Mitochondria-derived oxidative stress induces a heat shock protein response

被引:47
作者
Barrett, MJ [1 ]
Alones, V [1 ]
Wang, KX [1 ]
Phan, L [1 ]
Swerdlow, RH [1 ]
机构
[1] Univ Virginia, Hlth Syst, Dept Neurol, Charlottesville, VA 22908 USA
关键词
sodium azide; cytochrome oxidase; heat shock protein; mitochondria; oxidative stress;
D O I
10.1002/jnr.20249
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
In addition to minimizing native and non-native protein aggregations, heat shock proteins (HSPs) regulate programmed cell death pathways. Members of this conserved protein family are in general activated by oxidative stress, and likely help maintain viability under this stress condition. To further our understanding of heat shock protein physiology, we studied whether a specific subtype of oxidative stress, namely that arising from mitochondrial electron transport chain inhibition, induced a heat shock protein response. We exposed human teratocarcinoma (NT2) cells to varying concentrations of the cytochrome oxidase inhibitor sodium azide. Micromolar exposures resulted in a cytoplasm to nucleus translocation of the inducible Hsp70 and of Hsp40, and this was followed by an overall upregulation. The response did not coincide temporally with the onset of azide exposure, but rather was activated when the degree of cytochrome oxidase inhibition (which was progressive over time) surpassed a threshold. Azide did not affect either Hsp70 or Hsp40 dynamics in NT2 rho0 cells, which lack functional electron transport chains. For the azide-exposed native cell line, addition of the antioxidant trolox to the medium abrogated both Hsp70/Hsp40 translocation and upregulation. We conclude that mitochondrial electron transport chain dysfunction activates a heat shock protein response, and that this response is mediated by oxidative stress. (C) 2004 Wiley-Liss, Inc.
引用
收藏
页码:420 / 429
页数:10
相关论文
共 40 条
[1]   PYRUVATE AND RELATED ALPHA-KETOACIDS PROTECT MAMMALIAN-CELLS IN CULTURE AGAINST HYDROGEN PEROXIDE-INDUCED CYTO-TOXICITY [J].
ANDRAE, U ;
SINGH, J ;
ZIEGLERSKYLAKAKIS, K .
TOXICOLOGY LETTERS, 1985, 28 (2-3) :93-98
[2]   Chaperone suppression of α-synuclein toxicity in a Drosophila model for Parkinson's disease [J].
Auluck, PK ;
Chan, HYE ;
Trojanowski, JQ ;
Lee, VMY ;
Bonini, NM .
SCIENCE, 2002, 295 (5556) :865-868
[3]   AGING, ENERGY, AND OXIDATIVE STRESS IN NEURODEGENERATIVE DISEASES [J].
BEAL, MF .
ANNALS OF NEUROLOGY, 1995, 38 (03) :357-366
[4]   Rapid activation of heat shock factor-1 DNA binding by H2O2 and modulation by glutathione in human neuroblastoma and Alzheimer's disease cybrid cells [J].
Bijur, GN ;
Davis, RE ;
Jope, RS .
MOLECULAR BRAIN RESEARCH, 1999, 71 (01) :69-77
[5]   Uncoupling to survive? The role of mitochondrial inefficiency in ageing [J].
Brand, MD .
EXPERIMENTAL GERONTOLOGY, 2000, 35 (6-7) :811-820
[6]  
Burdon R H, 1987, Free Radic Res Commun, V3, P129, DOI 10.3109/10715768709069778
[7]   Mitochondrial free radical generation, oxidative stress, and aging [J].
Cadenas, E ;
Davies, KJA .
FREE RADICAL BIOLOGY AND MEDICINE, 2000, 29 (3-4) :222-230
[8]   The protective effect of vitamin E, idebenone and reduced glutathione on free radical mediated injury in rat brain synaptosomes [J].
Cardoso, SM ;
Pereira, C ;
Oliveira, CR .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1998, 246 (03) :703-710
[9]   An evaluation of the role of mitochondria in neurodegenerative diseases: mitochondrial mutations and oxidative pathology, protective nuclear responses, and cell death in neurodegeneration [J].
Cassarino, DS ;
Bennett, JP .
BRAIN RESEARCH REVIEWS, 1999, 29 (01) :1-25
[10]   Cell stress genes and chronic neurodegenerative disorders [J].
Cheetham, ME .
NEUROPATHOLOGY AND APPLIED NEUROBIOLOGY, 1995, 21 (06) :486-488