A novel antioxidant function for the tumor-suppressor gene p53 in the retinal ganglion cell

被引:46
作者
O'Connor, Jeremy C. [1 ,2 ,3 ]
Wallace, Deborah M. [1 ]
O'Brien, Colm J. [2 ,3 ]
Cotter, Thomas G. [1 ]
机构
[1] Natl Univ Ireland Univ Coll Cork, Dept Biochem, Biosci Res Inst, Cell Dev & Dis Lab, Cork, Ireland
[2] Univ Coll Dublin, Dept Ophthalmol, Matter Hosp, Dublin 2, Ireland
[3] Univ Coll Dublin, Dept Ophthalmol, Conway Inst, Dublin 2, Ireland
关键词
D O I
10.1167/iovs.08-1963
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
PURPOSE. Recent evidence has suggested that the tumor-suppressor gene p53 has a role in regulating antioxidant response in cancer cells. This study was conducted to determine whether p53 regulates redox enzymes in a neuronal context in RGCs and whether this regulation contributes to an increased survival signal. METHODS. The expression of p53, and its putative responsive antioxidant enzymes sestrin 2, catalase, Cu/ZnSOD, and MnSOD were evaluated in the developing rat retina by immunohistochemistry and Western blot. Small interfering (si) RNA to p53 was used in an RGC cell line, RGC-5, and downstream effects on antioxidants observed by Western blot. Transcription factor-analysis software was used to identify p53 binding sites on the catalase promoter, and chromatin immunoprecipitation (ChIP) assays on whole retina to demonstrate in vivo binding. The effect of p53 deficiency on basal reactive oxygen species levels (ROS) within the RGC and on susceptibility to oxidative-signaling-induced apoptosis was measured by flow cytometry. RESULTS. Developmental expression patterns of p53 and catalase mirrored each other. p53 knockdown resulted in a significant decrease in catalase. p53-binding sites were identified on the rat catalase promoter and confirmed in vivo. p53 knockdown resulted in a corresponding increase in basal cellular ROS levels and increased susceptibility to oxidative-signaling induced cell death. CONCLUSIONS. The results suggest a novel regulating influence of p53 on catalase in the retina-more specifically in the RGC and an influence of p53 on the susceptibility of the cell to oxidative-signaling-induced apoptosis, which could implicate p53 as a potential neuroprotectant for the RGC.
引用
收藏
页码:4237 / 4244
页数:8
相关论文
共 28 条
[1]   The role of oxidative stress in the pathogenesis of age-related macular degeneration [J].
Beatty, S ;
Koh, HH ;
Henson, D ;
Boulton, M .
SURVEY OF OPHTHALMOLOGY, 2000, 45 (02) :115-134
[2]   Regeneration of peroxiredoxins by p53-regulated sestrins, homologs of bacterial AhpD [J].
Budanov, AV ;
Sablina, AA ;
Feinstein, E ;
Koonin, EV ;
Chumakov, PM .
SCIENCE, 2004, 304 (5670) :596-600
[3]   Correlates of p53- and Fas (CD95)-mediated apoptosis in Alzheimer's disease [J].
delaMonte, SM ;
Sohn, YK ;
Wands, JR .
JOURNAL OF THE NEUROLOGICAL SCIENCES, 1997, 152 (01) :73-83
[4]   Role of p53 in antioxidant defense of HPV-positive cervical carcinoma cells following H2O2 exposure [J].
Ding, Boxiao ;
Chi, Sung Gil ;
Kim, Se Heon ;
Kang, Suki ;
Cho, Jae Ho ;
Kim, Dong Su ;
Cho, Nam Hoon .
JOURNAL OF CELL SCIENCE, 2007, 120 (13) :2284-2294
[5]   Reciprocal down-regulation of p53 and SOD2 gene expression -: implication in p53 mediated apoptosis [J].
Drane, P ;
Bravard, A ;
Bouvard, V ;
May, E .
ONCOGENE, 2001, 20 (04) :430-439
[6]   p53 inhibitors preserve dopamine neurons and motor function in experimental parkinsonism [J].
Duan, WZ ;
Zhu, XX ;
Ladenheim, B ;
Yu, QS ;
Guo, ZH ;
Oyler, J ;
Cutler, RG ;
Cadet, JL ;
Greig, NH ;
Mattson, MP .
ANNALS OF NEUROLOGY, 2002, 52 (05) :597-606
[7]   p53-induced up-regulation of MnSOD and GPx but not catalase increases oxidative stress and apoptosis [J].
Hussain, SP ;
Amstad, P ;
He, PJ ;
Robles, A ;
Lupold, S ;
Kaneko, I ;
Ichimiya, M ;
Sengupta, S ;
Mechanic, L ;
Okamura, S ;
Hofseth, LJ ;
Moake, M ;
Nagashima, M ;
Forrester, KS ;
Harris, CC .
CANCER RESEARCH, 2004, 64 (07) :2350-2356
[8]  
Joo CK, 1999, INVEST OPHTH VIS SCI, V40, P713
[9]  
Kortuem K, 2000, INVEST OPHTH VIS SCI, V41, P3176
[10]   RETRACTED: Characterization of a transformed rat retinal ganglion cell line (Retracted article. See vol. 1544, pg. 62, 2014) [J].
Krishnamoorthy, RR ;
Agarwal, P ;
Prasanna, G ;
Vopat, K ;
Lambert, W ;
Sheedlo, HJ ;
Pang, IH ;
Shade, D ;
Wordinger, RH ;
Yorio, T ;
Clark, AF ;
Agarwal, N .
MOLECULAR BRAIN RESEARCH, 2001, 86 (1-2) :1-12