern China |
Zhou |
2019 |
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Host cell proteases: critical determinants of coronavirus tropism and pathogenesis |
Millet |
2015 |
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Structure, function, and evolution of coronavirus spike proteins |
Li |
2016 |
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Structural insights into coronavirus entry |
Tortorici |
2019 |
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Receptor recognition mechanisms of coronaviruses: a decade of structural studies |
Li |
2015 |
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Characterization of a novel bat‐HKU2‐like swine enteric alphacoronavirus (SeACoV) infection in cultured cells and development of a SeACoV infectious clone |
Yang |
2019 |
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Identification of ZDHHC17 as a potential drug target for Swine acute diarrhea syndrome coronavirus infection. mBio. 2021;12(5):e0234221 |
Luo |
2021 |
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Genomewide CRISPR knockout screen identified PLAC8 as an essential factor for SADS‐CoVs infection |
Tse |
2022 |
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Membrane‐anchored serine proteases in health and disease |
Antalis |
2011 |
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Type II transmembrane serine proteases |
Bugge |
2009 |
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Activation of a membrane‐bound serine protease matriptase on the cell surface |
Miyake |
2009 |
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Mechanisms of SARS‐CoV‐2 entry into cells |
Jackson |
2022 |
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Proteolytic activation of influenza viruses by serine proteases TMPRSS2 and HAT from human airway epithelium |
Böttcher |
2006 |
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MDCK cells that express proteases TMPRSS2 and HAT provide a cell system to propagate influenza viruses in the absence of trypsin and to study cleavage of HA and its inhibition |
Böttcher |
2009 |
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Cleavage of influenza virus hemagglutinin by airway proteases TMPRSS2 and HAT differs in subcellular localization and susceptibility to protease inhibitors |
Böttcher‐Friebertshäuser |
2010 |
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Influenza and SARS‐coronavirus activating proteases TMPRSS2 and HAT are expressed at multiple sites in human respiratory and gastrointestinal tracts |
Bertram |
2012 |
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DESC1 and MSPL activate influenza A viruses and emerging coronaviruses for host cell entry |
Zmora |
2014 |
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TMPRSS2 and TMPRSS4 facilitate trypsin‐independent spread of influenza virus in Caco‐2 cells |
Bertram |
2010 |
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TMPRSS2 and TMPRSS4 promote SARS‐CoV‐2 infection of human small intestinal enterocytes |
Zang |
2020 |
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The role of furin cleavage site in SARS‐CoV‐2 spike protein‐mediated membrane fusion in the presence or absence of trypsin |
Xia |
2020 |
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Characterization of spike glycoprotein of SARS‐CoV‐2 on virus entry and its immune cross‐reactivity with SARS‐CoV |
Ou |
2020 |
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TMPRSS11D and TMPRSS13 activate the SARS‐CoV‐2 Spike protein |
Kishimoto |
2021 |
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Role of proteases in the release of porcine epidemic diarrhea virus from infected cells |
Shirato |
2011 |
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Optimized libraries for CRISPR‐Cas9 genetic screens with multiple modalities |
Sanson |
2018 |
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Identification of antinorovirus genes in human cells using genome‐Wide CRISPR activation screening |
Orchard |
2018 |
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Monitoring fusion kinetics of viral and target cell membranes in living cells using a SARS‐CoV‐2 spike‐protein‐mediated membrane fusion assay |
Nasser |
2022 |
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TMPRSS2 and MSPL facilitate Trypsin‐Independent porcine epidemic diarrhea virus replication in vero cells |
Shi |
2017 |
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Evidence that TMPRSS2 activates the severe acute respiratory syndrome coronavirus spike protein for membrane fusion and reduces viral control by the humoral immune response |
Glowacka |
2011 |
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Catalytic cleavage of the androgen‐regulated TMPRSS2 protease results in its secretion by prostate and prostate cancer epithelia |
Afar |
2001 |
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Ready, set, fuse! The coronavirus spike protein and acquisition of fusion competence |
Heald‐Sargent |
2012 |
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TMPRSS2 and furin are both essential for proteolytic activation of SARS‐CoV‐2 in human airway cells |
Bestle |
2020 |
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Spike protein mediated membrane fusion during SARS‐CoV‐2 infection |
Li |
2023 |
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Bat‐origin coronaviruses expand their host range to pigs |
Wang |
2018 |
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Swine acute diarrhea syndrome coronavirus replication in primary human cells reveals potential susceptibility to infection |
Edwards |
2020 |
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Significant inhibition of re‐emerged and emerging swine enteric coronavirus in vitro using the multiple shRNA expression vector |
Li |
2019 |
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Airway proteases: an emerging drug target for influenza and other respiratory virus infections |
Laporte |
2017 |
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Matriptase, HAT, and TMPRSS2 activate the hemagglutinin of H9N2 influenza A viruses |
Baron |
2013 |
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MSPL/TMPRSS13 |
Kido |
2008 |
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Furin cleavage is required for swine acute diarrhea syndrome coronavirus spike protein‐mediated cell ‐ cell fusion |
Kim |
2022 |
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Cryo‐EM structures of HKU2 and SADS‐CoV spike glycoproteins provide insights into coronavirus evolution |
Yu |
2020 |
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The spike glycoprotein of the new coronavirus 2019‐nCoV contains a furin‐like cleavage site absent in CoV of the same clade |
Coutard |
2020 |
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Functional analysis of potential cleavage sites in the MERS‐coronavirus spike protein |
Kleine‐Weber |
2018 |