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4-Hydroxycinnamic acid attenuates neuronal cell death by inducing expression of plasma membrane redox enzymes and improving mitochondrial functionsopen access

Authors
Park, S.[Park, S.]Kim, Y.A.[Kim, Y.A.]Lee, J.[Lee, J.]Seo, H.[Seo, H.]Nam, S.-J.[Nam, S.-J.]Jo, D.-G.[Jo, D.-G.]Hyun, D.-H.[Hyun, D.-H.]
Issue Date
Jul-2023
Publisher
KeAi Communications Co.
Keywords
4-Hydroxycinnamic acid; Cytochrome b5 reductase; Improved mitochondrial functions; NADH-quinone oxidoreductase 1 (NQO1); Neuroprotection
Citation
Food Science and Human Wellness, v.12, no.4, pp.1287 - 1299
Indexed
SCOPUS
Journal Title
Food Science and Human Wellness
Volume
12
Number
4
Start Page
1287
End Page
1299
URI
https://scholarworks.bwise.kr/skku/handle/2021.sw.skku/101014
DOI
10.1016/j.fshw.2022.10.011
ISSN
2213-4530
Abstract
Many approaches to neurodegenerative diseases that focus on amyloid-β clearance and gene therapy have not been successful. Some therapeutic applications focus on enhancing neuronal cell survival during the pathogenesis of neurodegenerative diseases, including mitochondrial dysfunction. Plasma membrane (PM) redox enzymes are crucial in maintaining cellular physiology and redox homeostasis in response to mitochondrial dysfunction. Neurohormetic phytochemicals are known to induce the expression of detoxifying enzymes under stress conditions. In this study, mechanisms of neuroprotective effects of 4-hydroxycinnamic acid (HCA) were examined by analyzing cell survival, levels of abnormal proteins, and mitochondrial functions in two different neuronal cells. HCA protected two neuronal cells exhibited high expression of PM redox enzymes and the consequent increase in the NAD+/NADH ratio. Cells cultured with HCA showed delayed apoptosis and decreased oxidative/nitrative damage accompanied by decreased ROS production in the mitochondria. HCA increased the mitochondrial complexes I and II activities and ATP production. Also, HCA increased mitochondrial fusion and decreased mitochondrial fission. Overall, HCA maintains redox homeostasis and energy metabolism under oxidative/metabolic stress conditions. These findings suggest that HCA could be a promising therapeutic approach for neurodegenerative diseases. © 2022
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