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C19ORF66 Broadly Escapes Virus-Induced Endonuclease Cleavage and Restricts Kaposi's Sarcoma-Associated Herpesvirus
William Rodriguez1, Kumaraman Srivastav1, Mandy Muller2
1Microbiology Department, University of Massachusetts, Amherst, Massachusetts, USA.
Abstract:
One striking characteristic of certain herpesviruses is their ability to induce rapid and widespread RNA decay in order to gain access to host resources. This phenotype is induced by viral endoribonucleases, including SOX in Kaposi's sarcoma-associated herpesvirus (KSHV), muSOX in murine gammaherpesvirus 68 (MHV68), BGLF5 in Epstein-Barr virus (EBV), and vhs in herpes simplex virus 1 (HSV-1). Here, we performed comparative transcriptome sequencing (RNA-seq) upon expression of these herpesviral endonucleases in order to characterize their effect on the host transcriptome. Consistent with previous reports, we found that approximately two-thirds of transcripts were downregulated in cells expressing any of these viral endonucleases. Among the transcripts spared from degradation, we uncovered a cluster of transcripts that systematically escaped degradation from all tested endonucleases. Among these escapees, we identified C19ORF66 and reveal that this transcript is protected from degradation by its 3' untranslated region (UTR). We then show that C19ORF66 is a potent KSHV restriction factor by impeding early viral gene expression, suggesting that its ability to escape viral cleavage may be an important component of the host response to viral infection. Collectively, our comparative approach is a powerful tool to pinpoint key regulators of the viral-host interplay and led us to uncover a novel KSHV regulator.IMPORTANCE Viruses are master regulators of the host gene expression machinery. This is crucial to promote viral infection and to dampen host immune responses. Many viruses, including herpesviruses, express RNases that reduce host gene expression through widespread mRNA decay. However, it emerged that some mRNAs escape this fate, although it has been difficult to determine whether these escaping transcripts benefit viral infection or instead participate in an antiviral mechanism. To tackle this question, we compared the effect of the herpesviral RNases on the human transcriptome and identified a cluster of transcripts consistently escaping degradation from all tested endonucleases. Among the protected mRNAs, we identified the transcript C19ORF66 and showed that it restricts Kaposi's sarcoma-associated herpesvirus (KSHV) infection. Collectively, these results provide a framework to explore how the control of RNA fate in the context of viral-induced widespread mRNA degradation may influence the outcome of viral infection.
Insights
Certain herpesviruses degrade host RNA using viral endoribonucleases. Researchers identified C19ORF66 as a transcript that escapes this degradation and acts as a Kaposi's sarcoma-associated herpesvirus (KSHV) restriction factor.
Area of Science:
- Virology
- Molecular Biology
- Transcriptomics
Background:
- Herpesviruses utilize viral endoribonucleases to induce widespread host RNA decay, facilitating viral replication.
- Key viral endoribonucleases include SOX (KSHV), muSOX (MHV68), BGLF5 (EBV), and vhs (HSV-1).
- Understanding which host transcripts escape degradation is crucial for elucidating viral-host interactions.
Purpose of the Study:
- To comparatively analyze the impact of different herpesviral endoribonucleases on the host transcriptome.
- To identify host transcripts that consistently escape viral-induced RNA degradation.
- To characterize the function of a novel escaping transcript, C19ORF66, in the context of Kaposi's sarcoma-associated herpesvirus (KSHV) infection.
Main Methods:
- Comparative transcriptome sequencing (RNA-seq) was performed on cells expressing various herpesviral endoribonucleases.
- Bioinformatic analysis was used to identify differentially expressed and protected transcripts.
- Functional assays were conducted to determine the role of C19ORF66 in KSHV infection.
Main Results:
- Expression of herpesviral endoribonucleases led to the downregulation of approximately two-thirds of host transcripts.
- A specific cluster of transcripts, including C19ORF66, consistently escaped degradation across all tested endonucleases.
- C19ORF66, protected by its 3' untranslated region (UTR), was identified as a KSHV restriction factor that impedes early viral gene expression.
Conclusions:
- Comparative transcriptome analysis is effective in identifying key regulators of viral-host interplay.
- C19ORF66 represents a novel host antiviral mechanism by restricting KSHV infection.
- The ability of specific transcripts to evade viral RNA degradation plays a significant role in the host's response to herpesviral infections.