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Cytokine storm–based mechanisms for extrapulmonary manifestations of SARS-CoV-2 infection
Maria Del Nogal Avila, Ranjan Das, Joubert Kharlyngdoh, Eduardo Molina-Jijon, Hector Donoro Blazquez, Stéphanie Gambut, Michael Crowley, David K. Crossman, Rasheed A. Gbadegesin, Sunveer S. Chugh, Sunjeet S. Chugh, Carmen Avila-Casado, Camille Macé, Lionel C. Clement, Sumant S. Chugh
Maria Del Nogal Avila, Ranjan Das, Joubert Kharlyngdoh, Eduardo Molina-Jijon, Hector Donoro Blazquez, Stéphanie Gambut, Michael Crowley, David K. Crossman, Rasheed A. Gbadegesin, Sunveer S. Chugh, Sunjeet S. Chugh, Carmen Avila-Casado, Camille Macé, Lionel C. Clement, Sumant S. Chugh
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Research Article Nephrology

Cytokine storm–based mechanisms for extrapulmonary manifestations of SARS-CoV-2 infection

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Abstract

Viral illnesses like SARS-CoV-2 have pathologic effects on nonrespiratory organs in the absence of direct viral infection. We injected mice with cocktails of rodent equivalents of human cytokine storms resulting from SARS-CoV-2/COVID-19 or rhinovirus common cold infection. At low doses, COVID-19 cocktails induced glomerular injury and albuminuria in zinc fingers and homeoboxes 2 (Zhx2) hypomorph and Zhx2+/+ mice to mimic COVID-19–related proteinuria. Common Cold cocktail induced albuminuria selectively in Zhx2 hypomorph mice to model relapse of minimal change disease, which improved after depletion of TNF-α, soluble IL-4Rα, or IL-6. The Zhx2 hypomorph state increased cell membrane to nuclear migration of podocyte ZHX proteins in vivo (both cocktails) and lowered phosphorylated STAT6 activation (COVID-19 cocktail) in vitro. At higher doses, COVID-19 cocktails induced acute heart injury, myocarditis, pericarditis, acute liver injury, acute kidney injury, and high mortality in Zhx2+/+ mice, whereas Zhx2 hypomorph mice were relatively protected, due in part to early, asynchronous activation of STAT5 and STAT6 pathways in these organs. Dual depletion of cytokine combinations of TNF-α with IL-2, IL-13, or IL-4 in Zhx2+/+ mice reduced multiorgan injury and eliminated mortality. Using genome sequencing and CRISPR/Cas9, an insertion upstream of ZHX2 was identified as a cause of the human ZHX2 hypomorph state.

Authors

Maria Del Nogal Avila, Ranjan Das, Joubert Kharlyngdoh, Eduardo Molina-Jijon, Hector Donoro Blazquez, Stéphanie Gambut, Michael Crowley, David K. Crossman, Rasheed A. Gbadegesin, Sunveer S. Chugh, Sunjeet S. Chugh, Carmen Avila-Casado, Camille Macé, Lionel C. Clement, Sumant S. Chugh

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Figure 6

Insertions and deletions in noncoding DNA affect ZHX2 expression in patients with glomerular disease.

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Insertions and deletions in noncoding DNA affect ZHX2 expression in pati...
(A) Schematic representation of ZHX2 and neighboring genes on chromosome 8. CG, collapsing glomerulopathy. (B) Mapping of shared insertions and deletions (InDels) among patients with MCD (n = 9 patients), FSGS (n = 19 patients), and COVID-19–related FSGS collapsing variant (n = 8 patients). The most common shared insertion at 122,533,694 bp could be mapped at or near the theoretical beginning of the rodent-expressed gene Slc22a22, defunct in humans. Another shared insertion at 122,293,423 was located near the theoretical end of Slc22a22. None of these InDels were noted in controls (n = 33) or the 1000 Genomes Project (n = 2,504 participants). Ex, exon. (C) Schematic representation of CRISPR/Cas9-assisted genome-edited clones of a single cell–derived cultured human podocyte cell line that contain an 8 bp insertion common between patients and a control participant (CRISPR A), or a 10 bp shared insertion at 122,533,694 that was absent in controls and the 1000 Genomes Project (CRISPR B). (D) Fold-change ZHX2 mRNA expression in genome-modified clones (CRISPR A, 3 clones, data pooled n = 14 templates; study CRISPR B, 2 clones, n = 7 templates/clone) compared with the parent single cell–derived cultured human podocyte cell line (dotted line). Data represent mean ± SEM. (E) Western blot comparing ZHX2 expression in the control single cell–derived parent cell line and 1 of 2 mutant clones with insertion at 122,533,694. Numbers on left represent kilodaltons. ** P < 0.01; **** P < 0.0001, determined by 1-way ANOVA (Dunnett).

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