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Updated: Oct 17, 2025

A Method to Study α-Synuclein Toxicity and Aggregation Using a Humanized Yeast Model
Published on: November 25, 2022
Crocin Inhibits the Fibrillation of Human α-synuclein and Disassembles Mature Fibrils: Experimental Findings and
Babak Saffari1, Mehriar Amininasab1
1Department of Cell and Molecular Biology, School of Biology, College of Science, University of Tehran, Tehran 14155-6455, Iran.
Abstract:
The aggregation of human alpha-synuclein (hαS) is pivotally implicated in the development of most types of synucleinopathies. Molecules that can inhibit or reverse the aggregation process of amyloidogenic proteins have potential therapeutic value. The anti-aggregating activity of multiple carotenoid compounds has been reported over the past decades against a growing list of amyloidogenic polypeptides. Here, we aimed to determine whether crocin, the main carotenoid glycoside component of saffron, would inhibit hαS aggregation or could disassemble its preformed fibrils. By employing a series of biochemical and biophysical techniques, crocin was exhibited to inhibit hαS fibrillation in a dose-dependent fashion by stabilizing very early aggregation intermediates in off-pathway non-toxic conformations with little β-sheet content. We also observed that crocin at high concentrations could efficiently destabilize mature fibrils and disassemble them into seeding-incompetent intermediates by altering their β-sheet conformation and reshaping their structure. Our atomistic molecular dynamics (MD) simulations demonstrated that crocin molecules bind to both the non amyloid-β component (NAC) region and C-terminal domain of hαS. These interactions could thereby stabilize the autoinhibitory conformation of the protein and prevent it from adopting aggregation-prone structures. MD simulations further suggested that ligand molecules prefer to reside longitudinally along the fibril axis onto the edges of the inter-protofilament interface where they establish hydrogen and hydrophobic bonds with steric zipper stabilizing residues. These interactions turned out to destabilize hαS fibrils by altering the interstrand twist angles, increasing the rigidity of the fibril core, and elevating its radius of gyration. Our findings suggest the potential pharmaceutical implication of crocin in synucleinopathies.
Insights
Crocin, a saffron component, inhibits human alpha-synuclein (hαS) aggregation and disassembles preformed fibrils. This suggests crocin
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Synucleinopathies, like Parkinson's disease, are linked to human alpha-synuclein (hαS) aggregation.
- Carotenoids show anti-amyloidogenic properties against various protein aggregates.
- Crocin is a primary carotenoid glycoside found in saffron.
Purpose of the Study:
- To investigate crocin's effect on hαS aggregation and fibril disassembly.
- To explore the molecular mechanisms underlying crocin's anti-aggregation activity.
Main Methods:
- Biochemical and biophysical assays to assess hαS aggregation.
- Atomistic molecular dynamics (MD) simulations to model protein-ligand interactions.
- Analysis of fibril structure, conformation, and stability.
Main Results:
- Crocin dose-dependently inhibited hαS fibrillation by stabilizing non-toxic intermediates.
- Crocin disassembled mature hαS fibrils by altering their β-sheet conformation.
- MD simulations revealed crocin binding to NAC and C-terminal regions, stabilizing hαS and destabilizing fibrils.
Conclusions:
- Crocin demonstrates significant potential for treating synucleinopathies.
- Crocin's dual action on hαS aggregation and fibril destabilization offers therapeutic promise.
- Understanding crocin-hαS interactions provides insights into synucleinopathy mechanisms.
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