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Wilt, I.

Publications and source records attributed to Wilt, I..

3 recordsLinked to original sources

IFITM1 and IFITM3 cooperate to restrict virus entry in endolysosomes

Interferon-induced transmembrane (IFITM) proteins are potent innate immune factors that restrict an array of viruses at the entry stage of infection. We previously characterized a GxxxG motif in the CD225 domain of human IFITM3 that mediates its multimerization, which is essential for the reduction of membrane fluidity by IFITM3 and for its antiviral activity against Influenza A virus. Here, using an unbiased approach coupling immunoprecipitation with mass spectrometry, we show that the GxxxG motif is also important for the interaction of IFITM3 with other proteins, including IFITM1. While IFITM1 is primarily regarded as a cell surface protein that restricts the entry of viruses fusing at the plasma membrane, this model is based mostly on overexpression studies and is at odds with some studies showing that it can restrict endocytic viruses. Here, we show that endogenous IFITM1 and IFITM3 co-reside in membranes of acidic late endosomes and lysosomes (endolysosomes) and form a protein-protein complex as determined by co-immunoprecipitation and proximity ligation assay. Knockdown of endogenous IFITM3 resulted in enhanced localization of IFITM1 at the plasma membrane, indicating that IFITM3 promotes IFITM1 localization to endolysosomes. To assess the antiviral protection conferred by endogenous IFITM1 and IFITM3 against viruses fusing at endolysosomal membranes, we measured cell entry mediated by the Influenza A fusogen hemagglutinin (HA). While knockdown of IFITM3 significantly boosted HA-mediated entry, combined knockdown of both IFITM3 and IFITM1 boosted entry even further. These results suggest that endogenous IFITM1 restricts Influenza A virus entry in a manner that is non-redundant with IFITM3, and that IFITM1 and IFITM3 inhibit virus entry in a cooperative manner.

microbiology↗

Restriction of HIV-1 infectivity by interferon and IFITM3 is counteracted by Nef

The viral accessory protein Nef is a major determinant of HIV-1 pathogenicity in vivo. Nef is a multifunctional, immunomodulatory protein that downmodulates cell surface proteins, including CD4 and MHC class I (MHC-I) important for T-cell-mediated immunity. In addition, Nef also regulates cell-intrinsic immunity--Nef boosts the infectivity of virions produced and released from HIV-infected cells, at least in part, by counteracting the antiviral activity of transmembrane proteins SERINC3 and SERINC5. However, it has been reported that the enhancement of HIV-1 infectivity by Nef persists in certain cell lines deficient for SERINC3/5, revealing the existence of other Nef-sensitive host factors that impact HIV-1 infectivity. Here, we show that Nef proteins, especially those derived from many primary isolates of HIV-1, restore infectivity in interferon-treated cells and confer resistance to interferon-induced transmembrane protein 3 (IFITM3). IFITM3 is a restriction factor that reduces retroviral infectivity by incorporating into virions, inhibiting Envelope glycoprotein function, and reducing entry into cells. Using a primary isolate of Nef derived from HIV-1 clade C, we found that Nef interacts with IFITM3 in membranes and uses the endocytic adaptor protein AP-2 to counteract it. Furthermore, Nef reduced IFITM3 cell surface levels, increased IFITM3 levels in early endosomes, and reduced IFITM3 incorporation into HIV-1 virions. Nef also impaired IFITM3 oligomerization and restored membrane fluidity in IFITM3-expressing cells. The antiviral activity of IFITM3 and its inhibition by Nef were unaffected by SERINC5 knockdown, suggesting that the counteraction of IFITM3 represents a unique function of Nef. Our findings reveal a previously unrecognized immunomodulatory role for Nef in the setting of the interferon-induced antiviral state during HIV-1 infection.

microbiology↗

SNARE mimicry by the CD225 domain of IFITM3 enables regulation of homotypic late endosome fusion

The CD225/Dispanins superfamily consists of membrane proteins that regulate vesicular transport and membrane fusion events driving neurotransmission, glucose transport, and antiviral immunity. However, how the CD225 domain controls membrane trafficking was unknown. We reveal that the CD225 domain contains a SNARE-like motif that enables interaction with cellular SNARE fusogens. Proline rich transmembrane protein 2 (PRRT2) encodes a SNARE-like motif that enables interaction with neuronal SNARE proteins, and mutations therein disrupt SNARE binding and are linked to neurological disease. Another CD225 member, interferon-induced transmembrane protein 3 (IFITM3), protects cells against Influenza A virus infection. IFITM3 interacts with SNARE proteins that mediate late endosome-late endosome (homotypic) fusion and late endosome-lysosome (heterotypic) fusion. IFITM3 binds to syntaxin 7 (STX7) in cells and in vitro, and mutations that abrogate STX7 binding cause loss of antiviral activity against Influenza A virus. Mechanistically, IFITM3 disrupts assembly of the SNARE complex controlling homotypic fusion and accelerates the trafficking of endosomal cargo to lysosomes. Our results suggest that SNARE modulation plays a previously unrecognized role in the diverse functions performed by CD225 proteins.

cell biology↗