Structure-Stability-Function Mechanistic Links in the Anti-Measles Virus Action of Tocopherol-Derivatized Peptide

Tiago N Figueira1, Diogo A Mendonça1, Diana Gaspar1

  • 1Instituto de Medicina Molecular, Faculdade de Medicina , Universidade de Lisboa , 1649-028 Lisbon , Portugal.

ACS Nano
|September 20, 2018
PubMed

Insights

New measles virus (MV) entry inhibitors, developed as self-assembling nanoparticles, show improved efficacy. Unstable nanoparticles (HRC6) demonstrate greater antiviral activity by enhancing membrane interaction and viral protein binding.

Area of Science:

  • Virology
  • Nanotechnology
  • Drug Delivery

Background:

  • Measles virus (MV) causes significant global child mortality and re-emergence due to low vaccination rates.
  • Lack of effective chemotherapy for measles necessitates novel antiviral strategies, particularly for vulnerable populations.

Purpose of the Study:

  • To enhance the efficacy of measles virus fusion inhibitor peptides by incorporating self-assembly into nanoparticles (NPs).
  • To investigate the molecular mechanisms underlying the improved antiviral activity of modified peptides.

Main Methods:

  • Covalent grafting of tocopherol to HRC peptides to create amphipathic HRC5 and dimeric HRC6.
  • Characterization of nanoparticle formation, stability, and membrane interactions using spectroscopic, imaging, and simulation techniques.

Main Results:

  • HRC5 formed stable micellar nanoparticles, while HRC6 formed unstable, amorphous nanoparticles.
  • NP assembly was governed by interpeptide bridging, leading to dynamic metastable states.
  • HRC6 exhibited enhanced antiviral efficacy compared to HRC5, attributed to NP instability and increased membrane/protein interactions.

Conclusions:

  • Unstable nanoparticles (HRC6) show superior antiviral potential against measles virus.
  • Nanoparticle instability enhances drug partitioning to target membranes and binding to viral proteins, improving therapeutic efficacy.

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