Literature DB >> 19577336

Peroxiredoxin II preserves cognitive function against age-linked hippocampal oxidative damage.

Sun-Uk Kim1, Mei-Hua Jin, Yoon Sik Kim, Sang-Hee Lee, Yee Sook Cho, Kyoung-Joo Cho, Kyu-Sun Lee, Yang In Kim, Gyung Whan Kim, Jin-Man Kim, Tae-Hoon Lee, Young-Ho Lee, Minho Shong, Hyung-Chun Kim, Kyu-Tae Chang, Dae-Yeul Yu, Dong-Seok Lee.   

Abstract

Reactive oxygen species (ROS), routinely produced in biological reactions, contribute to both normal aging and age-related decline in cognitive function. However, little is known regarding the involvement of specific antioxidants in the underlying mechanism(s). Here, we examined if peroxiredoxin II (Prx II) scavenges intracellular ROS that cause age-dependent mitochondrial decay in hippocampal CA1 pyramidal neurons and subsequent impairment of learning and memory. Age-dependent mitochondrial ROS generation and long-term potentiation (LTP) decline were more prominent in hippocampal neurons in Prx II(-/-) than in wild-type mice. Additionally, Prx II(-/-) mice failed to activate synaptic plasticity-related cellular signaling pathways involving CREB, CaMKII, and ERK, or to maintain functional integrity of their mitochondria. Dietary vitamin E alleviated Prx II deficiency-related deficits, including mitochondrial decay and CREB signaling, resulting in restoration of the abrupt cognitive decline in aged Prx II(-/-) mice. These results suggest that Prx II help maintain hippocampal synaptic plasticity against age-related oxidative damage.
Copyright © 2009 Elsevier Inc. All rights reserved.

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Year:  2009        PMID: 19577336     DOI: 10.1016/j.neurobiolaging.2009.05.017

Source DB:  PubMed          Journal:  Neurobiol Aging        ISSN: 0197-4580            Impact factor:   4.673


  19 in total

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