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    Please use this identifier to cite or link to this item: http://ir.nhri.org.tw/handle/3990099045/11951


    Title: Pifithrin-alpha reduces methamphetamine neurotoxicity in cultured dopaminergic neurons
    Other Titles: Pifithrin-α Reduces Methamphetamine Neurotoxicity in Cultured Dopaminergic Neurons
    Authors: Chen, YH;Bae, E;Chen, H;Yu, SJ;Harvey, BK;Greig, NH;Wang, Y
    Contributors: Center for Neuropsychiatric Research
    Abstract: Methamphetamine (Meth) is a widely abused stimulant. High-dose Meth induces degeneration of dopaminergic neurons through p53-mediated apoptosis. A recent study indicated that treatment with the p53 inhibitor, pifithrin-alpha (PFT-alpha), antagonized Meth-mediated behavioral deficits in mice. The mechanisms underpinning the protective action of PFT-alpha against Meth have not been identified, and hence, their investigation is the focus of this study. Primary dopaminergic neuronal cultures were prepared from rat embryonic ventral mesencephalic tissue. High-dose Meth challenge reduced tyrosine hydroxylase immunoreactivity and increased terminal deoxynucleotidyl transferase-mediated dNTP nick-end labeling (TUNEL) labeling. PFT-alpha significantly antagonized these responses. PFT-alpha also reduced Meth-activated translocation of p53 to the nucleus, an initial step before transcription. Previous studies have indicated that p53 can also activate cell death through transcription-independent pathways. We found that PFT-alpha attenuated endoplasmic reticulum (ER) stressor thapsigargin (Tg)-mediated loss of dopaminergic neurons. ER stress was further monitored through the release of Gaussia luciferase (GLuc) from SH-SY5Y cells overexpressing GLuc-based Secreted ER Calcium-Modulated Protein (GLuc-SERCaMP). Meth or Tg significantly increased GLuc release in to the media, with PFT-alpha significantly reducing GLuc release. Additionally, PFT-alpha significantly attenuated Meth-induced CHOP expression. In conclusion, our data indicate that PFT-alpha is neuroprotective against Meth-mediated neurodegeneration via transcription-dependent nuclear and -independent cytosolic ER stress pathways.
    Date: 2019-08
    Relation: Neurotoxicity Research. 2019 Aug;36(2 SI):347-356.
    Link to: http://dx.doi.org/10.1007/s12640-019-00050-w
    JIF/Ranking 2023: http://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=NHRI&SrcApp=NHRI_IR&KeyISSN=1029-8428&DestApp=IC2JCR
    Cited Times(WOS): https://www.webofscience.com/wos/woscc/full-record/WOS:000475678900010
    Cited Times(Scopus): https://www.scopus.com/inward/record.url?partnerID=HzOxMe3b&scp=85065652723
    Appears in Collections:[王昀] 期刊論文
    [劉誠珍] 期刊論文

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