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Cited 202 time in webofscience Cited 207 time in scopus
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Inhibition of Drp1 Ameliorates Synaptic Depression, A beta Deposition, and Cognitive Impairment in an Alzheimer's Disease Modelopen access

Authors
Baek, Seung HyunPark, So JungJeong, Jae InKim, Sung HyunHan, JihoonKyung, Jae WonBaik, Sang-HaChoi, YuriChoi, Bo YounPark, Jin SuBahn, GaheeShin, Ji HyunJo, Doo SinLee, Joo-YongJang, Choon-GonArumugam, Thiruma V.Kim, JongpilHan, Jeung-WhanKoh, Jae-YoungCho, Dong-HyungJo, Dong-Gyu
Issue Date
17-May-2017
Publisher
SOC NEUROSCIENCE
Keywords
Alzheimer's; amyloid; Drp1; mitochondria; synaptic depression
Citation
JOURNAL OF NEUROSCIENCE, v.37, no.20, pp 5099 - 5110
Pages
12
Indexed
SCI
SCIE
SCOPUS
Journal Title
JOURNAL OF NEUROSCIENCE
Volume
37
Number
20
Start Page
5099
End Page
5110
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/14903
DOI
10.1523/JNEUROSCI.2385-16.2017
ISSN
0270-6474
1529-2401
Abstract
Excessive mitochondrial fission is a prominent early event and contributes to mitochondrial dysfunction, synaptic failure, and neuronal cell death in the progression of Alzheimer's disease (AD). However, it remains to be determined whether inhibition of excessive mitochondrial fission is beneficial in mammal models of AD. To determine whether dynamin-related protein 1 (Drp1), a key regulator of mitochondrial fragmentation, can be a disease-modifying therapeutic target for AD, we examined the effects of Drp1 inhibitor on mitochondrial and synaptic dysfunctions induced by oligomeric amyloid-beta(A beta) in neurons and neuropathology and cognitive functions in A beta precursor protein/presenilin 1 double-transgenic AD mice. Inhibition of Drp1 alleviates mitochondrial fragmentation, loss of mitochondrial membrane potential, reactive oxygen species production, ATP reduction, and synaptic depression in A beta-treated neurons. Furthermore, Drp1 inhibition significantly improves learning and memory and prevents mitochondrial fragmentation, lipid peroxidation, BACE1 expression, and A beta deposition in the brain in the AD model. These results provide evidence that Drp1 plays an important role in A beta-mediated and AD-related neuropathology and in cognitive decline in an AD animal model. Therefore, inhibiting excessive Drp1-mediated mitochondrial fission may be an efficient therapeutic avenue for AD.
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