Functionalized Fullerene for Inhibition of SARS‐CoV‐2 Variants

Author:

Page Taylor M.1ORCID,Nie Chuanxiong1ORCID,Neander Lenard12,Povolotsky Tatyana L.1,Sahoo Anil Kumar23ORCID,Nickl Philip14,Adler Julia M.56ORCID,Bawadkji Obida1ORCID,Radnik Jörg4ORCID,Achazi Katharina1ORCID,Ludwig Kai7ORCID,Lauster Daniel1ORCID,Netz Roland R.2ORCID,Trimpert Jakob56ORCID,Kaufer Benedikt56,Haag Rainer1ORCID,Donskyi Ievgen S.14ORCID

Affiliation:

1. Institut für Chemie und Biochemie Freie Universität Berlin Takustr. 3 14195 Berlin Germany

2. Physics Department Freie Universität Berlin Arnimallee 14 14195 Berlin Germany

3. Max Planck Institute of Colloids and Interfaces Am Mühlenberg 1 14476 Potsdam Germany

4. BAM – Federal Institute for Material Science and Testing Division of Surface Analysis and Interfacial Chemistry Unter den Eichen 44–46 12205 Berlin Germany

5. Institut für Virologie Freie Universität Berlin Robert‐von‐Ostertag‐Straße 7 14163 Berlin Germany

6. Tiermedizinischen Zentrum für Resistenzforschung (TZR) Freie Universität Berlin 14163 Berlin Germany

7. Forschungszentrum für Elektronenmikroskopie and Core Facility BioSupraMol Freie Universität Berlin Fabeckstraße 36A 14195 Berlin Germany

Abstract

AbstractAs virus outbreaks continue to pose a challenge, a nonspecific viral inhibitor can provide significant benefits, especially against respiratory viruses. Polyglycerol sulfates recently emerge as promising agents that mediate interactions between cells and viruses through electrostatics, leading to virus inhibition. Similarly, hydrophobic C60 fullerene can prevent virus infection via interactions with hydrophobic cavities of surface proteins. Here, two strategies are combined to inhibit infection of SARS‐CoV‐2 variants in vitro. Effective inhibitory concentrations in the millimolar range highlight the significance of bare fullerene's hydrophobic moiety and electrostatic interactions of polysulfates with surface proteins of SARS‐CoV‐2. Furthermore, microscale thermophoresis measurements support that fullerene linear polyglycerol sulfates interact with the SARS‐CoV‐2 virus via its spike protein, and highlight importance of electrostatic interactions within it. All‐atom molecular dynamics simulations reveal that the fullerene binding site is situated close to the receptor binding domain, within 4 nm of polyglycerol sulfate binding sites, feasibly allowing both portions of the material to interact simultaneously.

Funder

H2020 European Research Council

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

Reference83 articles.

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