TY - JOUR
T1 - Enhanced RNA replication and pathogenesis in recent SARS-CoV-2 variants harboring the L260F mutation in NSP6
AU - Taha, Taha Y.
AU - Ezzatpour, Shahrzad
AU - Hayashi, Jennifer M.
AU - Ye, Chengjin
AU - Zapatero-Belinchón, Francisco J.
AU - Rosecrans, Julia A.
AU - Kimmerly, Gabriella R.
AU - Chen, Irene P.
AU - Walcott, Keith
AU - Kurianowicz, Anna
AU - Jorgens, Danielle M.
AU - Chaplin, Natalie R.
AU - Choi, Annette
AU - Buchholz, David W.
AU - Sahler, Julie
AU - Hilt, Zachary T.
AU - Imbiakha, Brian
AU - Vagi-Szmola, Cecilia
AU - Montano, Mauricio
AU - Stevenson, Erica
AU - Gordon, Martin
AU - Swaney, Danielle L.
AU - Krogan, Nevan J.
AU - Whittaker, Gary R.
AU - Martinez-Sobrido, Luis
AU - Aguilar, Hector C.
AU - Ott, Melanie
N1 - Publisher Copyright:
© 2025 Taha et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
PY - 2025/3
Y1 - 2025/3
N2 - The COVID-19 pandemic has been driven by SARS-CoV-2 variants with enhanced transmission and immune escape. Apart from extensive evolution in the Spike protein, non-Spike mutations are accumulating across the entire viral genome and their functional impact is not well understood. To address the contribution of these mutations, we reconstructed genomes of recent Omicron variants with disabled Spike expression (replicons) to systematically compare their RNA replication capabilities independently from Spike. We also used a single reference replicon and complemented it with various Omicron variant Spike proteins to quantify viral entry capabilities in single-round infection assays. Viral entry and RNA replication were negatively correlated, suggesting that as variants evolve reduced entry functions under growing immune pressure on Spike, RNA replication increases as a compensatory mechanism. We identified multiple mutations across the viral genome that enhanced viral RNA replication. NSP6 emerged as a hotspot with a distinct L260F mutation independently arising in the BQ.1.1 and XBB.1.16 variants. Using mutant and revertant NSP6 viral clones, the L260F mutation was validated to enhance viral replication in cells and increase pathogenesis in mice. Notably, this mutation reduced host lipid droplet content by NSP6. Collectively, a systematic analysis of RNA replication of recent Omicron variants defined NSP6’s key role in viral RNA replication that provides insight into evolutionary trajectories of recent variants with possible therapeutic implications.
AB - The COVID-19 pandemic has been driven by SARS-CoV-2 variants with enhanced transmission and immune escape. Apart from extensive evolution in the Spike protein, non-Spike mutations are accumulating across the entire viral genome and their functional impact is not well understood. To address the contribution of these mutations, we reconstructed genomes of recent Omicron variants with disabled Spike expression (replicons) to systematically compare their RNA replication capabilities independently from Spike. We also used a single reference replicon and complemented it with various Omicron variant Spike proteins to quantify viral entry capabilities in single-round infection assays. Viral entry and RNA replication were negatively correlated, suggesting that as variants evolve reduced entry functions under growing immune pressure on Spike, RNA replication increases as a compensatory mechanism. We identified multiple mutations across the viral genome that enhanced viral RNA replication. NSP6 emerged as a hotspot with a distinct L260F mutation independently arising in the BQ.1.1 and XBB.1.16 variants. Using mutant and revertant NSP6 viral clones, the L260F mutation was validated to enhance viral replication in cells and increase pathogenesis in mice. Notably, this mutation reduced host lipid droplet content by NSP6. Collectively, a systematic analysis of RNA replication of recent Omicron variants defined NSP6’s key role in viral RNA replication that provides insight into evolutionary trajectories of recent variants with possible therapeutic implications.
UR - https://www.scopus.com/pages/publications/105001829947
U2 - 10.1371/journal.ppat.1013020
DO - 10.1371/journal.ppat.1013020
M3 - Article
AN - SCOPUS:105001829947
SN - 1553-7366
VL - 21
JO - PLoS Pathogens
JF - PLoS Pathogens
IS - 3
M1 - e1013020
ER -