Biophysical Characterization of α-Synuclein and Rotenone Interaction.

Biomolecules

Department of Molecular Medicine and USF Health Byrd Alzheimer's Research Institute, Morsani College of Medicine, University of South Florida; 12901 Bruce B. Downs Blvd., MDC 7, Tampa, FL 33612, USA.

Published: September 2013

AI Article Synopsis

  • Previous studies indicate that pesticides like rotenone can interact with α-synuclein, speeding up its fibrillation, a process linked to Parkinson's disease.
  • This research focuses on how rotenone specifically affects early misfolded forms of α-synuclein, using various assays to show that it accelerates the fibrillation process.
  • Techniques like ThT fluorescence, ATR-FTIR, TEM, and AFM provide evidence of altered structural properties and visualization of α-synuclein aggregates, improving our understanding of how rotenone contributes to its misfolding and aggregation.

Article Abstract

Previous studies revealed that pesticides interact with α-synuclein and accelerate the rate of fibrillation. These results are consistent with the prevailing hypothesis that the direct interaction of α-synuclein with pesticides is one of many suspected factors leading to α-synuclein fibrillation and ultimately to Parkinson's disease. In this study, the biophysical properties and fibrillation kinetics of α-synuclein in the presence of rotenone were investigated and, more specifically, the effects of rotenone on the early-stage misfolded forms of α-synuclein were considered. The thioflavine T (ThT) fluorescence assay studies provide evidence that early-phase misfolded α-synuclein forms are affected by rotenone and that the fibrillation process is accelerated. Further characterization by attenuated total reflectance Fourier transform infrared spectroscopy (ATR-FTIR) shows that rotenone increases the amount of ordered secondary structure in this intrinsically disordered protein. Morphological characterization by transmission electron microscopy (TEM) and atomic force microscopy (AFM) provide visualization of the differences in the aggregated α-synuclein species developing during the early kinetics of the fibrillation process in the absence and presence of rotenone. We believe that these data provide useful information for a better understanding of the molecular basis of rotenone-induced misfolding and aggregation of α-synuclein.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4030960PMC
http://dx.doi.org/10.3390/biom3030703DOI Listing

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