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Schreiner, S.

Publications and source records attributed to Schreiner, S..

6 recordsLinked to original sources

Dissecting the role of RNA-binding proteins in early herpes simplex virus 1 transcription using acute protein depletion

Herpes simplex virus 1 (HSV-1) infects about 50-80% of the entire human population and persists in the neurons of affected individuals. A fraction of affected individuals suffer from recurrent cold sores caused by reactivating virus, in rare but severe cases the virus can cause encephalitis. During lytic infection, the virus relies on host factors such as RNA polymerase II and accessory proteins involved in transcription to express its genes and ensure successful replication. In general, RNA molecules in cells are bound by RNA-binding proteins (RBPs) during their entire lifecycle. Importantly, RBPs are increasingly described to also regulate transcription, an aspect long time outside the scope of investigations, especially during viral infections. Here, we examined the impact of five nuclear proteins (FUBP1, SLBP, SFPQ, SPT5 and SAF-B) with known RNA-binding activities on HSV-1 transcription. Additionally, we evaluated their importance for human adenovirus C5 (HAdV) growth to assess whether these host factors are specific to HSV-1 infections or might have broader relevance for the general transcription of dsDNA viruses. We show that the transcriptional elongation factor SPT5 coded by SUPT5H accumulates on HSV-1 genomes early during the infection and is required for the transcription of the immediate-early gene UL54. Its depletion affects also HAdV replication, indicating a general role in transcription of viruses that depend on the host transcriptional machinery. In contrast, depletion of the transcriptional repressor and paraspeckle protein SFPQ reduces UL54 RNA levels in HSV-1 infection, but does not cause significant changes in HAdV growth. Since SFPQ does not co-localize with HSV-1 genomes, this suggests a function not directly associated to viral DNA.

molecular biology↗

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↗

E2A SUMOylation promotes HAdV mediated inhibition of the tumor suppressor p53 during infection

HAdV express early viral genes to modulate the activity of the cellular tumor suppressor p53 and ensure efficient viral replication, through various processes, whilst some of them are not completely understood. HAdV oncoprotein E1B-55K interactions with SUMO, PML-IV/V and Sp100A are tightly connected to the transforming potential of the viral factor in non-lytic infections. SUMO modified HAdV DNA binding protein (DBP) E2A interacts with PML and Sp100A acting as a molecular bridge between viral replication centers (RCs) and PML tracks. Here, we provide a novel concept showing that HAdV E2A is involved in the inhibition of p53 activity and apoptosis; thus we identified a novel route of exhibiting virus induced oncogenic potential. We revealed an E1B-55K independent localization of p53 within HAdV replication centers marked by E2A. In the absence of any functional E1B-55K protein expression, p53 interacts with E2A. E2A SUMOylation promotes HAdV- mediated inhibition of p53/DNA binding and p53-dependent transactivation by supporting p53 degradation, E1B-55K interaction and colocalization with PML-V that leads to E1B-55K induced upregulation of p53 SUMOylation. In sum, we provide evidence for a novel mechanism by which the HAdV DBP E2A protein inhibits p53- mediated transcriptional activation and apoptotic host cell response. Intriguingly, these findings change the longstanding dogma of host DNA damage response (DDR) inactivation by HAdV infection and offer crucial insights to improve future p53 selective oncolytic virus therapies and adenoviral vectors.

cell biology↗

Merkel cell polyomavirus small tumor antigen contributes to immune evasion by interfering with type I interferon signaling

Merkel cell polyomavirus (MCPyV) is the causative agent of the majority of Merkel cell carcinomas (MCC). The virus has limited coding capacity, with its early viral proteins, large T (LT) and small T (sT), being multifunctional and contributing to infection and transformation. A fundamental difference in early viral gene expression between infection and MCPyV-driven tumorigenesis is the expression of a truncated LT (LTtr) in the tumor. In contrast, sT is expressed in both conditions and contributes significantly to oncogenesis. Here, we identified novel functions of early viral proteins by performing genome-wide transcriptome and chromatin studies in primary human fibroblasts. Due to current limitations in infection and tumorigenesis models, we mimic these conditions by ectopically expressing sT, LT or LTtr, individually or in combination, at different time points. In addition to its known function in cell cycle and inflammation modulation, we reveal a fundamentally new function of sT. We show that sT regulates the type I interferon (IFN) response downstream of the type I interferon receptor (IFNAR) by interfering with the interferon-stimulated gene factor 3 (ISGF3)-induced interferon-stimulated gene (ISG) response. Expression of sT leads to a reduction in the expression of interferon regulatory factor 9 (IRF9) which is a central component of the ISGF3 complex. We further show that this function of sT is conserved in BKPyV. We provide a first mechanistic understanding of which early viral proteins trigger and control the type I IFN response, which may influence MCPyV infection, persistence and, during MCC progression, regulation of the tumor microenvironment. Author SummaryMerkel cell polyomavirus (MCPyV) is the only human polyomavirus that causes cancer in humans. As with all human polyomaviruses, the available infection models are limited. Thus, many processes such as the host response to infection and its regulation by the virus to establish infection and persistence are poorly understood. To better understand this interplay of viral MCPyV proteins, we performed genome-wide transcriptome and chromatin studies in primary human fibroblasts and simulated infection and tumorigenesis conditions by ectopically expressing the early viral proteins individually or in combination at different time points. This allowed us to uncover a novel, previously undescribed function of polyomavirus sT, namely the reduction of the ISG response by affecting the ISGF3 complex, specifically by reducing IRF9 protein levels. This work sheds light on how early viral proteins influence the type I IFN response and how their interplay may affect MCPyV infection, persistence, and MCC progression.

molecular biology↗

Nanopore Guided Annotation of Transcriptome Architectures

High-resolution annotations of transcriptomes from all domains of life are essential for many sequencing-based RNA analyses, including Nanopore direct RNA sequencing (DRS), which would otherwise be hindered by misalignments and other analysis artefacts. DRS allows the capture and full-length sequencing of native RNAs, without recoding or amplification bias, and resulting data may be interrogated to define the identity and location of chemically modified ribonucleotides, as well as the length of poly(A) tails on individual RNA molecules. Existing software solutions for generating high-resolution transcriptome annotations are poorly suited to small gene dense organisms such as viruses due to the challenge of identifying distinct transcript isoforms where alternative splicing and overlapping RNAs are prevalent. To resolve this, we identified key characteristics of DRS datasets and developed a novel approach to transcriptome. We demonstrate, using a combination of synthetic and original datasets, that our novel approach yields a high level of precision and recall when reconstructing both gene sparse and gene dense transcriptomes from DRS datasets. We further apply this approach to generate a new high resolution transcriptome annotation of the neglected pathogen human adenovirus type F 41 for which we identify 77 distinct transcripts encoding at least 23 different proteins.

bioinformatics↗

DEAD-box ATPase Dbp2 mediates mRNA release after 3'-end formation

mRNA biogenesis in the eukaryotic nucleus is a highly complex process. The numerous RNA processing steps are tightly coordinated to ensure that only fully processed transcripts are released from chromatin for export from the nucleus. Here, we present the hypothesis that fission yeast Dbp2, a ribonucleoprotein complex (RNP) remodelling ATPase of the DEAD-box family, is the key enzyme in an RNP assembly checkpoint at the 3-end of genes. We show that Dbp2 interacts with the cleavage and polyadenylation complex (CPAC) and localizes to cleavage bodies, which are enriched for 3-end processing factors and proteins involved in nuclear RNA surveillance. Upon loss of Dbp2, 3-processed, polyadenylated RNAs accumulate on chromatin and in cleavage bodies, and CPAC components are depleted from the soluble pool. Under these conditions, cells display an increased likelihood to skip polyadenylation sites and a delayed transcription termination, suggesting that levels of free CPAC components are insufficient to maintain normal levels of 3-end processing. Our data support a model in which Dbp2 is the active component of an mRNP remodelling checkpoint that licenses RNA export and is coupled to CPAC release.

molecular biology↗