Structural characteristics of measles virus entry
Tài liệu tham khảo
Patel, 2019, Progress toward regional measles elimination — worldwide, 2000–2018, Morb Mortal Wkly Rep, 68, 1105, 10.15585/mmwr.mm6848a1
Leong, 2019, Measles resurgence in Europe: migrants and travellers are not the main drivers, J Epidemiol Glob Health, 9, 294, 10.2991/jegh.k.191007.001
Samaraweera, 2020, The laboratory investigation of a measles outbreak in the eve of its elimination in Sri Lanka, J Clin Virol, 122, 10.1016/j.jcv.2019.104230
Champredon, 2020, Curbing the 2019 Samoa measles outbreak, Lancet Infect Dis, 20, 287, 10.1016/S1473-3099(20)30044-X
El Zarif, 2020, Measles and mumps outbreaks in Lebanon: trends and links, BMC Infect Dis, 20, 244, 10.1186/s12879-020-04956-1
Benecke, 2019, Anti-vaccine decision-making and measles resurgence in the United States, Glob Pediatr Health, 6
World Health Organization, 2015, Genetic diversity of wild-type measles viruses and the global measles nucleotide surveillance database (MeaNS), Wkly Epidemiol Rec, 90, 373
Brown, 2019, Genetic characterization of measles and rubella viruses detected through global measles and rubella elimination surveillance, 2016-2018, MMWR Morb Mortal Wkly Rep Dis, 68, 587, 10.15585/mmwr.mm6826a3
Ackley, 2018, Genotype-specific measles transmissibility: a branching process analysis, Clin Infect Dis, 66, 1270, 10.1093/cid/cix974
Ciceri, 2019, Genetic variability of the measles virus hemagglutinin gene in B3 genotype strains circulating in Northern Italy, Infect Genet Evol, 75, 10.1016/j.meegid.2019.103943
Le, 2017, Reemergence of measles in the Americas: the genotype B3 2011–2012 outbreak in Ecuador, Vaccines, 5, 15, 10.3390/vaccines5020015
Shorunke, 2019, Descriptive epidemiology of measles surveillance data, Osun state, Nigeria, 2016–2018, BMC Public Health, 19, 1636, 10.1186/s12889-019-8012-6
Seki, 2019, Nationwide molecular epidemiology of measles virus in Japan between 2008 and 2017, Front Microbiol, 10, 1470, 10.3389/fmicb.2019.01470
Tatsuo, 2000, SLAM (CDw150) is a cellular receptor for measles virus, Nature, 406, 893, 10.1038/35022579
Yanagi, 2009, Measles virus receptors, Curr Top Microbiol Immunol, 329, 13
Noyce, 2011, Tumor cell marker PVRL4 (nectin 4) is an epithelial cell receptor for measles virus, PLoS Pathog, 7, 10.1371/journal.ppat.1002240
Mühlebach, 2011, Adherens junction protein nectin-4 is the epithelial receptor for measles virus, Nature, 480, 530, 10.1038/nature10639
Lemon, 2011, Early target cells of measles virus after aerosol infection of non-human primates, PLoS Pathog, 7, 10.1371/journal.ppat.1001263
Noyce, 2012, Nectin 4 is the epithelial cell receptor for measles virus, Trends Microbiol, 20, 429, 10.1016/j.tim.2012.05.006
Leonard, 2008, Measles virus blind to its epithelial cell receptor remains virulent in rhesus monkeys but cannot cross the airway epithelium and is not shed, J Clin Invest, 118, 2448
Sato, 2018, Cell-to-cell measles virus spread between human neurons is dependent on hemagglutinin and hyperfusogenic fusion protein, J Virol, 92, 1, 10.1128/JVI.02166-17
McQuaid, 2002, An immunohistochemical study of the distribution of the measles virus receptors, CD46 and SLAM, in normal human tissues and subacute sclerosing panencephalitis, Lab Invest, 82, 403, 10.1038/labinvest.3780434
Watanabe, 2013, Mutant fusion proteins with enhanced fusion activity promote measles virus spread in human neuronal cells and brains of suckling hamsters, J Virol, 87, 2648, 10.1128/JVI.02632-12
Alves, 2015, SLAM- and nectin-4-independent noncytolytic spread of canine distemper virus in astrocytes, J Virol, 89, 5724, 10.1128/JVI.00004-15
Ferren, 2019, Measles encephalitis: towards new therapeutics, Viruses, 11, 1017, 10.3390/v11111017
Chernomordik, 2008, Mechanics of membrane fusion, Nat Struct Mol Biol, 15, 675, 10.1038/nsmb.1455
Plattet, 2016, Measles virus fusion protein: structure, function and inhibition, Viruses, 8, 112, 10.3390/v8040112
Watanabe, 2019, New insights into measles virus brain infections, Trends Microbiol, 27, 164, 10.1016/j.tim.2018.08.010
Navaratnarajah, 2020, Receptor-mediated cell entry of paramyxoviruses: mechanisms, and consequences for tropism and pathogenesis, J Biol Chem, 295, 2771, 10.1074/jbc.REV119.009961
Azam, 2020, Differential features of fusion activation within the Paramyxoviridae, Viruses, 12
Santiago, 2010, Structure of the measles virus hemagglutinin bound to the CD46 receptor, Nat Struct Mol Biol, 17, 124, 10.1038/nsmb.1726
Hashiguchi, 2011, Structure of the measles virus hemagglutinin bound to its cellular receptor SLAM, Nat Struct Mol Biol, 18, 135, 10.1038/nsmb.1969
Zhang, 2013, Structure of measles virus hemagglutinin bound to its epithelial receptor nectin-4, Nat Struct Mol Biol, 20, 67, 10.1038/nsmb.2432
Vongpunsawad, 2004, Selectively receptor-blind measles viruses: identification of residues necessary for SLAM- or CD46-induced fusion and their localization on a new hemagglutinin structural model, J Virol, 78, 302, 10.1128/JVI.78.1.302-313.2004
von Messling, 2005, Nearby clusters of hemagglutinin residues sustain SLAM-dependent canine distemper virus entry in peripheral blood mononuclear cells, J Virol, 79, 5857, 10.1128/JVI.79.9.5857-5862.2005
Navaratnarajah, 2008, Dynamic interaction of the measles virus hemagglutinin with its receptor signaling lymphocytic activation molecule (SLAM, CD150), J Biol Chem, 283, 11763, 10.1074/jbc.M800896200
Nakamura, 2005, Rescue and propagation of fully retargeted oncolytic measles viruses, Nat Biotechnol, 23, 209, 10.1038/nbt1060
Aref, 2016, Measles to the rescue: a review of oncolytic measles virus, Viruses, 8, 1, 10.3390/v8100294
Krabbe, 2018, Fusogenic viruses in oncolytic immunotherapy, Cancers (Basel), 10, 10.3390/cancers10070216
Tahara, 2013, The receptor-binding site of the measles virus hemagglutinin protein itself constitutes a conserved neutralizing epitope, J Virol, 87, 3583, 10.1128/JVI.03029-12
Tahara, 2016, Measles virus hemagglutinin protein epitopes: the basis of antigenic stability, Viruses, 8, 10.3390/v8080216
Finsterbusch, 2009, Measles viruses of genotype H1 evade recognition by vaccine-induced neutralizing antibodies targeting the linear haemagglutinin noose epitope, J Gen Virol, 90, 2739, 10.1099/vir.0.013524-0
Sommerstein, 2015, Arenavirus glycan shield promotes neutralizing antibody evasion and protracted infection, PLoS Pathog, 11, 10.1371/journal.ppat.1005276
Hashiguchi, 2007, Crystal structure of measles virus hemagglutinin provides insight into effective vaccines, Proc Natl Acad Sci U S A, 104, 19535, 10.1073/pnas.0707830104
Hu, 1994, Role of N-linked oligosaccharide chains in the processing and antigenicity of measles virus haemagglutinin protein, J Gen Virol, 75, 1043, 10.1099/0022-1317-75-5-1043
Hu, 1995, Influence of N-linked oligosaccharide chains on the processing, cell surface expression and function of the measles virus fusion protein, J Gen Virol, 76, 705, 10.1099/0022-1317-76-3-705
Watanabe, 1995, Engineered serine protease inhibitor prevents furin-catalyzed activation of the fusion glycoprotein and production of infectious measles virus, J Virol, 69, 3206, 10.1128/jvi.69.5.3206-3210.1995
Hashiguchi, 2018, Structures of the prefusion form of measles virus fusion protein in complex with inhibitors, Proc Natl Acad Sci U S A, 115, 2496, 10.1073/pnas.1718957115
Herren, 2018, Regulatory role of the morbillivirus attachment protein head-to-stalk linker module in membrane fusion triggering, J Virol, 92, 10.1128/JVI.00679-18
Gui, 2015, Electron tomography imaging of surface glycoproteins on human parainfluenza virus 3: association of receptor binding and fusion proteins before receptor engagement, mBio, 6, e02393, 10.1128/mBio.02393-14
Ke, 2018, Promotion of virus assembly and organization by the measles virus matrix protein, Nat Commun, 9, 1736, 10.1038/s41467-018-04058-2
Gilman, 2019, Transient opening of trimeric prefusion RSV F proteins, Nat Commun, 10, 2105, 10.1038/s41467-019-09807-5
Plemper, 2005, Design of a small-molecule entry inhibitor with activity against primary measles virus strains, Antimicrob Agents Chemother, 49, 3755, 10.1128/AAC.49.9.3755-3761.2005
Doyle, 2006, Two domains that control prefusion stability and transport competence of the measles virus fusion protein, J Virol, 80, 1524, 10.1128/JVI.80.3.1524-1536.2006
Jurgens, 2015, Measles fusion machinery is dysregulated in neuropathogenic variants, mBio, 6, 10.1128/mBio.02528-14
Ha, 2017, Mutations in the fusion protein of measles virus that confer resistance to the membrane fusion inhibitors carbobenzoxy-D-Phe-L-Phe-Gly and AS-48, J Virol, 91, e01026, 10.1128/JVI.01026-17
Shirogane, 2020, Weak cis and trans interactions of the hemagglutinin with receptors trigger fusion proteins of neuropathogenic measles virus isolates, J Virol, 94, 10.1128/JVI.01727-19
Krumm, 2014, An orally available, small-molecule polymerase inhibitor shows efficacy against a lethal morbillivirus infection in a large animal model, Sci Transl Med, 6, 10.1126/scitranslmed.3008517