Amyloid beta-peptide impairs ion-motive ATPase activities: evidence for a role in loss of neuronal Ca2+ homeostasis and cell death

Бета-амилоидный пептид нарушает активность ион-движущих АТФаз: свидетельства роли в нарушении кальциевого гомеостаза нейронов и гибели клеток
K. Hensley, MP Mattson, Mark Rj, DA Butterfield
1995-09-01

Amyloid beta-peptide (Aβ)Ca2+ homeostasis disruptionNa+/K+-ATPase impairmentNeuronal apoptosis / DNA fragmentationReactive oxygen species (ROS)
The amyloid beta-peptide (A beta) that accumulates as insoluble plaques in the brain in Alzheimer's disease can be directly neurotoxic and can increase neuronal vulnerability to excitotoxic insults. The mechanism of A beta toxicity is unclear but is believed to involve generation of reactive oxygen species (ROS) and loss of calcium homeostasis. We now report that exposure of cultured rat hippocampal neurons to A beta 1-40 or A beta 25-35 causes a selective reduction in Na+/K(+)-ATPase activity which precedes loss of calcium homeostasis and cell degeneration. Na+/K(+)-ATPase activity was reduced within 30 min of exposure to A beta 25-35 and declined to less than 40% of basal level by 3 hr. A beta did not impair other Mg(2+)-dependent ATPase activities or Na+/Ca2+ exchange. Experiments with ouabain, a specific inhibitor of the Na+/K(+)-ATPase, demonstrated that impairment of this enzyme was sufficient to induce an elevation of [Ca2+]i and neuronal injury. Impairment of Na+/K(+)-ATPase activity appeared to be causally involved in the elevation of [Ca2+]i and neurotoxicity since suppression of Na+ influx significantly reduced A beta- and ouabain-induced [Ca2+]i elevation and neuronal death. Neuronal degeneration induced by ouabain appeared to be of an apoptotic form as indicated by nuclear condensation and DNA fragmentation. The antioxidant free radical scavengers vitamin E and propylgallate significantly attenuated A beta-induced impairment of Na+/K(+)-ATPase activity, elevation of [Ca2+]i and neurotoxicity, suggesting a role for ROS. Finally, exposure of synaptosomes from postmortem human hippocampus to A beta resulted in a significant and specific reduction in Na+/K(+)-ATPase and Ca(2+)-ATPase activities, without affecting other Mg(2+)-dependent ATPase activities or Na+/Ca2+ exchange. These data suggest that impairment of ion-motive ATPases may play a role in the pathogenesis of neuronal injury in Alzheimer's disease.
1
Antioxidant free radical scavengers (vitamin E, propylgallate) attenuate Aβ-induced Na+/K+-ATPase impairment, [Ca2+]i elevation, and neurotoxicity, implicating reactive oxygen species (ROS) in the mechanism.
2
Aβ does not impair other Mg2+-dependent ATPase activities or Na+/Ca2+ exchange in cultured neurons, indicating selectivity for ion-motive ATPases.
3
Aβ exposure of postmortem human hippocampal synaptosomes significantly and specifically reduces Na+/K+-ATPase and Ca2+-ATPase activities, supporting a role for ion-motive ATPase impairment in Alzheimer’s disease pathology.
4
Exposure of cultured rat hippocampal neurons to Aβ1-40 or Aβ25-35 selectively reduces Na+/K+-ATPase activity, with reduction evident within 30 minutes and falling to <40% by 3 hours.
5
Pharmacological inhibition of Na+/K+-ATPase with ouabain is sufficient to elevate intracellular Ca2+ ([Ca2+]i) and induce neuronal injury with apoptotic features (nuclear condensation, DNA fragmentation).
6
Suppressing Na+ influx significantly reduces Aβ- and ouabain-induced [Ca2+]i elevation and neuronal death, implicating Na+/K+-ATPase impairment in Ca2+ dysregulation and neurotoxicity.

Amyloid beta-peptide (Aβ) exposure to cultured rat hippocampal neurons and human hippocampal synaptosomes

Impairment of ion-motive ATPase activities (particularly Na+/K+-ATPase and Ca2+-ATPase), resulting elevation of intracellular Ca2+ ([Ca2+]i), role of reactive oxygen species, and consequent neuronal degeneration/cell death

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1995-09-01
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K. Hensley
MP Mattson
Mark Rj
DA Butterfield
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