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Identification of a therapeutic interfering particle-A single-dose SARS-CoV-2 antiviral intervention with a high barrier to resistance.

Authors :
Chaturvedi, Sonali
Chaturvedi, Sonali
Vasen, Gustavo
Pablo, Michael
Chen, Xinyue
Beutler, Nathan
Kumar, Arjun
Tanner, Elizabeth
Illouz, Sylvia
Rahgoshay, Donna
Burnett, John
Holguin, Leo
Chen, Pei-Yi
Ndjamen, Blaise
Ott, Melanie
Rodick, Robert
Rogers, Thomas
Smith, Davey M
Weinberger, Leor S
Chaturvedi, Sonali
Chaturvedi, Sonali
Vasen, Gustavo
Pablo, Michael
Chen, Xinyue
Beutler, Nathan
Kumar, Arjun
Tanner, Elizabeth
Illouz, Sylvia
Rahgoshay, Donna
Burnett, John
Holguin, Leo
Chen, Pei-Yi
Ndjamen, Blaise
Ott, Melanie
Rodick, Robert
Rogers, Thomas
Smith, Davey M
Weinberger, Leor S
Source :
Cell; vol 184, iss 25, 6022-6036.e18; 0092-8674
Publication Year :
2021

Abstract

Viral-deletion mutants that conditionally replicate and inhibit the wild-type virus (i.e., defective interfering particles, DIPs) have long been proposed as single-administration interventions with high genetic barriers to resistance. However, theories predict that robust, therapeutic DIPs (i.e., therapeutic interfering particles, TIPs) must conditionally spread between cells with R0 >1. Here, we report engineering of TIPs that conditionally replicate with SARS-CoV-2, exhibit R0 >1, and inhibit viral replication 10- to 100-fold. Inhibition occurs via competition for viral replication machinery, and a single administration of TIP RNA inhibits SARS-CoV-2 sustainably in continuous cultures. Strikingly, TIPs maintain efficacy against neutralization-resistant variants (e.g., B.1.351). In hamsters, both prophylactic and therapeutic intranasal administration of lipid-nanoparticle TIPs durably suppressed SARS-CoV-2 by 100-fold in the lungs, reduced pro-inflammatory cytokine expression, and prevented severe pulmonary edema. These data provide proof of concept for a class of single-administration antivirals that may circumvent current requirements to continually update medical countermeasures against new variants.

Details

Database :
OAIster
Journal :
Cell; vol 184, iss 25, 6022-6036.e18; 0092-8674
Notes :
Cell vol 184, iss 25, 6022-6036.e18 0092-8674
Publication Type :
Electronic Resource
Accession number :
edsoai.on1367468404
Document Type :
Electronic Resource