Genetic association of IL17 and the importance of ABO blood group antigens in saliva to COVID-19
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K. Tokunaga | M. Sugiyama | M. Mizokami | J. Ohashi | I. Naka | N. Ohmagari | Y. Kawai | N. Nishida | S. Izumi | M. Hojo | Tetsuya Suzuki | Y. Miyazato | Noriko Iwamoto | Satoshi Suzuki | T. Tsuchiura | Michiyo Suzuki | Satoshi Suzuki | Miyuki Ishikawa
[1] Ruth I. Tennen,et al. Trans-ancestry analysis reveals genetic and nongenetic associations with COVID-19 susceptibility and severity , 2021, Nature Genetics.
[2] M. Saito,et al. Association of HLA‐DRB1*09:01 with severe COVID‐19 , 2021, Hla.
[3] Daniel S. Chertow,et al. SARS-CoV-2 infection of the oral cavity and saliva , 2021, Nature Medicine.
[4] Ira M. Hall,et al. High-coverage whole-genome sequencing of the expanded 1000 Genomes Project cohort including 602 trios , 2021, Cell.
[5] S. Suzuki,et al. HLA-A*11:01:01:01, HLA-C*12:02:02:01-HLA-B*52:01:02:02, Age and Sex Are Associated With Severity of Japanese COVID-19 With Respiratory Failure , 2021, Frontiers in Immunology.
[6] L. Wain,et al. Shared genetic etiology between idiopathic pulmonary fibrosis and COVID-19 severity , 2020, EBioMedicine.
[7] A. Wu,et al. Association of HLA‐B22 serotype with SARS‐CoV‐2 susceptibility in Hong Kong Chinese patients , 2020, HLA.
[8] Huanming Yang,et al. Initial whole-genome sequencing and analysis of the host genetic contribution to COVID-19 severity and susceptibility , 2020, Cell discovery.
[9] Barbara B. Shih,et al. Genetic mechanisms of critical illness in COVID-19 , 2020, Nature.
[10] S. Pääbo,et al. The major genetic risk factor for severe COVID-19 is inherited from Neanderthals , 2020, bioRxiv.
[11] M. Strivens,et al. Analysis of Genetic Host Response Risk Factors in Severe COVID-19 Patients , 2020, medRxiv.
[12] J. Erdmann,et al. Genomewide Association Study of Severe Covid-19 with Respiratory Failure , 2020, The New England journal of medicine.
[13] Ji He,et al. Distribution of HLA allele frequencies in 82 Chinese individuals with coronavirus disease‐2019 (COVID‐19) , 2020, HLA.
[14] The COVID-19 Host Genetics Initiative, a global initiative to elucidate the role of host genetic factors in susceptibility and severity of the SARS-CoV-2 virus pandemic , 2020, European Journal of Human Genetics.
[15] Swapan Mallick,et al. Insights into human genetic variation and population history from 929 diverse genomes , 2019, Science.
[16] Brian L Browning,et al. A One-Penny Imputed Genome from Next-Generation Reference Panels. , 2018, American journal of human genetics.
[17] D. Posthuma,et al. Functional mapping and annotation of genetic associations with FUMA , 2017, Nature Communications.
[18] Yun Sung Cho,et al. KoVariome: Korean National Standard Reference Variome database of whole genomes with comprehensive SNV, indel, CNV, and SV analyses , 2017, bioRxiv.
[19] Yun S. Song,et al. The Simons Genome Diversity Project: 300 genomes from 142 diverse populations , 2016, Nature.
[20] J. Yasuda,et al. Japonica array: improved genotype imputation by designing a population-specific SNP array with 1070 Japanese individuals , 2015, Journal of Human Genetics.
[21] N. García-Magallanes,et al. Th17 Cells in Autoimmune and Infectious Diseases , 2014, International journal of inflammation.
[22] C. Sasakawa,et al. Differential roles of interleukin-17A and -17F in host defense against mucoepithelial bacterial infection and allergic responses. , 2009, Immunity.
[23] J. Kolls,et al. Interleukin-17A and interleukin-17F: a tale of two cytokines. , 2009, Immunity.
[24] Xi Jiang,et al. Human susceptibility and resistance to Norwalk virus infection , 2003, Nature Medicine.
[25] T. Ando,et al. Molecular Genetic Analysis of the Human Lewis Histo-blood Group System , 1994, The Journal of Biological Chemistry.
[26] R. Oriol,et al. A new genetic model proposing that the Se gene is a structural gene closely linked to the H gene. , 1981, American journal of human genetics.