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Published on: December 23, 2020
SARS-CoV-2 Nsp16 activation mechanism and a cryptic pocket with pan-coronavirus antiviral potential
Neha Vithani1,2, Michael D Ward1,2, Maxwell I Zimmerman1,2
1Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, Missouri 63110, United States.
Abstract:
Coronaviruses have caused multiple epidemics in the past two decades, in addition to the current COVID-19 pandemic that is severely damaging global health and the economy. Coronaviruses employ between twenty and thirty proteins to carry out their viral replication cycle including infection, immune evasion, and replication. Among these, nonstructural protein 16 (Nsp16), a 2'-O-methyltransferase, plays an essential role in immune evasion. Nsp16 achieves this by mimicking its human homolog, CMTr1, which methylates mRNA to enhance translation efficiency and distinguish self from other. Unlike human CMTr1, Nsp16 requires a binding partner, Nsp10, to activate its enzymatic activity. The requirement of this binding partner presents two questions that we investigate in this manuscript. First, how does Nsp10 activate Nsp16? While experimentally-derived structures of the active Nsp16/Nsp10 complex exist, structures of inactive, monomeric Nsp16 have yet to be solved. Therefore, it is unclear how Nsp10 activates Nsp16. Using over one millisecond of molecular dynamics simulations of both Nsp16 and its complex with Nsp10, we investigate how the presence of Nsp10 shifts Nsp16's conformational ensemble in order to activate it. Second, guided by this activation mechanism and Markov state models (MSMs), we investigate if Nsp16 adopts inactive structures with cryptic pockets that, if targeted with a small molecule, could inhibit Nsp16 by stabilizing its inactive state. After identifying such a pocket in SARS-CoV-2 Nsp16, we show that this cryptic pocket also opens in SARS-CoV-1 and MERS, but not in human CMTr1. Therefore, it may be possible to develop pan-coronavirus antivirals that target this cryptic pocket.
Statement Of Significance:
Coronaviruses are a major threat to human health. These viruses employ molecular machines, called proteins, to infect host cells and replicate. Characterizing the structure and dynamics of these proteins could provide a basis for designing small molecule antivirals. In this work, we use computer simulations to understand the moving parts of an essential SARS-CoV-2 protein, understand how a binding partner turns it on and off, and identify a novel pocket that antivirals could target to shut this protein off. The pocket is also present in other coronaviruses but not in the related human protein, so it could be a valuable target for pan-coronavirus antivirals.
Insights
Computer simulations reveal how SARS-CoV-2 nonstructural protein 16 (Nsp16) is activated by Nsp10. Researchers identified a cryptic pocket in Nsp16, a potential target for pan-coronavirus antivirals.
Area of Science:
- Virology
- Structural Biology
- Computational Biology
Background:
- Coronaviruses, including SARS-CoV-2, pose significant global health and economic threats.
- Nonstructural protein 16 (Nsp16), a viral 2'-O-methyltransferase, is crucial for coronavirus immune evasion.
- Nsp16 requires its binding partner, Nsp10, for enzymatic activation, a mechanism not fully understood.
Approach:
- Utilized over one millisecond of molecular dynamics simulations for Nsp16 and its complex with Nsp10.
- Employed Markov state models (MSMs) to analyze conformational changes and identify potential drug targets.
- Investigated the activation mechanism of Nsp16 by Nsp10 and explored Nsp16's inactive states.
Key Points:
- Nsp10 binding shifts Nsp16's conformational ensemble, elucidating its activation mechanism.
- A cryptic pocket was identified in inactive Nsp16 structures.
- This pocket is conserved across SARS-CoV-1 and MERS, but absent in the human homolog CMTr1.
Conclusions:
- The identified cryptic pocket represents a potential target for developing novel antiviral therapeutics.
- The conserved nature of this pocket across multiple coronaviruses suggests its utility for pan-coronavirus drug design.
- Understanding Nsp16 dynamics and activation is key to designing effective inhibitors.
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