N6-methyladenosine modification and the YTHDF2 reader protein play cell type specific roles in lytic viral gene
Charles R Hesser1, John Karijolich2,3, Dan Dominissini4,5,6
1Department of Molecular and Cell Biology, University of California Berkeley, Berkeley, CA, United States of America.
Abstract:
Methylation at the N6 position of adenosine (m6A) is a highly prevalent and reversible modification within eukaryotic mRNAs that has been linked to many stages of RNA processing and fate. Recent studies suggest that m6A deposition and proteins involved in the m6A pathway play a diverse set of roles in either restricting or modulating the lifecycles of select viruses. Here, we report that m6A levels are significantly increased in cells infected with the oncogenic human DNA virus Kaposi's sarcoma-associated herpesvirus (KSHV). Transcriptome-wide m6A-sequencing of the KSHV-positive renal carcinoma cell line iSLK.219 during lytic reactivation revealed the presence of m6A across multiple kinetic classes of viral transcripts, and a concomitant decrease in m6A levels across much of the host transcriptome. However, we found that depletion of the m6A machinery had differential pro- and anti-viral impacts on viral gene expression depending on the cell-type analyzed. In iSLK.219 and iSLK.BAC16 cells the pathway functioned in a pro-viral manner, as depletion of the m6A writer METTL3 and the reader YTHDF2 significantly impaired virion production. In iSLK.219 cells the defect was linked to their roles in the post-transcriptional accumulation of the major viral lytic transactivator ORF50, which is m6A modified. In contrast, although the ORF50 mRNA was also m6A modified in KSHV infected B cells, ORF50 protein expression was instead increased upon depletion of METTL3, or, to a lesser extent, YTHDF2. These results highlight that the m6A pathway is centrally involved in regulating KSHV gene expression, and underscore how the outcome of this dynamically regulated modification can vary significantly between cell types.
Insights
Methylation (m6A) levels rise during Kaposi's sarcoma-associated herpesvirus (KSHV) infection. The m6A pathway impacts KSHV gene expression, with effects varying by cell type, influencing viral replication.
Area of Science:
- Epigenetics and RNA Biology
- Virology
- Oncology
Background:
- N6-methyladenosine (m6A) is a prevalent mRNA modification influencing RNA processing and fate.
- The m6A pathway plays roles in modulating viral lifecycles.
- Kaposi's sarcoma-associated herpesvirus (KSHV) is an oncogenic human DNA virus.
Purpose of the Study:
- To investigate the role of m6A modification in KSHV infection.
- To determine how m6A pathway components affect KSHV gene expression and replication.
- To explore cell-type-specific outcomes of m6A regulation in KSHV-infected cells.
Main Methods:
- Transcriptome-wide m6A-sequencing in KSHV-infected renal carcinoma cells (iSLK.219) during lytic reactivation.
- Depletion of m6A pathway components (METTL3, YTHDF2) using genetic manipulation.
- Analysis of viral gene expression, virion production, and protein accumulation in different KSHV-infected cell models.
Main Results:
- m6A levels significantly increased in KSHV-infected cells, with m6A found on viral transcripts.
- Depletion of m6A machinery (METTL3, YTHDF2) impaired KSHV virion production in iSLK.219 and iSLK.BAC16 cells.
- The m6A pathway's impact on viral gene expression, particularly ORF50, showed differential effects in renal carcinoma cells versus B cells.
Conclusions:
- The m6A pathway is crucial for regulating KSHV gene expression.
- m6A modification influences the post-transcriptional accumulation of the viral transactivator ORF50.
- The functional outcome of m6A regulation in KSHV infection is cell-type-dependent.
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