Immunogenetic Predisposition to SARS-CoV-2 Infection

被引:11
|
作者
Lehmann, Claudia [1 ]
Loeffler-Wirth, Henry [2 ]
Balz, Vera [3 ]
Enczmann, Juergen [3 ]
Landgraf, Ramona [1 ]
Lakowa, Nicole [4 ]
Gruenewald, Thomas [4 ]
Fischer, Johannes C. C. [3 ]
Doxiadis, Ilias [1 ]
机构
[1] Univ Hosp Leipzig, Lab Transplantat Immunol, Johannisallee 32, D-04103 Leipzig, Germany
[2] Univ Leipzig, Interdisciplinary Ctr Bioinformat, IZBI, Haertelstr 16-18, D-04107 Leipzig, Germany
[3] Univ Hosp Duesseldorf, Inst Transplantat Diagnost & Cell Therapeut, HLA Lab, ITZ, Moorenstr 5, D-40225 Dusseldorf, Germany
[4] Clin Infect Dis & Trop Med, Flemmingstr 2, D-09116 Chemnitz, Germany
来源
BIOLOGY-BASEL | 2023年 / 12卷 / 01期
关键词
COVID-19; classical HLA; non-classical HLA; MHC; HPA; blood groups; SARS-CoV-2; immunogenetics; HLA; HOMOZYGOSITY; BLOOD; RISK; RESPONSES; COVID-19; TARGETS;
D O I
10.3390/biology12010037
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Simple Summary Since the beginning of the SARS-CoV-2 pandemic in 2020, numerous data with respect to the influence of immunogenetics on the predisposition to and severity of infection have been reported worldwide (PubMed; n = 228; 6 November 2022). Immunogenetics play a pivotal role in infection, vaccination, its failures, and/or vaccination breakthrough. Factors including the major histocompatibility complex and the common ABO blood group system have been discussed. Herein, we describe the association of HLA-A, B, C, DRB1, DRB345, DQA1, DQB1, DPA1, DPB1, and HLA-E, F, G, and H on the results of molecular detection of COVID-19, or, in some cases, on antibody detection upon first testing. Furthermore, we molecularly defined 22 blood group systems comprising 26 genes and 5 platelet antigen genes. Herein, 37% tested COVID-19 negative while 63% tested positive by PCR. Within the negative subjects, HLA-B*57:01, HLA-B*55:01, DRB1*13:01, and DRB1*01:01, were enriched, and in the positive group, homozygosity for DQA/DQB, DRB1*09:01, and DRB1*15:01 was observed. For HLA-DQA1, we observed an enrichment for DQA1*01:01, DQA1*02:01, and DQA1*01:03. For HLA-DQB1, we found that HLA-DQB1*06:02 was enriched in the positive group, while HLA-DQB1*05:01 and HLA-DQB1*06:03 were enriched in the negative group. The homozygous platelet antigen HPA-1a was significantly enriched in the negative group, contrasting with the HPA-1ab, which was enriched in the COVID-19 infected group. Herein, we included 527 individuals from two Hospitals, Chemnitz and University-Hospital Leipzig. In total, 199 were negative for PCR and 328 were positive upon first admission. We used next generation sequencing for HLA-A, B, C, DRB1, DRB345, DQA1, DQB1, DPA1, and DPB1, and in some cases, HLA-E, F, G, and H. Furthermore, we molecularly defined 22 blood group systems comprising 26 genes and 5 platelet antigen genes. We observed a significant enrichment of homozygosity for DQA/DQB in the positive group. Within the negative subjects, HLA-B*57:01, HLA-B*55:01, DRB1*13:01, and DRB1*01:01 were enriched, and in the positive group, homozygosity for DQA/DQB, DRB1*09:01, and DRB1*15:01 was observed. DQA1*01:01, DQA1*02:01, and DQA1*01:03 were enriched in the negative group. HLA-DQB1*06:02 was enriched in the positive group, and HLA-DQB1*05:01 and HLA-DQB1*06:03 were enriched in the negative group. For the blood group systems MNS, RH, LE, FY, JK, YT, DO, and KN, enrichment was seen in both groups, depending on the antigen under observation. Homozygosity for D-positive RHD alleles, as well as the phenotypes M-N+ of the MNS blood group system and Yk(a-) of the KN system, were enriched in the positive group. All of these significances disappeared upon correction. Subjects who carried homozygous HPA-1a were more frequent in the negative group, contrasting with the finding that HPA-1ab was enriched in the positive group.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Persistent cellular immunity to SARS-CoV-2 infection
    Breton, Gaelle
    Mendoza, Pilar
    Hagglof, Thomas
    Oliveira, Thiago Y.
    Schaefer-Babajew, Dennis
    Gaebler, Christian
    Turroja, Martina
    Hurley, Arlene
    Caskey, Marina
    Nussenzweig, Michel C.
    JOURNAL OF EXPERIMENTAL MEDICINE, 2021, 218 (04)
  • [32] Determining the relationship between SARS-CoV-2 infection
    Khalefah, Muad M.
    Khalifah, Ayman M.
    JOURNAL OF TAIBAH UNIVERSITY MEDICAL SCIENCES, 2020, 15 (06): : 550 - 553
  • [33] Current HLA Investigations on SARS-CoV-2 and Perspectives
    Douillard, Venceslas
    Castelli, Erick C.
    Mack, Steven J.
    Hollenbach, Jill A.
    Gourraud, Pierre-Antoine
    Vince, Nicolas
    Limou, Sophie
    FRONTIERS IN GENETICS, 2021, 12
  • [34] Incidence of Cerebral Venous Thrombosis Following SARS-CoV-2 Infection vs mRNA SARS-CoV-2 Vaccination in Singapore
    Tu, Tian Ming
    Yi, Shen Jia
    Koh, Jasmine Shimin
    Saffari, Seyed Ehsan
    Hoe, Rebecca Hui Min
    Chen, Geraldine Jiangyan
    Chiew, Hui Jin
    Tham, Carol Huilian
    Seet, Christopher Ying Hao
    Yong, Ming Hui
    Yong, Kok Pin
    Hui, Andrew Che-Fai
    Fan, Bingwen Eugene
    Tan, Benjamin Yong-Qiang
    Quek, Amy May Lin
    Seet, Raymond Chee Seong
    Yeo, Leonard Leong Litt
    Tan, Kevin
    Thirugnanam, Umapathi N.
    JAMA NETWORK OPEN, 2022, 5 (03)
  • [35] Selective functional antibody transfer into the breastmilk after SARS-CoV-2 infection
    Pullen, Krista M.
    Atyeo, Caroline
    Collier, Ai-Ris Y.
    Gray, Kathryn J.
    Belfort, Mandy B.
    Lauffenburger, Douglas A.
    Edlow, Andrea G.
    Alter, Galit
    CELL REPORTS, 2021, 37 (06):
  • [36] Evaluation of SARS-CoV-2 diagnostics and risk factors associated with SARS-CoV-2 infection in Zambia
    Tembo, John
    Egbe, Nkongho Franklyn
    Maluzi, Kwitaka
    Mulonga, Kangwa
    Chilufya, Moses
    Kapata, Nathan
    Mukonka, Victor
    Simulundu, Edgar
    Zumla, Alimuddin
    Fwoloshi, Sombo
    Mulenga, Lloyd
    Pallerla, Srinivas Reddy
    Velavan, Thirumalaisamy P.
    Bates, Matthew
    INTERNATIONAL JOURNAL OF INFECTIOUS DISEASES, 2022, 120 : 150 - 157
  • [37] COVID-19 Predisposition Inherently Increases Cardiovascular Risk Before SARS-CoV-2 Infection
    Ming Zheng
    Cardiovascular Toxicology, 2025, 25 (6) : 821 - 829
  • [38] Evaluation of the EasyNAT SARS-CoV-2 assay PCR test for the diagnosis of SARS-CoV-2 infection
    Fernandez-Sanchez, Fernando
    Martin-Bautista, Elena
    Rivas-Ruiz, Francisco
    Wu, Winnie
    Garcia-Aranda, Marilina
    JOURNAL OF VIROLOGICAL METHODS, 2024, 326
  • [39] The Therapy of SARS-CoV-2 Infection in Children
    Edwards, Kathryn M.
    JOURNAL OF CLINICAL MEDICINE, 2024, 13 (01)
  • [40] Implications of SARS-CoV-2 infection for neurogastroenterology
    Marasco, Giovanni
    Lenti, Marco Vincenzo
    Cremon, Cesare
    Barbaro, Maria Raffaella
    Stanghellini, Vincenzo
    Di Sabatino, Antonio
    Barbara, Giovanni
    NEUROGASTROENTEROLOGY AND MOTILITY, 2021, 33 (03)