Bat IFITM3 restriction depends on S-palmitoylation and a polymorphic site within the CD225 domain

Author:

Benfield Camilla TO1ORCID,MacKenzie Farrell2,Ritzefeld Markus3,Mazzon Michela2ORCID,Weston Stuart2,Tate Edward3ORCID,Teo Boon Han1,Smith Sarah E4,Kellam Paul54ORCID,Holmes Edward C6,Marsh Mark2ORCID

Affiliation:

1. Department of Pathobiology and Population Sciences, Royal Veterinary College, University of London, London, UK

2. Medical Research Council Laboratory for Molecular Cell Biology, University College London, London, UK

3. Department of Chemistry, Imperial College London, London, UK

4. Kymab Ltd, The Bennet Building (B930), Babraham Research Campus, Cambridge, UK

5. Department of Infectious Disease, Imperial College Faculty of Medicine, Wright Fleming Institute, St Mary’s Campus, London, UK

6. Marie Bashir Institute for Infectious Diseases and Biosecurity, Charles Perkins Centre, School of Life and Environmental Sciences and Sydney Medical School, The University of Sydney, Sydney, New South Wales, Australia

Abstract

Host interferon-induced transmembrane proteins (IFITMs) are broad-spectrum antiviral restriction factors. Of these, IFITM3 potently inhibits viruses that enter cells through acidic endosomes, many of which are zoonotic and emerging viruses with bats (order Chiroptera) as their natural hosts. We previously demonstrated that microbat IFITM3 is antiviral. Here, we show that bat IFITMs are characterized by strong adaptive evolution and identify a highly variable and functionally important site—codon 70—within the conserved CD225 domain of IFITMs. Mutation of this residue in microbat IFITM3 impairs restriction of representatives of four different virus families that enter cells via endosomes. This mutant shows altered subcellular localization and reduced S-palmitoylation, a phenotype copied by mutation of conserved cysteine residues in microbat IFITM3. Furthermore, we show that microbat IFITM3 is S-palmitoylated on cysteine residues C71, C72, and C105, mutation of each cysteine individually impairs virus restriction, and a triple C71A-C72A-C105A mutant loses all restriction activity, concomitant with subcellular re-localization of microbat IFITM3 to Golgi-associated sites. Thus, we propose that S-palmitoylation is critical for Chiropteran IFITM3 function and identify a key molecular determinant of IFITM3 S-palmitoylation.

Funder

UK Medical Research Council

Cancer Research UK

Seventh Framework Programme of the European Union

The Leverhulme Trust

Publisher

Life Science Alliance, LLC

Subject

Health, Toxicology and Mutagenesis,Plant Science,Biochemistry, Genetics and Molecular Biology (miscellaneous),Ecology

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