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The Resveratrol Trimer Miyabenol C Inhibits β-Secretase Activity and β-Amyloid Generation
Author(s) -
Jin Hu,
Ting Lin,
Yuehong Gao,
Junyue Xu,
Chao Jiang,
Guanghui Wang,
Guojun Bu,
Huaxi Xu,
Haifeng Chen,
Yunwu Zhang
Publication year - 2015
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0115973
Subject(s) - presenilin , amyloid precursor protein secretase , amyloid precursor protein , adam10 , resveratrol , alpha secretase , chemistry , nicastrin , gamma secretase , p3 peptide , trimer , bace1 as , amyloid (mycology) , in vivo , biochemistry , pathogenesis , biochemistry of alzheimer's disease , microbiology and biotechnology , alzheimer's disease , biology , enzyme , medicine , disease , metalloproteinase , immunology , disintegrin , inorganic chemistry , dimer , organic chemistry
Accumulation and deposition of amyloid-β peptide (Aβ) in the brain is a primary cause of the pathogenesis of Alzheimer’s disease (AD). Aβ is generated from amyloid-β precursor protein (APP) through sequential cleavages first by β-secretase and then by γ-secretase. Inhibiting β-secretase activity is believed to be one of the most promising strategies for AD treatment. In the present study, we found that a resveratrol trimer, miyabenol C, isolated from stems and leaves of the small-leaf grape ( Vitisthunbergii var . taiwaniana), can markedly reduce Aβ and sAPPβ levels in both cell cultures and the brain of AD model mice. Mechanistic studies revealed that miyabenol C affects neither protein levels of APP, the two major α-secretases ADAM10 and TACE, and the γ-secretase component Presenilin 1, nor γ-secretase-mediated Notch processing and TACE activity. In contrast, although miyabenol C has no effect on altering protein levels of the β-secretase BACE1, it can inhibit both in vitro and in vivo β-secretase activity. Together, our results indicate that miyabenol C is a prominent β-secretase inhibitor and lead compound for AD drug development.

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