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DENV-4 infection suppresses transcription of DNA repair genes
Lamkin, Erica N; Reich, Jessica; Victor, Josh A; Guyette, Madison; Kothandaraman, Naveen; Gupta, Vihit; Harding, Alfred T; Jordan, Tristan X; Gehrke, Lee; Zhou, Pei; tenOever, Benjamin; Chatterjee, Nimrat
The molecular mechanisms behind Dengue virus-dependent host pathogenesis, especially genome instability, remain largely unclear. This RNA virus causes a debilitating disease during active infection and presents future risks of postdengue syndromes, leukemia, and DNA damage in the blood cells of infected patients, with the underlying mechanisms unknown. In this study, we show that DENV-4 infection induces significant DNA damage and suppresses the transcription of genes involved in DNA repair and select mutagenic translesion synthesis (TLS) polymerases, indicating that DENV-4-dependent pathobiology leaves durable biological "scars" that incrementally increase chronic disease risk, including carcinogenesis and postdengue syndromes.
PMID: 42550907
ISSN: 1091-6490
CID: 6070814
Quantitative Tissue Proteomics Reveals Protein Signatures Associated with SARS-CoV-2 Variant Infection in Hamsters
Frere, Justin J; Bonaventure, Boris; Rosberger, Haylen T; Kurland, Andrew P; Sachs, David; Patel, Aum R; Garg, Amit; Gonzalez, Ma; tenOever, Benjamin R; Lim, Jean K; Johnson, Jeffrey R
Since its emergence in 2019, circulating SARS-CoV-2 has been dominated by waves of genetically distinct variants with varying pathogenicity. Understanding the multidimensional responses to SARS-CoV-2 infection and their associations with pathogenesis is critical for developing therapies to prevent severe illness and death. Here, we applied quantitative proteome and phosphoproteome analyses to compare host responses to infections with an ancestral variant (WA-1/2020), a Delta variant (B.1.617.2), and an Omicron variant (BA.1) of SARS-CoV-2 in Syrian golden hamster tissues at 5 days postinfection, when peak inflammatory responses were observed. As has been observed by others, animals infected with the Delta variant lost more weight than those infected with other variants, and this effect was associated with decreased cilia proteins in the trachea tissue and increased signatures of fibrosis in lung tissue. Phosphoproteome analysis revealed a downregulation of Raf-MEK-ERK signaling across all variants, suggesting a suppressed proliferative response in tissues following SARS-CoV-2 infection. These data provide critical in vivo confirmation of observations from in vitro studies and provide a quantitative tissue- and SARS-CoV-2 variant-specific resource of proteome and phosphoproteome responses.
PMID: 41518346
ISSN: 1535-3907
CID: 5981542
Respiratory SARS-CoV-2 Infection Causes Skeletal Muscle Atrophy and Long-Lasting Energy Metabolism Suppression
Homma, Sachiko T; Wang, Xingyu; Frere, Justin J; Gower, Adam C; Zhou, Jingsong; Lim, Jean K; tenOever, Benjamin R; Zhou, Lan
Muscle fatigue represents the most prevalent symptom of long-term COVID, with elusive pathogenic mechanisms. We performed a longitudinal study to characterize histopathological and transcriptional changes in skeletal muscle in a hamster model of respiratory SARS-CoV-2 infection and compared them with influenza A virus (IAV) and mock infections. Histopathological and bulk RNA sequencing analyses of leg muscles derived from infected animals at days 3, 30, and 60 post-infection showed no direct viral invasion but myofiber atrophy in the SARS-CoV-2 group, which was accompanied by persistent downregulation of the genes related to myofibers, ribosomal proteins, fatty acid β-oxidation, tricarboxylic acid cycle, and mitochondrial oxidative phosphorylation complexes. While both SARS-CoV-2 and IAV infections induced acute and transient type I and II interferon responses in muscle, only the SARS-CoV-2 infection upregulated TNF-α/NF-κB but not IL-6 signaling in muscle. Treatment of C2C12 myotubes, a skeletal muscle cell line, with combined IFN-γ and TNF-α but not with IFN-γ or TNF-α alone markedly impaired mitochondrial function. We conclude that a respiratory SARS-CoV-2 infection can cause myofiber atrophy and persistent energy metabolism suppression without direct viral invasion. The effects may be induced by the combined systemic interferon and TNF-α responses at the acute phase and may contribute to post-COVID-19 persistent muscle fatigue.
PMCID:11275164
PMID: 39062017
ISSN: 2227-9059
CID: 5723802
Pandemic-associated pernio harbors footprints of an abortive SARS-CoV-2 infection
Arkin, Lisa M; Costa-da-Silva, Ana C; Frere, Justin; Ng, Ashley; Sharma, Rubina; Moon, John J; Bussan, Hailey E; Kim, Clara H; Javaid, Ayesha; Steidl, Olivia R; Yatim, Ahmad; Saidoune, Fanny; Gilliet, Michel; Nguyen, Joe T; Nihal, Aman; Luong, George; Kenfield, Meaghan; Carrau, Lucia; Tran, Jennifer M; Hinshaw, Molly A; Brooks, Erin G; Ayuso, Jose M; O'Connor, David H; Casanova, Jean-Laurent; Cowen, Edward W; Drolet, Beth A; Singh, Anne Marie; tenOever, Benjamin; Mays, Jacqueline W
Elevated pernio incidence was observed during the COVID-19 pandemic. This prospective study enrolled subjects with pandemic-associated pernio in Wisconsin and Switzerland. Because pernio is a cutaneous manifestation of the interferonopathies, and type I interferon (IFN-I) immunity is critical to COVID-19 recovery, we tested the hypothesis that severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2)-mediated IFN-I signaling might underlie some pernio cases. Tissue-level IFN-I activity and plasmacytoid dendritic cell infiltrates were demonstrated in 100% of the Wisconsin cases. Across both cohorts, sparse SARS-CoV-2 RNA was captured in 25% (6/22) of biopsies, all with high inflammation. Affected patients lacked adaptive immunity to SARS-CoV-2. A hamster model of intranasal SARS-CoV-2 infection was used as a proof-of-principle experiment: RNA was detected in lungs and toes with IFN-I activity at both the sites, while replicating virus was found only in the lung. These data support a viral trigger for some pernio cases, where sustained local IFN-I activity can be triggered in the absence of seroconversion.
PMCID:11326933
PMID: 39156641
ISSN: 2589-0042
CID: 5680402
SARS-CoV-2 and Influenza A Virus Induce Longitudinal Transcriptomic Changes in Hamster Spinal Cord Tissue
Serafini, Randal A; Frere, Justin J; tenOever, Benjamin; Zachariou, Venetia
PMID: 37389976
ISSN: 1528-1159
CID: 5540612
A multi-organoid platform identifies CIART as a key factor for SARS-CoV-2 infection
Tang, Xuming; Xue, Dongxiang; Zhang, Tuo; Nilsson-Payant, Benjamin E; Carrau, Lucia; Duan, Xiaohua; Gordillo, Miriam; Tan, Adrian Y; Qiu, Yunping; Xiang, Jenny; Schwartz, Robert E; tenOever, Benjamin R; Evans, Todd; Chen, Shuibing
COVID-19 is a systemic disease involving multiple organs. We previously established a platform to derive organoids and cells from human pluripotent stem cells to model SARS-CoV-2 infection and perform drug screens1,2. This provided insight into cellular tropism and the host response, yet the molecular mechanisms regulating SARS-CoV-2 infection remain poorly defined. Here we systematically examined changes in transcript profiles caused by SARS-CoV-2 infection at different multiplicities of infection for lung airway organoids, lung alveolar organoids and cardiomyocytes, and identified several genes that are generally implicated in controlling SARS-CoV-2 infection, including CIART, the circadian-associated repressor of transcription. Lung airway organoids, lung alveolar organoids and cardiomyocytes derived from isogenic CIART-/- human pluripotent stem cells were significantly resistant to SARS-CoV-2 infection, independently of viral entry. Single-cell RNA-sequencing analysis further validated the decreased levels of SARS-CoV-2 infection in ciliated-like cells of lung airway organoids. CUT&RUN, ATAC-seq and RNA-sequencing analyses showed that CIART controls SARS-CoV-2 infection at least in part through the regulation of NR4A1, a gene also identified from the multi-organoid analysis. Finally, transcriptional profiling and pharmacological inhibition led to the discovery that the Retinoid X Receptor pathway regulates SARS-CoV-2 infection downstream of CIART and NR4A1. The multi-organoid platform identified the role of circadian-clock regulation in SARS-CoV-2 infection, which provides potential therapeutic targets for protection against COVID-19 across organ systems.
PMID: 36918693
ISSN: 1476-4679
CID: 5868362
Mouse genome rewriting and tailoring of three important disease loci
Zhang, Weimin; Golynker, Ilona; Brosh, Ran; Fajardo, Alvaro; Zhu, Yinan; Wudzinska, Aleksandra M; Ordoñez, Raquel; Ribeiro-Dos-Santos, André M; Carrau, Lucia; Damani-Yokota, Payal; Yeung, Stephen T; Khairallah, Camille; Vela Gartner, Antonio; Chalhoub, Noor; Huang, Emily; Ashe, Hannah J; Khanna, Kamal M; Maurano, Matthew T; Kim, Sang Yong; tenOever, Benjamin R; Boeke, Jef D
Genetically engineered mouse models (GEMMs) help us to understand human pathologies and develop new therapies, yet faithfully recapitulating human diseases in mice is challenging. Advances in genomics have highlighted the importance of non-coding regulatory genome sequences, which control spatiotemporal gene expression patterns and splicing in many human diseases1,2. Including regulatory extensive genomic regions, which requires large-scale genome engineering, should enhance the quality of disease modelling. Existing methods set limits on the size and efficiency of DNA delivery, hampering the routine creation of highly informative models that we call genomically rewritten and tailored GEMMs (GREAT-GEMMs). Here we describe 'mammalian switching antibiotic resistance markers progressively for integration' (mSwAP-In), a method for efficient genome rewriting in mouse embryonic stem cells. We demonstrate the use of mSwAP-In for iterative genome rewriting of up to 115 kb of a tailored Trp53 locus, as well as for humanization of mice using 116 kb and 180 kb human ACE2 loci. The ACE2 model recapitulated human ACE2 expression patterns and splicing, and notably, presented milder symptoms when challenged with SARS-CoV-2 compared with the existing K18-hACE2 model, thus representing a more human-like model of infection. Finally, we demonstrated serial genome writing by humanizing mouse Tmprss2 biallelically in the ACE2 GREAT-GEMM, highlighting the versatility of mSwAP-In in genome writing.
PMCID:10632133
PMID: 37914927
ISSN: 1476-4687
CID: 5606842
SARS-CoV-2 hijacks p38β/MAPK11 to promote virus replication
Higgins, Christina A; Nilsson-Payant, Benjamin E; Bonaventure, Boris; Kurland, Andrew P; Ye, Chengjin; Yaron, Tomer M; Johnson, Jared L; Adhikary, Prithy; Golynker, Ilona; Panis, Maryline; Danziger, Oded; Rosenberg, Brad R; Cantley, Lewis C; Martínez-Sobrido, Luis; tenOever, Benjamin; Johnson, Jeffrey R
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), the causative agent of the coronavirus disease 2019 (COVID-19) pandemic, drastically modifies infected cells to optimize virus replication. One such modification is the activation of the host p38 mitogen-activated protein kinase (MAPK) pathway, which plays a major role in inflammatory cytokine production, a hallmark of severe COVID-19. We previously demonstrated that inhibition of p38/MAPK activity in SARS-CoV-2-infected cells reduced both cytokine production and viral replication. Here, we combined quantitative genetic screening, genomics, proteomics, and phosphoproteomics to better understand mechanisms underlying the dependence of SARS-CoV-2 on the p38 pathway. We found that p38β is a critical host factor for SARS-CoV-2 replication in multiple relevant cell lines and that it functions at a step after viral mRNA expression. We identified putative host and viral p38β substrates in the context of SARS-CoV-2 infection and found that most host substrates have intrinsic antiviral activities. Taken together, this study reveals a unique proviral function for p38β and supports exploring p38β inhibitor development as a strategy toward creating a new class of COVID-19 therapies. IMPORTANCE SARS-CoV-2 is the causative agent of the COVID-19 pandemic that has claimed millions of lives since its emergence in 2019. SARS-CoV-2 infection of human cells requires the activity of several cellular pathways for successful replication. One such pathway, the p38 MAPK pathway, is required for virus replication and disease pathogenesis. Here, we applied systems biology approaches to understand how MAPK pathways benefit SARS-CoV-2 replication to inform the development of novel COVID-19 drug therapies.
PMID: 37345956
ISSN: 2150-7511
CID: 5542842
Delayed engagement of host defenses enables SARS-CoV-2 viremia and productive infection of distal organs in the hamster model of COVID-19
Carrau, Lucia; Frere, Justin J; Golynker, Ilona; Fajardo, Alvaro; Rivera, Cristobal F; Horiuchi, Shu; Roonprapunt, Tyler; Minkoff, Judith M; Blanco-Melo, Daniel; TenOever, Benjamin
Clinical presentations that develop in response to infection result from interactions between the pathogen and host defenses. SARS-CoV-2, the etiologic agent of COVID-19, directly antagonizes these defenses, leading to delayed immune engagement in the lungs that materializes only as cells succumb to infection and are phagocytosed. Leveraging the golden hamster model of COVID-19, we sought to understand the dynamics between SARS-CoV-2 infection in the airways and the systemic host response that ensues. We found that early SARS-CoV-2 replication was largely confined to the respiratory tract and olfactory system and, to a lesser extent, the heart and gastrointestinal tract but generated a host antiviral response in every organ as a result of circulating type I and III interferons. Moreover, we showed that diminishing the response in the airways by immunosuppression or administration of SARS-CoV-2 intravenously resulted in decreased immune priming, viremia, and increased viral tropism, including productive infection of the liver, kidney, spleen, and brain. Last, we showed that productive infection of the airways was required for mounting an effective and system-wide antiviral response. Together, these data illustrate how COVID-19 can result in diverse clinical presentations in which disease outcomes can be a by-product of the speed and strength of immune engagement. These studies provide additional evidence for the mechanistic basis of the diverse clinical presentations of COVID-19 and highlight the ability of the respiratory tract to generate a systemic immune defense after pathogen recognition.
PMID: 37311033
ISSN: 1937-9145
CID: 5539882
Archaeal Kink-Turn Binding Protein Mediates Inhibition of Orthomyxovirus Splicing Biology
Oishi, Kohei; Blanco-Melo, Daniel; Kurland, Andrew P; Johnson, Jeffrey R; tenOever, Benjamin R
Despite lacking a DNA intermediate, orthomyxoviruses complete their replication cycle in the nucleus and generate multiple transcripts by usurping the host splicing machinery. This biology results in dynamic changes of relative viral transcripts over time and dictates the replicative phase of the infection. Here, we demonstrate that the family of archaeal L7Ae proteins uniquely inhibit the splicing biology of influenza A virus, influenza B virus, and Salmon isavirus, revealing a common strategy utilized by Orthomyxoviridae members to achieve this dynamic. L7Ae-mediated inhibition of virus biology was lost with the generation of a splicing-independent strain of influenza A virus and attempts to select for an escape mutant resulted in variants that conformed to host splicing biology at significant cost to their overall fitness. As L7Ae recognizes conventional kink turns in various RNAs, these data implicate the formation of a similar structure as a shared strategy adopted by this virus family to coordinate their replication cycle. IMPORTANCE Here, we demonstrate that a family of proteins from archaea specifically inhibit this splicing biology of all tested members of the Orthomyxoviridae family. We show that this inhibition extends to influenza A virus, influenza B virus, and isavirus genera, while having no significant impact on the mammalian transcriptome or proteome. Attempts to generate an escape mutant against L7Ae-mediated inhibition resulted in mutations surrounding the viral splice sites and a significant loss of viral fitness. Together, these findings reveal a unique biology shared among diverse members of the Orthomyxoviridae family that may serve as a means to generate future universal therapeutics.
PMCID:10134859
PMID: 36943134
ISSN: 1098-5514
CID: 5502472