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127


SARS-CoV-2 airway infection results in the development of somatosensory abnormalities in a hamster model

Serafini, Randal A; Frere, Justin J; Zimering, Jeffrey; Giosan, Ilinca M; Pryce, Kerri D; Golynker, Ilona; Panis, Maryline; Ruiz, Anne; tenOever, Benjamin R; Zachariou, Venetia
Although largely confined to the airways, SARS-CoV-2 infection has been associated with sensory abnormalities that manifest in both acute and chronic phenotypes. To gain insight on the molecular basis of these sensory abnormalities, we used the golden hamster model to characterize and compare the effects of infection with SARS-CoV-2 and influenza A virus (IAV) on the sensory nervous system. We detected SARS-CoV-2 transcripts but no infectious material in the cervical and thoracic spinal cord and dorsal root ganglia (DRGs) within the first 24 hours of intranasal virus infection. SARS-CoV-2-infected hamsters exhibited mechanical hypersensitivity that was milder but prolonged compared with that observed in IAV-infected hamsters. RNA sequencing analysis of thoracic DRGs 1 to 4 days after infection suggested perturbations in predominantly neuronal signaling in SARS-CoV-2-infected animals as opposed to type I interferon signaling in IAV-infected animals. Later, 31 days after infection, a neuropathic transcriptome emerged in thoracic DRGs from SARS-CoV-2-infected animals, which coincided with SARS-CoV-2-specific mechanical hypersensitivity. These data revealed potential targets for pain management, including the RNA binding protein ILF3, which was validated in murine pain models. This work elucidates transcriptomic signatures in the DRGs triggered by SARS-CoV-2 that may underlie both short- and long-term sensory abnormalities.
PMID: 37159520
ISSN: 1937-9145
CID: 5503322

Stress granules are shock absorbers that prevent excessive innate immune responses to dsRNA

Paget, Max; Cadena, Cristhian; Ahmad, Sadeem; Wang, Hai-Tao; Jordan, Tristan X; Kim, Ehyun; Koo, Beechui; Lyons, Shawn M; Ivanov, Pavel; tenOever, Benjamin; Mu, Xin; Hur, Sun
Proper defense against microbial infection depends on the controlled activation of the immune system. This is particularly important for the RIG-I-like receptors (RLRs), which recognize viral dsRNA and initiate antiviral innate immune responses with the potential of triggering systemic inflammation and immunopathology. Here, we show that stress granules (SGs), molecular condensates that form in response to various stresses including viral dsRNA, play key roles in the controlled activation of RLR signaling. Without the SG nucleators G3BP1/2 and UBAP2L, dsRNA triggers excessive inflammation and immune-mediated apoptosis. In addition to exogenous dsRNA, host-derived dsRNA generated in response to ADAR1 deficiency is also controlled by SG biology. Intriguingly, SGs can function beyond immune control by suppressing viral replication independently of the RLR pathway. These observations thus highlight the multi-functional nature of SGs as cellular "shock absorbers" that converge on protecting cell homeostasis by dampening both toxic immune response and viral replication.
PMID: 37028415
ISSN: 1097-4164
CID: 5463942

Innate immune evasion strategies of SARS-CoV-2

Minkoff, Judith M; tenOever, Benjamin
SARS-CoV-2, the virus responsible for the COVID-19 pandemic, has been associated with substantial global morbidity and mortality. Despite a tropism that is largely confined to the airways, COVID-19 is associated with multiorgan dysfunction and long-term cognitive pathologies. A major driver of this biology stems from the combined effects of virus-mediated interference with the host antiviral defences in infected cells and the sensing of pathogen-associated material by bystander cells. Such a dynamic results in delayed induction of type I and III interferons (IFN-I and IFN-III) at the site of infection, but systemic IFN-I and IFN-III priming in distal organs and barrier epithelial surfaces, respectively. In this Review, we examine the relationship between SARS-CoV-2 biology and the cellular response to infection, detailing how antagonism and dysregulation of host innate immune defences contribute to disease severity of COVID-19.
PMCID:9838430
PMID: 36631691
ISSN: 1740-1534
CID: 5431962

Sensing of SARS-CoV-2 by pDCs and their subsequent production of IFN-I contribute to macrophage-induced cytokine storm during COVID-19

Laurent, Paôline; Yang, Chao; Rendeiro, André F; Nilsson-Payant, Benjamin E; Carrau, Lucia; Chandar, Vasuretha; Bram, Yaron; tenOever, Benjamin R; Elemento, Olivier; Ivashkiv, Lionel B; Schwartz, Robert E; Barrat, Franck J
Lung-infiltrating macrophages create a marked inflammatory milieu in a subset of patients with COVID-19 by producing a cytokine storm, which correlates with increased lethality. However, these macrophages are largely not infected by SARS-CoV-2, so the mechanism underlying their activation in the lung is unclear. Type I interferons (IFN-I) contribute to protecting the host against SARS-CoV-2 but may also have some deleterious effect, and the source of IFN-I in the lungs of infected patients is not well defined. Plasmacytoid dendritic cells (pDCs), a key cell type involved in antiviral responses, can produce IFN-I in response to SARS-CoV-2. We observed the infiltration of pDCs in the lungs of SARS-CoV-2-infected patients, which correlated with strong IFN-I signaling in lung macrophages. In patients with severe COVID-19, lung macrophages expressed a robust inflammatory signature, which correlated with persistent IFN-I signaling at the single-cell level. Hence, we observed the uncoupling in the kinetics of the infiltration of pDCs in the lungs and the associated IFN-I signature, with the cytokine storm in macrophages. We observed that pDCs were the dominant IFN-α-producing cells in response to the virus in the blood, whereas macrophages produced IFN-α only when in physical contact with infected epithelial cells. We also showed that IFN-α produced by pDCs, after the sensing of SARS-CoV-2 by TLR7, mediated changes in macrophages at both transcriptional and epigenetic levels, which favored their hyperactivation by environmental stimuli. Together, these data indicate that the priming of macrophages can result from the response by pDCs to SARS-CoV-2, leading to macrophage activation in patients with severe COVID-19.
PMCID:9853436
PMID: 36083891
ISSN: 2470-9468
CID: 5868342

A human iPSC-array-based GWAS identifies a virus susceptibility locus in the NDUFA4 gene and functional variants

Han, Yuling; Tan, Lei; Zhou, Ting; Yang, Liuliu; Carrau, Lucia; Lacko, Lauretta A; Saeed, Mohsan; Zhu, Jiajun; Zhao, Zeping; Nilsson-Payant, Benjamin E; Lira Neto, Filipe Tenorio; Cahir, Clare; Giani, Alice Maria; Chai, Jin Chou; Li, Yang; Dong, Xue; Moroziewicz, Dorota; ,; Paull, Daniel; Zhang, Tuo; Koo, Soyeon; Tan, Christina; Danziger, Ron; Ba, Qian; Feng, Lingling; Chen, Zhengming; Zhong, Aaron; Wise, Gilbert J; Xiang, Jenny Z; Wang, Hui; Schwartz, Robert E; tenOever, Benjamin R; Noggle, Scott A; Rice, Charles M; Qi, Qibin; Evans, Todd; Chen, Shuibing
Population-based studies to identify disease-associated risk alleles typically require samples from a large number of individuals. Here, we report a human-induced pluripotent stem cell (hiPSC)-based screening strategy to link human genetics with viral infectivity. A genome-wide association study (GWAS) identified a cluster of single-nucleotide polymorphisms (SNPs) in a cis-regulatory region of the NDUFA4 gene, which was associated with susceptibility to Zika virus (ZIKV) infection. Loss of NDUFA4 led to decreased sensitivity to ZIKV, dengue virus, and SARS-CoV-2 infection. Isogenic hiPSC lines carrying non-risk alleles of SNPs or deletion of the cis-regulatory region lower sensitivity to viral infection. Mechanistic studies indicated that loss/reduction of NDUFA4 causes mitochondrial stress, which leads to the leakage of mtDNA and thereby upregulation of type I interferon signaling. This study provides proof-of-principle for the application of iPSC arrays in GWAS and identifies NDUFA4 as a previously unknown susceptibility locus for viral infection.
PMCID:9550219
PMID: 36206731
ISSN: 1875-9777
CID: 5868352

Disulfiram inhibits neutrophil extracellular trap formation and protects rodents from acute lung injury and SARS-CoV-2 infection

Adrover, Jose M; Carrau, Lucia; Daßler-Plenker, Juliane; Bram, Yaron; Chandar, Vasuretha; Houghton, Sean; Redmond, David; Merrill, Joseph R; Shevik, Margaret; tenOever, Benjamin R; Lyons, Scott K; Schwartz, Robert E; Egeblad, Mikala
Severe acute lung injury has few treatment options and a high mortality rate. Upon injury, neutrophils infiltrate the lungs and form neutrophil extracellular traps (NETs), damaging the lungs and driving an exacerbated immune response. Unfortunately, no drug preventing NET formation has completed clinical development. Here, we report that disulfiram - an FDA-approved drug for alcohol use disorder - dramatically reduced NETs, increased survival, improved blood oxygenation, and reduced lung edema in a transfusion-related acute lung injury (TRALI) mouse model. We then tested whether disulfiram could confer protection in the context of SARS-CoV-2 infection, as NETs are elevated in patients with severe COVID-19. In SARS-CoV-2-infected golden hamsters, disulfiram reduced NETs and perivascular fibrosis in the lungs, and it downregulated innate immune and complement/coagulation pathways, suggesting that it could be beneficial for patients with COVID-19. In conclusion, an existing FDA-approved drug can block NET formation and improve disease course in 2 rodent models of lung injury for which treatment options are limited.
PMCID:8983145
PMID: 35133984
ISSN: 2379-3708
CID: 5868332

Host protein kinases required for SARS-CoV-2 nucleocapsid phosphorylation and viral replication

Yaron, Tomer M; Heaton, Brook E; Levy, Tyler M; Johnson, Jared L; Jordan, Tristan X; Cohen, Benjamin M; Kerelsky, Alexander; Lin, Ting-Yu; Liberatore, Katarina M; Bulaon, Danielle K; Van Nest, Samantha J; Koundouros, Nikos; Kastenhuber, Edward R; Mercadante, Marisa N; Shobana-Ganesh, Kripa; He, Long; Schwartz, Robert E; Chen, Shuibing; Weinstein, Harel; Elemento, Olivier; Piskounova, Elena; Nilsson-Payant, Benjamin E; Lee, Gina; Trimarco, Joseph D; Burke, Kaitlyn N; Hamele, Cait E; Chaparian, Ryan R; Harding, Alfred T; Tata, Aleksandra; Zhu, Xinyu; Tata, Purushothama Rao; Smith, Clare M; Possemato, Anthony P; Tkachev, Sasha L; Hornbeck, Peter V; Beausoleil, Sean A; Anand, Shankara K; Aguet, François; Getz, Gad; Davidson, Andrew D; Heesom, Kate; Kavanagh-Williamson, Maia; Matthews, David A; tenOever, Benjamin R; Cantley, Lewis C; Blenis, John; Heaton, Nicholas S
Multiple coronaviruses have emerged independently in the past 20 years that cause lethal human diseases. Although vaccine development targeting these viruses has been accelerated substantially, there remain patients requiring treatment who cannot be vaccinated or who experience breakthrough infections. Understanding the common host factors necessary for the life cycles of coronaviruses may reveal conserved therapeutic targets. Here, we used the known substrate specificities of mammalian protein kinases to deconvolute the sequence of phosphorylation events mediated by three host protein kinase families (SRPK, GSK-3, and CK1) that coordinately phosphorylate a cluster of serine and threonine residues in the viral N protein, which is required for viral replication. We also showed that loss or inhibition of SRPK1/2, which we propose initiates the N protein phosphorylation cascade, compromised the viral replication cycle. Because these phosphorylation sites are highly conserved across coronaviruses, inhibitors of these protein kinases not only may have therapeutic potential against COVID-19 but also may be broadly useful against coronavirus-mediated diseases.
PMID: 36282911
ISSN: 1937-9145
CID: 5359122

A translational genomics approach identifies IL10RB as the top candidate gene target for COVID-19 susceptibility

Voloudakis, Georgios; Vicari, James M; Venkatesh, Sanan; Hoffman, Gabriel E; Dobrindt, Kristina; Zhang, Wen; Beckmann, Noam D; Higgins, Christina A; Argyriou, Stathis; Jiang, Shan; Hoagland, Daisy; Gao, Lina; Corvelo, André; Cho, Kelly; Lee, Kyung Min; Bian, Jiantao; Lee, Jennifer S; Iyengar, Sudha K; Luoh, Shiuh-Wen; Akbarian, Schahram; Striker, Robert; Assimes, Themistocles L; Schadt, Eric E; Lynch, Julie A; Merad, Miriam; tenOever, Benjamin R; Charney, Alexander W; Brennand, Kristen J; Fullard, John F; Roussos, Panos
Recent efforts have identified genetic loci that are associated with coronavirus disease 2019 (COVID-19) infection rates and disease outcome severity. Translating these genetic findings into druggable genes that reduce COVID-19 host susceptibility is a critical next step. Using a translational genomics approach that integrates COVID-19 genetic susceptibility variants, multi-tissue genetically regulated gene expression (GReX), and perturbagen signatures, we identified IL10RB as the top candidate gene target for COVID-19 host susceptibility. In a series of validation steps, we show that predicted GReX upregulation of IL10RB and higher IL10RB expression in COVID-19 patient blood is associated with worse COVID-19 outcomes and that in vitro IL10RB overexpression is associated with increased viral load and activation of disease-relevant molecular pathways.
PMCID:9441828
PMID: 36064543
ISSN: 2056-7944
CID: 5336952

SARS-CoV-2 infection in hamsters and humans results in lasting and unique systemic perturbations post recovery

Frere, Justin J; Serafini, Randal A; Pryce, Kerri D; Zazhytska, Marianna; Oishi, Kohei; Golynker, Ilona; Panis, Maryline; Zimering, Jeffrey; Horiuchi, Shu; Hoagland, Daisy A; Møller, Rasmus; Ruiz, Anne; Kodra, Albana; Overdevest, Jonathan B; Canoll, Peter D; Borczuk, Alain C; Chandar, Vasuretha; Bram, Yaron; Schwartz, Robert; Lomvardas, Stavros; Zachariou, Venetia; tenOever, Benjamin R
The host response to severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection can result in prolonged pathologies collectively referred to as post-acute sequalae of COVID-19 (PASC) or long COVID. To better understand the mechanism underlying long COVID biology, we compared the short- and long-term systemic responses in the golden hamster following either SARS-CoV-2 or influenza A virus (IAV) infection. Results demonstrated that SARS-CoV-2 exceeded IAV in its capacity to cause permanent injury to the lung and kidney and uniquely impacted the olfactory bulb (OB) and epithelium (OE). Despite a lack of detectable infectious virus, the OB and OE demonstrated myeloid and T cell activation, proinflammatory cytokine production, and an interferon response that correlated with behavioral changes extending a month post viral clearance. These sustained transcriptional changes could also be corroborated from tissue isolated from individuals who recovered from COVID-19. These data highlight a molecular mechanism for persistent COVID-19 symptomology and provide a small animal model to explore future therapeutics.
PMCID:9210449
PMID: 35857629
ISSN: 1946-6242
CID: 5279142

A diminished immune response underlies age-related SARS-CoV-2 pathologies

Oishi, Kohei; Horiuchi, Shu; Frere, Justin; Schwartz, Robert E; tenOever, Benjamin R
Morbidity and mortality in response to SARS-CoV-2 infection are significantly elevated in people of advanced age. To understand the underlying biology of this phenotype, we utilize the golden hamster model to compare how the innate and adaptive immune responses to SARS-CoV-2 infection differed between younger and older animals. We find that while both hamster cohorts showed similar virus kinetics in the lungs, the host response in older animals was dampened, with diminished tissue repair in the respiratory tract post-infection. Characterization of the adaptive immune response also revealed age-related differences, including fewer germinal center B cells in older hamsters, resulting in reduced potency of neutralizing antibodies. Moreover, older animals demonstrate elevated suppressor T cells and neutrophils in the respiratory tract, correlating with an increase in TGF-β and IL-17 induction. Together, these data support that diminished immunity is one of the underlying causes of age-related morbidity.
PMCID:9181267
PMID: 35714615
ISSN: 2211-1247
CID: 5277922