The Transthyretin/Oleuropein Aglycone Complex: A New Tool against TTR Amyloidosis
Francesco Bemporad1, Manuela Leri1, Matteo Ramazzotti1
1Department of Experimental and Clinical Biomedical Sciences "Mario Serio", University of Florence, Viale Morgagni 50, 50134 Florence, Italy.
Abstract:
The release of monomers from the homotetrameric protein transthyretin (TTR) is the first event of a cascade, eventually leading to sporadic or familial TTR amyloidoses. Thus, ligands able to stabilize TTR and inhibit monomer release are subject of intense scrutiny as potential treatments against these pathologies. Here, we investigated the interaction between TTR and a non-glycated derivative of the main olive polyphenol, oleuropein (OleA), known to interfere with TTR aggregation. We coupled fluorescence studies with molecular docking to investigate the OleA/TTR interaction using wild-type TTR, a monomeric variant, and the L55P cardiotoxic mutant. We characterized a fluorescence band emitted by OleA upon formation of the OleA/TTR complex. Exploiting this signal, we found that a poorly specific non-stoichiometric interaction occurs on the surface of the protein and a more specific stabilizing interaction takes place in the ligand binding pocket of TTR, exhibiting a K of 3.23 ± 0.32 µM, with two distinct binding sites. OleA interacts with TTR in different modes, stabilizing it and preventing its dissociation into monomers, with subsequent misfolding. This result paves the way to the possible use of OleA to prevent degenerative diseases associated with TTR misfolding.
Insights
Oleuropein derivative (OleA) stabilizes transthyretin (TTR), preventing toxic monomer release. This polyphenol interaction offers a potential therapeutic strategy against TTR amyloidosis diseases.
Area of Science:
- Biochemistry
- Pharmacology
- Structural Biology
Background:
- Transthyretin (TTR) stabilization is crucial for treating TTR amyloidoses.
- Ligands inhibiting TTR monomer release are key therapeutic targets.
Purpose of the Study:
- Investigate the interaction between TTR and oleuropein derivative (OleA).
- Determine OleA's potential to stabilize TTR and prevent amyloidogenesis.
Main Methods:
- Fluorescence spectroscopy
- Molecular docking
- Utilized wild-type TTR, monomeric variant, and L55P mutant.
Main Results:
- Identified specific and non-specific binding modes of OleA to TTR.
- Quantified a high-affinity interaction (Kd = 3.23 ± 0.32 µM) within the TTR binding pocket.
- Demonstrated OleA's ability to stabilize TTR and inhibit monomer dissociation.
Conclusions:
- OleA effectively binds and stabilizes TTR, preventing monomer release and subsequent misfolding.
- OleA represents a promising therapeutic agent for preventing TTR-related degenerative diseases.


