TY - JOUR
T1 - Interferon-inducible phospholipids govern IFITM3-dependent endosomal antiviral immunity
AU - Unali, Giulia
AU - Crivicich, Giovanni
AU - Pagani, Isabel
AU - Abou-Alezz, Monah
AU - Folchini, Filippo
AU - Valeri, Erika
AU - Matafora, Vittoria
AU - Reisz, Julie A.
AU - Giordano, Anna Maria Sole
AU - Cuccovillo, Ivan
AU - Butta, Giacomo M.
AU - Donnici, Lorena
AU - D'Alessandro, Angelo
AU - De Francesco, Raffaele
AU - Manganaro, Lara
AU - Cittaro, Davide
AU - Merelli, Ivan
AU - Petrillo, Carolina
AU - Bachi, Angela
AU - Vicenzi, Elisa
AU - Kajaste-Rudnitski, Anna
N1 - Publisher Copyright:
© 2023 The Authors. Published under the terms of the CC BY NC ND 4.0 license.
PY - 2023/5/15
Y1 - 2023/5/15
N2 - The interferon-induced transmembrane proteins (IFITM) are implicated in several biological processes, including antiviral defense, but their modes of action remain debated. Here, taking advantage of pseudotyped viral entry assays and replicating viruses, we uncover the requirement of host co-factors for endosomal antiviral inhibition through high-throughput proteomics and lipidomics in cellular models of IFITM restriction. Unlike plasma membrane (PM)-localized IFITM restriction that targets infectious SARS-CoV2 and other PM-fusing viral envelopes, inhibition of endosomal viral entry depends on lysines within the conserved IFITM intracellular loop. These residues recruit Phosphatidylinositol 3,4,5-trisphosphate (PIP3) that we show here to be required for endosomal IFITM activity. We identify PIP3 as an interferon-inducible phospholipid that acts as a rheostat for endosomal antiviral immunity. PIP3 levels correlated with the potency of endosomal IFITM restriction and exogenous PIP3 enhanced inhibition of endocytic viruses, including the recent SARS-CoV2 Omicron variant. Together, our results identify PIP3 as a critical regulator of endosomal IFITM restriction linking it to the Pi3K/Akt/mTORC pathway and elucidate cell-compartment-specific antiviral mechanisms with potential relevance for the development of broadly acting antiviral strategies.
AB - The interferon-induced transmembrane proteins (IFITM) are implicated in several biological processes, including antiviral defense, but their modes of action remain debated. Here, taking advantage of pseudotyped viral entry assays and replicating viruses, we uncover the requirement of host co-factors for endosomal antiviral inhibition through high-throughput proteomics and lipidomics in cellular models of IFITM restriction. Unlike plasma membrane (PM)-localized IFITM restriction that targets infectious SARS-CoV2 and other PM-fusing viral envelopes, inhibition of endosomal viral entry depends on lysines within the conserved IFITM intracellular loop. These residues recruit Phosphatidylinositol 3,4,5-trisphosphate (PIP3) that we show here to be required for endosomal IFITM activity. We identify PIP3 as an interferon-inducible phospholipid that acts as a rheostat for endosomal antiviral immunity. PIP3 levels correlated with the potency of endosomal IFITM restriction and exogenous PIP3 enhanced inhibition of endocytic viruses, including the recent SARS-CoV2 Omicron variant. Together, our results identify PIP3 as a critical regulator of endosomal IFITM restriction linking it to the Pi3K/Akt/mTORC pathway and elucidate cell-compartment-specific antiviral mechanisms with potential relevance for the development of broadly acting antiviral strategies.
KW - IFITM
KW - SARS-CoV2
KW - innate immunity
KW - phosphatidylinositol 3,4,5-trisphosphate (PIP3)
KW - viral entry
UR - https://www.scopus.com/pages/publications/85150839917
U2 - 10.15252/embj.2022112234
DO - 10.15252/embj.2022112234
M3 - Article
AN - SCOPUS:85150839917
SN - 0261-4189
VL - 42
JO - EMBO Journal
JF - EMBO Journal
IS - 10
M1 - e112234
ER -