Virucidal nano-perforator of viral membrane trapping viral RNAs in the endosome

Membrane-disrupting agents that selectively target virus versus host membranes could potentially inhibit a broad-spectrum of enveloped viruses, but currently such antivirals are lacking. Here, we develop a nanodisc incorporated with a decoy virus receptor that inhibits virus infection. Mechanistical...

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Veröffentlicht in:Nature communications 2019-01, Vol.10 (1), p.185-10, Article 185
Hauptverfasser: Kong, Byoungjae, Moon, Seokoh, Kim, Yuna, Heo, Paul, Jung, Younghun, Yu, Seok-Hyeon, Chung, Jinhyo, Ban, Choongjin, Kim, Yong Ho, Kim, Paul, Hwang, Beom Jeung, Chung, Woo-Jae, Shin, Yeon-Kyun, Seong, Baik Lin, Kweon, Dae-Hyuk
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Sprache:eng
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Zusammenfassung:Membrane-disrupting agents that selectively target virus versus host membranes could potentially inhibit a broad-spectrum of enveloped viruses, but currently such antivirals are lacking. Here, we develop a nanodisc incorporated with a decoy virus receptor that inhibits virus infection. Mechanistically, nanodiscs carrying the viral receptor sialic acid bind to influenza virions and are co-endocytosed into host cells. At low pH in the endosome, the nanodiscs rupture the viral envelope, trapping viral RNAs inside the endolysosome for enzymatic decomposition. In contrast, liposomes containing a decoy receptor show weak antiviral activity due to the lack of membrane disruption. The nanodiscs inhibit influenza virus infection and reduce morbidity and mortality in a mouse model. Our results suggest a new class of antivirals applicable to other enveloped viruses that cause irreversible physical damage specifically to virus envelope by viruses’ own fusion machine. In conclusion, the lipid nanostructure provides another dimension for antiviral activity of decoy molecules. Membrane-disrupting agents that selectively target virus versus host membranes could potentially be potent antivirals. Here the authors incorporate a decoy virus receptor into a nanodisc and show that it ruptures the viral membrane at low pH and traps viral RNAs in the endolysosome for degradation.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-018-08138-1