Intracellular acidification by inhibition of the Na+/H+-exchanger leads to caspase-independent death of cerebellar granule neurons resembling paraptosis
- 12 March 2004
- journal article
- Published by Springer Nature in Cell Death & Differentiation
- Vol. 11 (7) , 760-770
- https://doi.org/10.1038/sj.cdd.4401377
Abstract
Potassium withdrawal is commonly used to induce caspase-mediated apoptosis in cerebellar granule neurons in vitro. However, the underlying and cell death-initiating mechanisms are unknown. We firstly investigated potassium efflux through the outward delayed rectifier K+ current (Ik) as a potential mediator. However, tetraethylammoniumchloride, an inhibitor of Ik, was ineffective to block apoptosis after potassium withdrawal. Since potassium withdrawal reduced intracellular pH (pHi) from 7.4 to 7.2, we secondly investigated the effects of intracellular acidosis. To study intracellular acidosis in cerebellar granule neurons, we inhibited the Na+/H+ exchanger (NHE) with 4-isopropyl-3-methylsulfonylbenzoyl-guanidine methanesulfonate (HOE 642) and 5-(N-ethyl-N-isopropyl)-amiloride. Both inhibitors concentration-dependently induced cell death and potentiated cell death after potassium withdrawal. Although inhibition of the NHE induced cell death with morphological criteria of apoptosis in light and electron microscopy including chromatin condensation, positive TUNEL staining and cell shrinkage, no internucleosomal DNA cleavage or activation of caspases was detected. In contrast to potassium withdrawal-induced apoptosis, cell death induced by intracellular acidification was not prevented by insulin-like growth factor-1, cyclo-adenosine-monophosphate, caspase inhibitors and transfection with an adenovirus expressing Bcl-XL. However, cycloheximide protected cerebellar granule neurons from death induced by potassium withdrawal as well as from death after treatment with HOE 642. Therefore, the molecular mechanisms leading to cell death after acidification appear to be different from the mechanisms after potassium withdrawal and resemble the biochemical but not the morphological characteristics of paraptosis.Keywords
This publication has 34 references indexed in Scilit:
- SM-20220, a Na+/H+ exchanger inhibitor: effects on ischemic brain damage through edema and neutrophil accumulation in a rat middle cerebral artery occlusion modelBrain Research, 2002
- Inhibition of Na+/H+ exchanger reduces infarct volume of focal cerebral ischemia in ratsBrain Research, 2001
- The Na+/H+ Exchanger SM-20220 Attenuates Ischemic Injury in in vitro and in vivo ModelsPharmacology, 2001
- Maintenance of caspase-3 proenzyme dormancy by an intrinsic “safety catch” regulatory tripeptideProceedings of the National Academy of Sciences, 2001
- Changes in intramitochondrial and cytosolic pH: early events that modulate caspase activation during apoptosisNature Cell Biology, 2000
- Acidosis Induces Necrosis and Apoptosis of Cultured Hippocampal NeuronsExperimental Neurology, 2000
- The Expanding Family of Eucaryotic Na+/H+ExchangersJournal of Biological Chemistry, 2000
- Sodium/Hydrogen Exchanger Gene Defect in Slow-Wave Epilepsy Mutant MiceCell, 1997
- Phosphorus-31 magnetic resonance spectra revealprolonged intracellular acidosis in the brain following subarachnoidhemorrhage.Proceedings of the National Academy of Sciences, 1994
- Basic mechanisms of traumatic brain damageAnnals of Emergency Medicine, 1993