A New Class of Synthetic Peptide Inhibitors Blocks Attachment and Entry of Human Pathogenic Viruses

Many enveloped viruses, including herpes viruses, hepatitis B virus (HBV), and hepatitis C virus (HCV), and human immunodeficiency virus (HIV), are among the most important human pathogens and are often responsible for coinfections involving ≥2 types of viruses. However, therapies that are effective...

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Veröffentlicht in:The Journal of infectious diseases 2012-06, Vol.205 (11), p.1654-1664
Hauptverfasser: Krepstakies, Marcel, Lucifora, Julie, Nagel, Claus-Henning, Zeisel, Mirjam B., Holstermann, Barbara, Hohenberg, Heinrich, Kowalski, Ina, Gutsmann, Thomas, Baumert, Thomas F., Brandenburg, Klaus, Hauber, Joachim, Protzer, Ulrike
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Sprache:eng
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Zusammenfassung:Many enveloped viruses, including herpes viruses, hepatitis B virus (HBV), and hepatitis C virus (HCV), and human immunodeficiency virus (HIV), are among the most important human pathogens and are often responsible for coinfections involving ≥2 types of viruses. However, therapies that are effective against multiple virus classes are rare. Here we present a new class of synthetic anti-lipopolysaccharide peptides (SALPs) that bind to heparan sulfate moieties on the cell surface and inhibit infection with a variety of enveloped viruses. We demonstrate that SALPs inhibit entry of human immunodeficiency virus type 1 (HIV-1), herpes simplex virus (HSV) 1 and 2, HBV, and HCV to their respective host cells. Despite their high antiviral efficiency, SALPs were well tolerated, and neither toxicity nor measurable inhibitor-induced adverse effects were observed. Since these broad-spectrum antiviral peptides target a host cell rather than a viral component, they may also be useful for suppression of viruses that are resistant to antiviral drugs.
ISSN:0022-1899
1537-6613
DOI:10.1093/infdis/jis273