|
|
![]() |
|
|||
| Home Help Feedback Subscriptions Archive Search Table of Contents | |||||
Research Article |
Department of Physiology, University College London, London, WC1E 6BT, UK
* Author for correspondence (e-mail:m.duchen{at}ucl.ac.uk )
Accepted 19 December 2001
The role of oxidative stress is established in a range of pathologies. As
mitochondria are a major source of reactive oxygen species (ROS), we have
developed a model in which an intramitochondrial photosensitising agent is
used to explore the consequences of mitochondrial ROS generation for
mitochondrial function and cell fate in primary cells. We have found that, in
astrocytes, the interplay between mitochondrial ROS and ER sequestered
Ca2+ increased the frequency of transient mitochondrial
depolarisations and caused mitochondrial Ca2+ loading from ER
stores. The depolarisations were attributable to opening of the mitochondrial
permeability transition pore (mPTP). Initially, transient events were seen in
individual mitochondria, but ultimately, the mitochondrial potential
(
m) collapsed completely and irreversibly in the whole
population. Both ROS and ER Ca2+ were required to initiate these
events, but neither alone was sufficient. Remarkably, the transient events
alone appeared innocuous, and caused no increase in either apoptotic or
necrotic cell death. By contrast, progression to complete collapse of

m caused necrotic cell death. Thus increased
mitochondrial ROS generation initiates a destructive cycle involving
Ca2+ release from stores and mitochondrial Ca2+-loading,
which further increases ROS production. The amplification of oxidative stress
and Ca2+ loading culminates in opening of the mPTP and necrotic
cell death in primary brain cells.
Key words: Mitochondria, Oxidative stress, Permeability transition pore, Photosensitization, Intracellular calcium
![]()
CiteULike
Complore
Connotea
Del.icio.us
Digg
Reddit
Technorati
Twitter What's this?
This article has been cited by other articles:
![]() |
S. Chigurupati, Z. Wei, C. Belal, M. Vandermey, G. A. Kyriazis, T. V. Arumugam, and S. L. Chan The Homocysteine-inducible Endoplasmic Reticulum Stress Protein Counteracts Calcium Store Depletion and Induction of CCAAT Enhancer-binding Protein Homologous Protein in a Neurotoxin Model of Parkinson Disease J. Biol. Chem., July 3, 2009; 284(27): 18323 - 18333. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. Saotome, H. Katoh, Y. Yaguchi, T. Tanaka, T. Urushida, H. Satoh, and H. Hayashi Transient opening of mitochondrial permeability transition pore by reactive oxygen species protects myocardium from ischemia-reperfusion injury Am J Physiol Heart Circ Physiol, April 1, 2009; 296(4): H1125 - H1132. [Abstract] [Full Text] [PDF] |
||||
![]() |
N. Bashan, J. Kovsan, I. Kachko, H. Ovadia, and A. Rudich Positive and Negative Regulation of Insulin Signaling by Reactive Oxygen and Nitrogen Species Physiol Rev, January 1, 2009; 89(1): 27 - 71. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. Chalmers and J. G. McCarron The mitochondrial membrane potential and Ca2+ oscillations in smooth muscle J. Cell Sci., January 1, 2008; 121(1): 75 - 85. [Abstract] [Full Text] [PDF] |
||||
![]() |
Sic. L. Chan, D. Liu, G. A. Kyriazis, P. Bagsiyao, X. Ouyang, and M. P. Mattson Mitochondrial Uncoupling Protein-4 Regulates Calcium Homeostasis and Sensitivity to Store Depletion-induced Apoptosis in Neural Cells J. Biol. Chem., December 8, 2006; 281(49): 37391 - 37403. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. Tiwari, A. Kumar, R. A. Sinha, A. Shrivastava, A. K. Balapure, R. Sharma, V. K. Bajpai, K. Mitra, S. Babu, and M. M. Godbole Mechanism of 4-HPR-induced apoptosis in glioma cells: evidences suggesting role of mitochondrial-mediated pathway and endoplasmic reticulum stress Carcinogenesis, October 1, 2006; 27(10): 2047 - 2058. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. A. Martinez-Burgos, M. P. Granados, A. Gonzalez, J. A. Rosado, M. D. Yago, G. M. Salido, E. Martinez-Victoria, M. Manas, and J. A. Pariente Involvement of ryanodine-operated channels in tert-butylhydroperoxide-evoked Ca2+ mobilisation in pancreatic acinar cells J. Exp. Biol., June 1, 2006; 209(11): 2156 - 2164. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. Rizzuto and T. Pozzan Microdomains of Intracellular Ca2+: Molecular Determinants and Functional Consequences Physiol Rev, January 1, 2006; 86(1): 369 - 408. [Abstract] [Full Text] [PDF] |
||||
![]() |
D. Zhu, K. S. Tan, X. Zhang, A. Y. Sun, G. Y. Sun, and J. C.-M. Lee Hydrogen peroxide alters membrane and cytoskeleton properties and increases intercellular connections in astrocytes J. Cell Sci., August 15, 2005; 118(16): 3695 - 3703. [Abstract] [Full Text] [PDF] |
||||
![]() |
D. Shen, T. P. Dalton, D. W. Nebert, and H. G. Shertzer Glutathione Redox State Regulates Mitochondrial Reactive Oxygen Production J. Biol. Chem., July 8, 2005; 280(27): 25305 - 25312. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. Shanmuganathan, D. J. Hausenloy, M. R. Duchen, and D. M. Yellon Mitochondrial permeability transition pore as a target for cardioprotection in the human heart Am J Physiol Heart Circ Physiol, July 1, 2005; 289(1): H237 - H242. [Abstract] [Full Text] [PDF] |
||||
![]() |
E. Yehuda-Shnaidman, B. Kalderon, and J. Bar-Tana Modulation of Mitochondrial Transition Pore Components by Thyroid Hormone Endocrinology, May 1, 2005; 146(5): 2462 - 2472. [Abstract] [Full Text] [PDF] |
||||
![]() |
D. J. Hausenloy, D. M. Yellon, S. Mani-Babu, and M. R. Duchen Preconditioning protects by inhibiting the mitochondrial permeability transition Am J Physiol Heart Circ Physiol, August 1, 2004; 287(2): H841 - H849. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. M. O'Reilly, K. E. Fogarty, R. M. Drummond, R. A. Tuft Jr., and J. V. Walsh Spontaneous mitochondrial depolarizations are independent of SR Ca2+ release Am J Physiol Cell Physiol, May 1, 2004; 286(5): C1139 - C1151. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. V. Berghe, G. W. Hennig, and T. K. Smith Characteristics of intermittent mitochondrial transport in guinea pig enteric nerve fibers Am J Physiol Gastrointest Liver Physiol, April 1, 2004; 286(4): G671 - G682. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. R. Duchen Roles of Mitochondria in Health and Disease Diabetes, February 1, 2004; 53(90001): S96 - 102. [Abstract] [Full Text] |
||||
![]() |
D. J Hausenloy, M. R Duchen, and D. M Yellon Inhibiting mitochondrial permeability transition pore opening at reperfusion protects against ischaemia-reperfusion injury Cardiovasc Res, December 1, 2003; 60(3): 617 - 625. [Abstract] [Full Text] [PDF] |
||||
![]() |
J.-H. Yang, S. F. Basinger, R. L. Gross, and S. M. Wu Blue Light-Induced Generation of Reactive Oxygen Species in Photoreceptor Ellipsoids Requires Mitochondrial Electron Transport Invest. Ophthalmol. Vis. Sci., March 1, 2003; 44(3): 1312 - 1319. [Abstract] [Full Text] [PDF] |
||||