A coronavirus assembly inhibitor that targets the viral membrane protein.

一种针对病毒膜蛋白的冠状病毒组装抑制剂

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作者:Laporte Manon, Jochmans Dirk, Bardiot Dorothée, Desmarets Lowiese, Debski-Antoniak Oliver J, Mizzon Giulia, Abdelnabi Rana, Leyssen Pieter, Chiu Winston, Zhang Zhikuan, Nomura Norimichi, Boland Sandro, Ohto Umeharu, Stahl Yannick, Wuyts Jurgen, De Jonghe Steven, Stevaert Annelies, van Hemert Martijn J, Bontes Brenda W, Wanningen Patrick, Groenewold G J Mirjam, Zegar Aneta, Owczarek Katarzyna, Joshi Sanjata, Koukni Mohamed, Arzel Philippe, Klaassen Hugo, Vanherck Jean-Christophe, Vandecaetsbeek Ilse, Cremers Niels, Donckers Kim, Francken Thibault, Van Buyten Tina, Rymenants Jasper, Schepers Joost, Pyrc Krzysztof, Hilgenfeld Rolf, Dubuisson Jean, Bosch Berend-Jan, Van Kuppeveld Frank, Eydoux Cecilia, Decroly Etienne, Canard Bruno, Naesens Lieve, Weynand Birgit, Snijder Eric J, Belouzard Sandrine, Shimizu Toshiyuki, Bartenschlager Ralf, Hurdiss Daniel L, Marchand Arnaud, Chaltin Patrick, Neyts Johan
The coronavirus membrane protein (M) is the main organizer of coronavirus assembly(1-3). Here, we report on an M-targeting molecule, CIM-834, that blocks the assembly of SARS-CoV-2. CIM-834 was obtained through high-throughput phenotypic antiviral screening followed by medicinal-chemistry efforts and target elucidation. CIM-834 inhibits the replication of SARS-CoV-2 (including a broad panel of variants) and SARS-CoV. In SCID mice and Syrian hamsters intranasally infected with SARS-CoV-2, oral treatment reduced lung viral titres to nearly undetectable levels, even (as shown in mice) when treatment was delayed until 24 h before the end point. Treatment of infected hamsters prevented transmission to untreated sentinels. Transmission electron microscopy studies show that virion assembly is completely absent in cells treated with CIM-834. Single-particle cryo-electron microscopy reveals that CIM-834 binds and stabilizes the M protein in its short form, thereby preventing the conformational switch to the long form, which is required for successful particle assembly. In conclusion, we have discovered a new druggable target in the replication cycle of coronaviruses and a small molecule that potently inhibits it.

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