Real-world patient data on immunity and COVID-19 status of patients with MPS, Gaucher, and Pompe diseases from Turkey.
Autoimmunity
COVID-19
Gaucher
Immunodeficiency
MPS
Pompe
Journal
Archives de pediatrie : organe officiel de la Societe francaise de pediatrie
ISSN: 1769-664X
Titre abrégé: Arch Pediatr
Pays: France
ID NLM: 9421356
Informations de publication
Date de publication:
Aug 2022
Aug 2022
Historique:
received:
05
10
2021
revised:
24
12
2021
accepted:
12
05
2022
pubmed:
16
6
2022
medline:
29
7
2022
entrez:
15
6
2022
Statut:
ppublish
Résumé
COVID-19 and lysosomal storage disorders (LSDs) share a common immunological pathway as they cause the release of cytokines in a similar pattern. We aimed to evaluate the immunity status and reveal the course of COVID-19 in patients with LSDs. The median age of 110 patients with LSDs was 129 months (range: 21-655), and all but one patient with mucopolysaccharidosis (MPS) type III were regularly receiving enzyme replacement therapy (ERT). In 53.6% (n = 56) of the patients (23 patients with Gaucher disease [10 type III, 13 type I], 26 patients with MPS [8 type VI, 11 type IVA, 1 type III, 3 type II, and 3 type I], and 7 patients with Pompe disease), an abnormality in at least one of the autoimmunity or immunodeficiency parameters was reported. Furthermore, 12 (57%) of 21 Gaucher cases (7 type III, 5 type I), 18 (40.9%) of 44 MPS cases (9 type IVA, 5 type VI, 1 type I, 2 type II, and 1 type III), and six (66%) of nine Pompe cases were reported to involve abnormalities in at least one of the parameters related to immunodeficiency. Immunoglobulin (Ig) M and IgA levels were reported to be lower, and there were abnormalities in the lymphocyte counts and subgroups in the MPS group. ANA was reported to be positive in one patient with Gaucher type III, anti-DNA in two patients with Gaucher type I and one patient with MPS type VI, antithyroglobulin in two patients with Gaucher type I, anti-TPO in one patient with Gaucher type I, TRAB in one patient with Gaucher type I, antiphospholipid IgM in three patients with Gaucher type III and one patient with Gaucher type I, anticardiolipin IgM in one patient with Gaucher type I, one patient with Gaucher type III, and one patient with MPS type II. However, no clinical presentation was consistent with the laboratory results except for one patient with Gaucher type I disease with Hashimoto thyroiditis. Two of the four patients who survived the COVID-19 infection with mild symptoms had a diagnosis of Gaucher type I, and no abnormality was detected in their laboratory tests. The other two patients had a diagnosis of MPS types VI and II. Immune dysfunction was detected in the patient with a diagnosis of MPS type II. Four of our patients were discharged without any sequelae. Problems with immunity did not cause any noticeable clinical results. Being well protected by reducing social contact might have played a role. However, we believe that it should be borne in mind that cardiac and pulmonary involvement, as well as immune dysfunction in LSDs, may cause an increased need for intensive care because of secondary bacterial infections.
Sections du résumé
BACKGROUND
BACKGROUND
COVID-19 and lysosomal storage disorders (LSDs) share a common immunological pathway as they cause the release of cytokines in a similar pattern. We aimed to evaluate the immunity status and reveal the course of COVID-19 in patients with LSDs.
RESULTS
RESULTS
The median age of 110 patients with LSDs was 129 months (range: 21-655), and all but one patient with mucopolysaccharidosis (MPS) type III were regularly receiving enzyme replacement therapy (ERT). In 53.6% (n = 56) of the patients (23 patients with Gaucher disease [10 type III, 13 type I], 26 patients with MPS [8 type VI, 11 type IVA, 1 type III, 3 type II, and 3 type I], and 7 patients with Pompe disease), an abnormality in at least one of the autoimmunity or immunodeficiency parameters was reported. Furthermore, 12 (57%) of 21 Gaucher cases (7 type III, 5 type I), 18 (40.9%) of 44 MPS cases (9 type IVA, 5 type VI, 1 type I, 2 type II, and 1 type III), and six (66%) of nine Pompe cases were reported to involve abnormalities in at least one of the parameters related to immunodeficiency. Immunoglobulin (Ig) M and IgA levels were reported to be lower, and there were abnormalities in the lymphocyte counts and subgroups in the MPS group. ANA was reported to be positive in one patient with Gaucher type III, anti-DNA in two patients with Gaucher type I and one patient with MPS type VI, antithyroglobulin in two patients with Gaucher type I, anti-TPO in one patient with Gaucher type I, TRAB in one patient with Gaucher type I, antiphospholipid IgM in three patients with Gaucher type III and one patient with Gaucher type I, anticardiolipin IgM in one patient with Gaucher type I, one patient with Gaucher type III, and one patient with MPS type II. However, no clinical presentation was consistent with the laboratory results except for one patient with Gaucher type I disease with Hashimoto thyroiditis. Two of the four patients who survived the COVID-19 infection with mild symptoms had a diagnosis of Gaucher type I, and no abnormality was detected in their laboratory tests. The other two patients had a diagnosis of MPS types VI and II. Immune dysfunction was detected in the patient with a diagnosis of MPS type II. Four of our patients were discharged without any sequelae.
CONCLUSION
CONCLUSIONS
Problems with immunity did not cause any noticeable clinical results. Being well protected by reducing social contact might have played a role. However, we believe that it should be borne in mind that cardiac and pulmonary involvement, as well as immune dysfunction in LSDs, may cause an increased need for intensive care because of secondary bacterial infections.
Identifiants
pubmed: 35705384
pii: S0929-693X(22)00121-X
doi: 10.1016/j.arcped.2022.05.003
pmc: PMC9125140
pii:
doi:
Substances chimiques
Immunoglobulin M
0
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
415-423Informations de copyright
Copyright © 2022 French Society of Pediatrics. Published by Elsevier Masson SAS. All rights reserved.
Déclaration de conflit d'intérêts
Declaration of Competing Interest No conflict of interest was declared by the authors.
Références
Lancet Respir Med. 2020 Apr;8(4):420-422
pubmed: 32085846
Cell. 2021 Jan 7;184(1):106-119.e14
pubmed: 33333024
Clin Transl Sci. 2020 Nov;13(6):1077-1086
pubmed: 32315487
Ann Neurol. 2004 Nov;56(5):642-9
pubmed: 15505823
Mol Ther Methods Clin Dev. 2016 Jan 27;3:15053
pubmed: 26858964
Blood Cells Mol Dis. 2020 Nov;85:102478
pubmed: 32688219
Intern Med J. 2020 Jul;50(7):894-895
pubmed: 32656977
Lancet Child Adolesc Health. 2020 Jun;4(6):414-416
pubmed: 32458804
Clin Chem Lab Med. 2020 Jun 25;58(7):1135-1138
pubmed: 32172227
Neurobiol Dis. 2009 Nov;36(2):242-51
pubmed: 19632328
Aging Cell. 2016 Feb;15(1):77-88
pubmed: 26486234
Autophagy. 2012 May 1;8(5):719-30
pubmed: 22647656
Am J Hematol. 1988 Dec;29(4):189-94
pubmed: 3263798
Neuropathol Appl Neurobiol. 2015 Aug;41(5):672-5
pubmed: 25559662
J Infect Dis. 2004 Jul 15;190(2):379-86
pubmed: 15216476
Lancet. 2020 Mar 28;395(10229):1054-1062
pubmed: 32171076
Nat Commun. 2021 Feb 11;12(1):961
pubmed: 33574281
J Clin Invest. 2004 Jan;113(2):200-8
pubmed: 14722612
Blood Cells Mol Dis. 2018 Feb;68:200-202
pubmed: 28029576
J Clin Immunol. 1995 Nov;15(6):363-72
pubmed: 8576322
Turk J Med Sci. 2019 Apr 18;49(2):497-505
pubmed: 30997788
PLoS One. 2019 Jan 11;14(1):e0210617
pubmed: 30633777
Mol Genet Metab. 2021 Jan;132(1):44-48
pubmed: 33353808
N Engl J Med. 2020 Apr 23;382(17):1663-1665
pubmed: 32187458
Liver Transpl. 2020 Jun;26(6):832-834
pubmed: 32196933
Lancet Infect Dis. 2018 Aug;18(8):e217-e227
pubmed: 29680581
Ital J Pediatr. 2018 Nov 16;44(Suppl 2):120
pubmed: 30442189
Hum Mol Genet. 2016 Aug 15;25(16):3432-3445
pubmed: 27378698
Cell. 2021 Jan 7;184(1):92-105.e16
pubmed: 33147445
Proc Natl Acad Sci U S A. 1993 Jun 15;90(12):5384-90
pubmed: 8516282
Lancet. 1995 Oct 14;346(8981):1000-3
pubmed: 7475546
Mol Genet Metab. 2020 Jul;130(3):164-169
pubmed: 32471800
J Neurochem. 2019 Mar;148(5):639-651
pubmed: 30451296
Am J Hematol. 2015 Jul;90 Suppl 1:S25-8
pubmed: 26096744
J Biol Chem. 2010 Jul 2;285(27):20423-7
pubmed: 20430897
J Infect. 2020 Jul;81(1):e61-e66
pubmed: 32335173
Turk J Med Sci. 2020 Apr 17;50(SI-1):620-632
pubmed: 32299202
Front Biosci (Landmark Ed). 2017 Mar 1;22(8):1344-1354
pubmed: 28199206
Clin Immunol. 2014 Oct;154(2):100-4
pubmed: 25038527
J Lipid Res. 2020 Jul;61(7):972-982
pubmed: 32457038
Nat Rev Dis Primers. 2018 Oct 1;4(1):27
pubmed: 30275469
Lancet. 2020 Jun 6;395(10239):1741-1743
pubmed: 32410759