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Biology subjects

Kuderna, A. K.

Publications and source records attributed to Kuderna, A. K..

3 recordsLinked to original sources

Intrinsic immunity against HAdV is achieved by a novel epigenetic silencing complex

The DNA double-stranded genome of human adenoviruses (HAdV) is preferentially targeted by host factors involved in chromatin remodeling, such as SPOC1 and KAP1 to inhibit efficient viral gene expression. HAdV genomes undergo alterations through association with host histones and epigenetic modifications; however, the precise underlying mechanism remains elusive. A recently discovered silencing mechanism for retrotransposons and retroviruses involves the Human Silencing Hub (HUSH) complex. This complex of MPP8, TASOR, and PPHLN1 safeguards the human genome by utilizing histone H3 Lys9 trimethylation (H3K9me3) to block transcription. Through the recruitment of SETDB1 and MORC2, the HUSH complex silences host genes and condenses target genomes to combat infections such as HIV, MLV, and AAV. Here, we present evidence that the HUSH complex effectively restricts HAdV infection. To counteract the repressive function of this epigenetic silencing complex, HUSH factors are inhibited through binding of HAdV proteins and subsequent relocalization. We observe that MPP8 is targeted by the adenoviral E3 ubiquitin ligase, thus recruited by the viral early proteins E1B-55K and E4orf6 for proteasomal degradation. In summary, we provide evidence that the HUSH complex is a previously unrecognized host factor that restricts HAdV gene expression and replication. Based on these novel findings, we propose that HUSH represents a promising therapeutic target to combat HAdV infection.

cell biology↗

Exonuclease ISG20 inhibits human cytomegalovirus replication by inducing an innate immune defense signature

ISG20 is an interferon-regulated protein that exhibits RNase activity thereby inhibiting the replication of a broad spectrum of RNA viruses. By single cell RNA sequencing, we identified ISG20 as an antiviral factor for human cytomegalovirus (HCMV) as it was upregulated in a population of HCMV-resistant cells. In accordance with an antiviral role on herpesviruses, overexpression of ISG20 in primary human fibroblasts led to reduced HCMV and HSV-1 replication, while knockdown of ISG20 enhanced virus growth. In Western blot kinetics, we observed that inhibition of HCMV replication by ISG20 occurs at the early stage of infection which correlated with reduced amounts of viral early and late transcripts. However, neither the half-life of viral and cellular RNAs nor of viral DNA was decreased in ISG20-expressing cells, indicating that ISG20 does not exert its antiviral effect via a degradation of RNAs or DNA. Instead, RNA-seq analysis revealed an innate immune defense signature upon ISG20 expression that comprised the upregulation of a distinct set of interferon stimulated genes (ISGs), zinc finger proteins (ZNFs) and of transposable elements (TEs). Our data indicate that this gene signature augments both IFN production and response of the host cell. Consistently, the JAK-STAT inhibitor ruxolitinib rescued HCMV gene expression in ISG20-expressing cells. We conclude that ISG20 induces a so far unprecedented immune defense signature that serves to amplify the IFN-mediated host cell defense thus explaining its broad antiviral activity.

microbiology↗

DNA virus infections shape transposable elements activity in vitro and in vivo

Transposable elements (TEs) are implicated in a variety of processes including placental and preimplantation development and a variety of human diseases. TEs are known to be activated in the context of some viral infections, but the mechanisms and consequences are not understood. We show strong activation of TEs upon DNA virus infection, in particular the MLT- and THE1-class of LTR-containing retrotransposons as well as a subset of LINE-1-, Alu-elements and HERVs. Mechanistically, two key pathways induce TEs upregulation: inhibition of the KAP1/TRIM28 repressive complex by phosphorylation, and expression of the pioneer transcription factor double-homeobox 4 (DUX4), which is known to be involved in TE-induction during zygotic genome activation in embryonic development. DUX4 is induced by DNA viruses, it binds to TEs upon infection and analysis of genes adjacent to TEs shows pathways that are important for DNA virus infections. Analysis of knockdown, knockout and overexpression data reveal that almost all TEs expressed upon herpesviral infection are regulated by KAP1/TRIM28 and DUX4. Interestingly, analysis of single cell sequencing data from patients with DNA virus-associated cancers showed that in vivo TEs expression strongly correlates with virus infection, indicating a possible role in viral oncogenesis.

genomics↗