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Biology subjects

Renner, D. M.

Publications and source records attributed to Renner, D. M..

2 recordsLinked to original sources

SARS-CoV-2 diverges from other betacoronaviruses in only partially activating the IRE1α/XBP1 ER stress pathway in human lung-derived cells

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has killed over 6 million individuals worldwide and continues to spread in countries where vaccines are not yet widely available, or its citizens are hesitant to become vaccinated. Therefore, it is critical to unravel the molecular mechanisms that allow SARS-CoV-2 and other coronaviruses to infect and overtake the host machinery of human cells. Coronavirus replication triggers endoplasmic reticulum (ER) stress and activation of the unfolded protein response (UPR), a key host cell pathway widely believed essential for viral replication. We examined the master UPR sensor IRE1 kinase/RNase and its downstream transcription factor effector XBP1s, which is processed through an IRE1-mediated mRNA splicing event, in human lung-derived cells infected with betacoronaviruses. We found human respiratory coronavirus OC43 (HCoV-OC43), Middle East respiratory syndrome coronavirus (MERS-CoV), and murine coronavirus (MHV) all induce ER stress and strongly trigger the kinase and RNase activities of IRE1 as well as XBP1 splicing. In contrast, SARS-CoV-2 only partially activates IRE1 through autophosphorylation, but its RNase activity fails to splice XBP1. Moreover, while IRE1 was dispensable for replication in human cells for all coronaviruses tested, it was required for maximal expression of genes associated with several key cellular functions, including the interferon signaling pathway, during SARS-CoV-2 infection. Our data suggest that SARS-CoV-2 actively inhibits the RNase of autophosphorylated IRE1, perhaps as a strategy to eliminate detection by the host immune system. IMPORTANCESARS-CoV-2 is the third lethal respiratory coronavirus after MERS-CoV and SARS-CoV to emerge this century, causing millions of deaths world-wide. Other common coronaviruses such as HCoV-OC43 cause less severe respiratory disease. Thus, it is imperative to understand the similarities and differences among these viruses in how each interacts with host cells. We focused here on the inositol-requiring enzyme 1 (IRE1) pathway, part of the host unfolded protein response to virus-induced stress. We found that while MERS-CoV and HCoV-OC43 fully activate the IRE1 kinase and RNase activities, SARS-CoV-2 only partially activates IRE1, promoting its kinase activity but not RNase activity. Based on IRE1-dependent gene expression changes during infection, we propose that SARS-CoV-2 prevents IRE1 RNase activation as a strategy to limit detection by the host immune system.

microbiology↗

The host antiviral ribonuclease L protein supports Zika virus replication factory formation to enhance infectious virus production

The flavivirus Zika virus (ZIKV) activates ribonuclease L (RNase L) catalytic antiviral function during infection, yet deletion of RNase L decreases ZIKV production, suggesting a proviral role of RNase L. In this study, we reveal that latent RNase L supports ZIKV replication factory (RF) assembly. Deletion of RNase L induced broader cellular distribution of ZIKV dsRNA and NS3 compared with densely concentrated RFs detected in WT cells. An inactive form of RNase L was sufficient to contain ZIKV genome and dsRNA within a smaller area, which increased levels of viral RNA within RFs as well as infectious ZIKV released from the cell. We used a microtubule stabilization drug to demonstrate that RNase L deletion impaired the cytoskeleton rearrangements that are required for proper generation of RFs. During infection with dengue or West Nile Kunjin viruses, RNase L decreased virus production, suggesting that RNase L proviral function is specific to ZIKV.

microbiology↗