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Updated: May 16, 2026

Visualization of SARS-CoV-2 using Immuno RNA-Fluorescence In Situ Hybridization
Published on: December 23, 2020
Coronavirus protein interaction mapping in bat and human cells reveals network rewiring governing immune evasion and
Jyoti Batra1, Magdalena Rutkowska2, Yuan Zhou1
1J. David Gladstone Institutes, San Francisco, CA 94158, USA; Quantitative Biosciences Institute (QBI), University of California, San Francisco, San Francisco, CA 94158, USA; QBI Coronavirus Research Group (QCRG), University of California, San Francisco, San Francisco, CA 94158, USA; Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco, San Francisco, CA 94158, USA.
Abstract:
Coronaviruses, including severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), can cause severe disease in humans, whereas reservoir hosts such as horseshoe bats remain asymptomatic. To investigate how host-specific protein-protein interactions (PPIs) influence infection, we generated comparative PPI maps for SARS-CoV-2 and its bat progenitor RaTG13, using affinity purification mass spectrometry (AP-MS) in human and greater horseshoe bat cells. We identify both conserved and virus- and host-specific interactions that regulate infection dynamics. Notably, SARS-CoV-2 requires a nonsynonymous mutation in the nucleocapsid to replicate in bat cells expressing human ACE2 and TMPRSS2. Strikingly, a single amino acid difference in Orf9b between viruses acts as a molecular switch that reprograms mitochondrial targeting: in human cells, enhanced translocase of outer mitochondrial membrane 70 (Tom70) binding promotes immune evasion, whereas in bat cells, strengthened interaction with the bat-enriched restriction factor mitochondrial amidoxime reducing component 2 (MTARC2) limits infection. These findings establish a general principle by which minimal sequence variation can reshape virus-host interactions and contribute to immune antagonism, host adaptation, and species barriers.
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