Novel osmotin attenuates glutamate-induced synaptic dysfunction and neurodegeneration via the JNK/PI3K/Akt pathway in postnatal rat brain

  • Shah, S. A.; 
  • Lee, H. Y.; 
  • Bressan, R. A.; 
  • Yun, D. J.; 
  • Kim, M. O.
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초록

The glutamate-induced excitotoxicity pathway has been reported in several neurodegenerative diseases. Molecules that inhibit the release of glutamate or cause the overactivation of glutamate receptors can minimize neuronal cell death in these diseases. Osmotin, a homolog of mammalian adiponectin, is a plant protein from Nicotiana tabacum that was examined for the first time in the present study to determine its protective effects against glutamate-induced synaptic dysfunction and neurodegeneration in the rat brain at postnatal day 7. The results indicated that glutamate treatment induced excitotoxicity by overactivating glutamate receptors, causing synaptic dysfunction and neuronal apoptosis after 4 h in the cortex and hippocampus of the postnatal brain. In contrast, post-treatment with osmotin significantly reversed glutamate receptor activation, synaptic deficit and neuronal apoptosis by stimulating the JNK/PI3K/Akt intracellular signaling pathway. Moreover, osmotin treatment abrogated glutamate-induced DNA damage and apoptotic cell death and restored the localization and distribution of p53, p-Akt and caspase-3 in the hippocampus of the postnatal brain. Finally, osmotin inhibited glutamate-induced PI3K-dependent ROS production in vitro and reversed the cell viability decrease, cytotoxicity and caspase-3/7 activation induced by glutamate. Taken together, these results suggest that osmotin might be a novel neuroprotective agent in excitotoxic diseases.

키워드

glutamate; excitotoxicity; adiponectin; osmotin; neurodegeneration; ACTIVATED PROTEIN-KINASE; TRANSGENIC MOUSE MODEL; HIPPOCAMPAL SLICES; SIGNALING PATHWAYS; NITRIC-OXIDE; MEMBRANE PERMEABILIZATION; HUNTINGTONS-DISEASE; CELL-DEATH; KAPPA-B; RECEPTOR
제목
Novel osmotin attenuates glutamate-induced synaptic dysfunction and neurodegeneration via the JNK/PI3K/Akt pathway in postnatal rat brain
저자
Shah, S. A.; Lee, H. Y.; Bressan, R. A.; Yun, D. J.; Kim, M. O.
DOI
10.1038/cddis.2013.538
발행일
2014-01
유형
Article
저널명
Cell Death & Disease
권
5