bioRxiv · 10.1101/2020.08.12.248492
Aβ-induced NOX2 activation underlies oxidative stress leading to brain hypometabolism and hyperactivity in Alzheimer's disease
Abstract
A predominant trigger and driver of sporadic Alzheimers disease (AD) is the synergy of brain oxidative stress and glucose hypometabolism starting at early preclinical stages. Oxidative stress damages macromolecules, while glucose hypometabolism impairs cellular energy supply and antioxidant defense. However, the exact cause of AD-associated glucose hypometabolism and its network consequences has remained unknown. Here we report NADPH oxidase 2 (NOX2) activation as the main initiating mechanism behind A{beta}1-42-related glucose hypometabolism and network dysfunction. We utilize a combination of electrophysiology with real-time recordings of metabolic transients both ex- and in-vivo to show that A{beta}1-42 induces oxidative stress and acutely reduces cellular glucose consumption followed by long-lasting network hyperactivity and abnormalities in the animal behavioral profile. Critically, all of these pathological changes were prevented by the novel bioavailable NOX2 antagonist GSK2795039. Our data provide the first direct experimental evidence for causes and consequences of AD-related brain glucose hypometabolism, and suggest that targeting NOX2-mediated oxidative stress is a promising approach to both the prevention and treatment of AD. Single sentence summaryBeta-amyloid induces brain hypometabolism, network hyperactivity, and behavioral changes via NADPH oxidase-mediated oxidative stress, suggesting a novel therapeutic target for Alzheimers disease treatment.
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Malkov, A., Popova, I., Ivanov, A., Jang, S.-S., Yoon, S. Y., Osipov, A., Huang, Y., Zilberter, Y., Zilberter, M.. 2020-08-13. Aβ-induced NOX2 activation underlies oxidative stress leading to brain hypometabolism and hyperactivity in Alzheimer's disease. https://doi.org/10.1101/2020.08.12.248492
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