β-Amyloid and α-Synuclein Cooperate To Block SNARE-Dependent Vesicle Fusion
Author(s) -
Bong-Kyu Choi,
Jae-Yeol Kim,
Moon-Yong Cha,
Inhee MookJung,
Yeon-Kyun Shin,
Nam Ki Lee
Publication year - 2015
Publication title -
biochemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.43
H-Index - 253
eISSN - 1520-4995
pISSN - 0006-2960
DOI - 10.1021/acs.biochem.5b00087
Subject(s) - vesicle , amyloid (mycology) , lipid bilayer fusion , snap25 , chemistry , vesicle fusion , fusion , microbiology and biotechnology , alpha synuclein , amyloid fibril , synaptic vesicle , amyloid β , biology , medicine , biochemistry , membrane , parkinson's disease , pathology , disease , inorganic chemistry , linguistics , philosophy
Alzheimer's disease (AD) and Parkinson's disease (PD) are caused by β-amyloid (Aβ) and α-synuclein (αS), respectively. Ample evidence suggests that these two pathogenic proteins are closely linked and have a synergistic effect on eliciting neurodegenerative disorders. However, the pathophysiological consequences of Aβ and αS coexistence are still elusive. Here, we show that large-sized αS oligomers, which are normally difficult to form, are readily generated by Aβ42-seeding and that these oligomers efficiently hamper neuronal SNARE-mediated vesicle fusion. The direct binding of the Aβ-seeded αS oligomers to the N-terminal domain of synaptobrevin-2, a vesicular SNARE protein, is responsible for the inhibition of fusion. In contrast, large-sized Aβ42 oligomers (or aggregates) or the products of αS incubated without Aβ42 have no effect on vesicle fusion. These results are confirmed by examining PC12 cell exocytosis. Our results suggest that Aβ and αS cooperate to escalate the production of toxic oligomers, whose main toxicity is the inhibition of vesicle fusion and consequently prompts synaptic dysfunction.
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