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Published on: January 24, 2016
Cholesterol Binds the Amphipathic Helix of IFITM3 and Regulates Antiviral Activity
Kazi Rahman1, Siddhartha A K Datta1, Andrew H Beaven2
1HIV Dynamics and Replication Program, Center for Cancer Research, National Cancer Institute, Frederick, MD 21702, United States.
Abstract:
The interferon-induced transmembrane (IFITM) proteins broadly inhibit the entry of diverse pathogenic viruses, including Influenza A virus (IAV), Zika virus, HIV-1, and SARS coronaviruses by inhibiting virus-cell membrane fusion. IFITM3 was previously shown to disrupt cholesterol trafficking, but the functional relationship between IFITM3 and cholesterol remains unclear. We previously showed that inhibition of IAV entry by IFITM3 is associated with its ability to promote cellular membrane rigidity, and these activities are functionally linked by a shared requirement for the amphipathic helix (AH) found in the intramembrane domain (IMD) of IFITM3. Furthermore, it has been shown that the AH of IFITM3 alters lipid membranes in vitro in a cholesterol-dependent manner. Therefore, we aimed to elucidate the relationship between IFITM3 and cholesterol in more detail. Using a fluorescence-based in vitro binding assay, we found that a peptide derived from the AH of IFITM3 directly interacted with the cholesterol analog, NBD-cholesterol, while other regions of the IFITM3 IMD did not, and native cholesterol competed with this interaction. In addition, recombinant full-length IFITM3 protein also exhibited NBD-cholesterol binding activity. Importantly, previously characterized mutations within the AH of IFITM3 that strongly inhibit antiviral function (F63Q and F67Q) disrupted AH structure in solution, inhibited cholesterol binding in vitro, and restricted bilayer insertion in silico. Our data suggest that direct interactions with cholesterol may contribute to the inhibition of membrane fusion pore formation by IFITM3. These findings may facilitate the design of therapeutic peptides for use in broad-spectrum antiviral therapy.
Insights
Interferon-induced transmembrane IFITM3 protein directly binds cholesterol via its amphipathic helix. This interaction is crucial for IFITM3
Area of Science:
- Virology
- Cell Biology
- Biochemistry
Background:
- Interferon-induced transmembrane (IFITM) proteins, particularly IFITM3, broadly inhibit viral entry by interfering with virus-cell membrane fusion.
- Previous studies indicated IFITM3 disrupts cholesterol trafficking and increases membrane rigidity, but the direct link to cholesterol remained unclear.
Purpose of the Study:
- To investigate the detailed relationship between IFITM3 and cholesterol in viral entry inhibition.
- To determine if IFITM3 directly interacts with cholesterol and if this interaction is essential for its antiviral function.
Main Methods:
- Utilized a fluorescence-based in vitro binding assay with a cholesterol analog (NBD-cholesterol) and peptides/proteins derived from IFITM3.
- Employed in silico methods to assess bilayer insertion of IFITM3 mutants.
- Investigated the effect of known antiviral-disrupting mutations (F63Q, F67Q) on IFITM3 structure, cholesterol binding, and membrane interaction.
Main Results:
- A peptide from IFITM3's amphipathic helix (AH) directly bound NBD-cholesterol in vitro; native cholesterol competed with this binding.
- Recombinant full-length IFITM3 protein also demonstrated NBD-cholesterol binding.
- Mutations in the AH (F63Q, F67Q) that impair antiviral activity disrupted AH structure, reduced cholesterol binding, and hindered bilayer insertion.
Conclusions:
- Direct interaction between IFITM3 and cholesterol, mediated by its amphipathic helix, is critical for its antiviral mechanism.
- This cholesterol binding likely contributes to IFITM3's ability to inhibit membrane fusion pore formation.
- Findings support the potential development of therapeutic peptides targeting this interaction for broad-spectrum antiviral therapies.
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