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.

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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