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Genetic mechanisms of critical illness in COVID-19

Academic Article
Publication Date:
2021
Abstract:
Host-mediated lung inflammation is present1, and drives mortality2, in the critical illness caused by coronavirus disease 2019 (COVID-19). Host genetic variants associated with critical illness may identify mechanistic targets for therapeutic development3. Here we report the results of the GenOMICC (Genetics Of Mortality In Critical Care) genome-wide association study in 2,244 critically ill patients with COVID-19 from 208 UK intensive care units. We have identified and replicated the following new genome-wide significant associations: on chromosome 12q24.13 (rs10735079, P = 1.65 × 10-8) in a gene cluster that encodes antiviral restriction enzyme activators (OAS1, OAS2 and OAS3); on chromosome 19p13.2 (rs74956615, P = 2.3 × 10-8) near the gene that encodes tyrosine kinase 2 (TYK2); on chromosome 19p13.3 (rs2109069, P = 3.98 × 10-12) within the gene that encodes dipeptidyl peptidase 9 (DPP9); and on chromosome 21q22.1 (rs2236757, P = 4.99 × 10-8) in the interferon receptor gene IFNAR2. We identified potential targets for repurposing of licensed medications: using Mendelian randomization, we found evidence that low expression of IFNAR2, or high expression of TYK2, are associated with life-threatening disease; and transcriptome-wide association in lung tissue revealed that high expression of the monocyte-macrophage chemotactic receptor CCR2 is associated with severe COVID-19. Our results identify robust genetic signals relating to key host antiviral defence mechanisms and mediators of inflammatory organ damage in COVID-19. Both mechanisms may be amenable to targeted treatment with existing drugs. However, large-scale randomized clinical trials will be essential before any change to clinical practice.
CRIS type:
1.1 Articolo in rivista
Keywords:
2',5'-Oligoadenylate Synthetase; COVID-19; Chromosomes, Human, Pair 12; Chromosomes, Human, Pair 19; Chromosomes, Human, Pair 21; Critical Care; Dipeptidyl-Peptidases and Tripeptidyl-Peptidases; Drug Repositioning; Female; Genome-Wide Association Study; Humans; Inflammation; Lung; Male; Multigene Family; Receptor, Interferon alpha-beta; Receptors, CCR2; TYK2 Kinase; United Kingdom; Critical Illness
List of contributors:
Pairo-Castineira, E.; Clohisey, S.; Klaric, L.; Bretherick, A. D.; Rawlik, K.; Pasko, D.; Walker, S.; Parkinson, N.; Fourman, M. H.; Russell, C. D.; Furniss, J.; Richmond, A.; Gountouna, E.; Wrobel, N.; Harrison, D.; Wang, B.; Wu, Y.; Meynert, A.; Griffiths, F.; Oosthuyzen, W.; Kousathanas, A.; Moutsianas, L.; Yang, Z.; Zhai, R.; Zheng, C.; Grimes, G.; Beale, R.; Millar, J.; Shih, B.; Keating, S.; Zechner, M.; Haley, C.; Porteous, D. J.; Hayward, C.; Yang, J.; Knight, J.; Summers, C.; Shankar-Hari, M.; Klenerman, P.; Turtle, L.; Ho, A.; Moore, S. C.; Hinds, C.; Horby, P.; Nichol, A.; Maslove, D.; Ling, L.; Mcauley, D.; Montgomery, H.; Walsh, T.; Pereira, A. C.; Renieri, A.; Shen, X.; Ponting, C. P.; Fawkes, A.; Tenesa, A.; Caulfield, M.; Scott, R.; Rowan, K.; Murphy, L.; Openshaw, P. J. M.; Semple, M. G.; Law, A.; Vitart, V.; Wilson, J. F.; Baillie, J. K.; Zanella, I.; Quiros Roldan, E.; Castelli, F.
Authors of the University:
CASTELLI FRANCESCO
QUIROS ROLDAN MARIA EUGENIA
ZANELLA ISABELLA
Handle:
https://iris.unibs.it/handle/11379/544304
Full Text:
https://iris.unibs.it/retrieve/handle/11379/544304/143574/2021%20Genetic%20mechanisms%20of%20critical%20illness%20in%20COVID-19.pdf
Published in:
NATURE
Journal
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