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The Regulation of Reactive Oxygen Species Production During Programmed Cell Death

Overview
Journal J Cell Biol
Specialty Cell Biology
Date 1998 Jun 25
PMID 9628898
Citations 209
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Abstract

Reactive oxygen species (ROS) are thought to be involved in many forms of programmed cell death. The role of ROS in cell death caused by oxidative glutamate toxicity was studied in an immortalized mouse hippocampal cell line (HT22). The causal relationship between ROS production and glutathione (GSH) levels, gene expression, caspase activity, and cytosolic Ca2+ concentration was examined. An initial 5-10-fold increase in ROS after glutamate addition is temporally correlated with GSH depletion. This early increase is followed by an explosive burst of ROS production to 200-400-fold above control values. The source of this burst is the mitochondrial electron transport chain, while only 5-10% of the maximum ROS production is caused by GSH depletion. Macromolecular synthesis inhibitors as well as Ac-YVAD-cmk, an interleukin 1beta-converting enzyme protease inhibitor, block the late burst of ROS production and protect HT22 cells from glutamate toxicity when added early in the death program. Inhibition of intracellular Ca2+ cycling and the influx of extracellular Ca2+ also blocks maximum ROS production and protects the cells. The conclusion is that GSH depletion is not sufficient to cause the maximal mitochondrial ROS production, and that there is an early requirement for protease activation, changes in gene expression, and a late requirement for Ca2+ mobilization.

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References
1.
Budd S, Nicholls D . Mitochondria, calcium regulation, and acute glutamate excitotoxicity in cultured cerebellar granule cells. J Neurochem. 1996; 67(6):2282-91. DOI: 10.1046/j.1471-4159.1996.67062282.x. View

2.
Davis J, Maher P . Protein kinase C activation inhibits glutamate-induced cytotoxicity in a neuronal cell line. Brain Res. 1994; 652(1):169-73. DOI: 10.1016/0006-8993(94)90334-4. View

3.
Park Y, Herrington J, Babcock D, Hille B . Ca2+ clearance mechanisms in isolated rat adrenal chromaffin cells. J Physiol. 1996; 492 ( Pt 2):329-46. PMC: 1158831. DOI: 10.1113/jphysiol.1996.sp021312. View

4.
Slater A, Nobel C, Maellaro E, Bustamante J, Kimland M, Orrenius S . Nitrone spin traps and a nitroxide antioxidant inhibit a common pathway of thymocyte apoptosis. Biochem J. 1995; 306 ( Pt 3):771-8. PMC: 1136588. DOI: 10.1042/bj3060771. View

5.
Reynolds I, Hastings T . Glutamate induces the production of reactive oxygen species in cultured forebrain neurons following NMDA receptor activation. J Neurosci. 1995; 15(5 Pt 1):3318-27. PMC: 6578215. View