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Production of Disulfide-stabilized Transmembrane Peptide Complexes for Structural Studies
Published on: March 6, 2013
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.
Abstract:
Measles remains one of the leading causes of child mortality worldwide and is re-emerging in some countries due to poor vaccine coverage, concomitant with importation of measles virus (MV) from endemic areas. The lack of specific chemotherapy contributes to negative outcomes, especially in infants or immunodeficient individuals. Fusion inhibitor peptides derived from the MV Fusion protein C-terminal Heptad Repeat (HRC) targeting MV envelope fusion glycoproteins block infection at the stage of entry into host cells, thus preventing viral multiplication. To improve efficacy of such entry inhibitors, we have modified a HRC peptide inhibitor by introducing properties of self-assembly into nanoparticles (NP) and higher affinity for both viral and cell membranes. Modification of the peptide consisted of covalent grafting with tocopherol to increase amphipathicity and lipophilicity (HRC5). One additional peptide inhibitor consisting of a peptide dimer grafted to tocopherol was also used (HRC6). Spectroscopic, imaging, and simulation techniques were used to characterize the NP and explore the molecular basis for their antiviral efficacy. HRC5 forms micellar stable NP while HRC6 aggregates into amorphous, loose, unstable NP. Interpeptide cluster bridging governs NP assembly into dynamic metastable states. The results are consistent with the conclusion that the improved efficacy of HRC6 relative to HRC5 can be attributed to NP instability, which leads to more extensive partition to target membranes and binding to viral target proteins.
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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