Allopregnanolone augments epileptiform activity of an in-vitro mouse hippocampal preparation in the first postnatal week
EPILEPSY RESEARCH
Authors: Sharopov, Salim; Winkler, Paula; Uehara, Rie; Lombardi, Aniello; Halbhuber, Lisa; Okabe, Akihito; Luhmann, Heiko J.; Kilb, Werner
Abstract
In the immature brain the neurotransmitter gamma-amino butyric acid (GABA) mediates a membrane depolarization and can contribute to both, inhibition and excitation. Therefore the consequences of a positive modulation of GABA(A) receptors by neurosteroids on epileptiform activity are hard to predict. In order to analyze whether neurosteroids attenuate or exaggerate epileptiform activity in the immature brain, we investigated the effect of the neurosteroid allopregnanolone on epileptiform activity in an in-toto hippocampus preparation of early postnatal mice (postnatal days 4-7) using field potential recordings. These in-vitro experiments revealed that 0.5 mu mol/L allopregnanolone had no effect on ictal-like epileptiform activity, but increased the occurrence of interictal epileptiform events. The allopregnanolone-induced enhancement of interictal epileptiform activity could be blocked by a selective inhibition of synaptic GABA(A) receptors. In contrast, allopregnanolone had no effect on interictal epileptiform activity upon enhanced extrasynaptic GABAergic activity. Patch-clamp experiments demonstrated that allopregnanolone prolonged the decay of GABAergic postsynaptic currents, but had no effect on tonic GABAergic currents. We conclude from these results that allopregnanolone can enhance excitability in the immature hippocampus viaprolonged synaptic GABAergic currents. This potential effect of neurosteroids on brain excitability should be considered if they are applied as anticonvulsants to premature or early postnatal babies.
Spermidine protects from age-related synaptic alterations at hippocampal mossy fiber-CA3 synapses
SCIENTIFIC REPORTS
Authors: Maglione, Marta; Kochlamazashvili, Gaga; Eisenberg, Tobias; Racz, Bence; Michael, Eva; Toppe, David; Stumpf, Alexander; Wirth, Alexander; Zeug, Andre; Mueller, Franziska E.; Moreno-Velasquez, Laura; Sammons, Rosanna P.; Hofer, Sebastian J.; Madeo, Frank; Maritzen, Tanja; Maier, Nikolaus; Ponimaskin, Evgeni; Schmitz, Dietmar; Haucke, Volker; Sigrist, Stephan J.
Abstract
Aging is associated with functional alterations of synapses thought to contribute to age-dependent memory impairment (AMI). While therapeutic avenues to protect from AMI are largely elusive, supplementation of spermidine, a polyamine normally declining with age, has been shown to restore defective proteostasis and to protect from AMI in Drosophila. Here we demonstrate that dietary spermidine protects from age-related synaptic alterations at hippocampal mossy fiber (MF)-CA3 synapses and prevents the aging-induced loss of neuronal mitochondria. Dietary spermidine rescued age-dependent decreases in synaptic vesicle density and largely restored defective presynaptic MF-CA3 long-term potentiation (LTP) at MF-CA3 synapses (MF-CA3) in aged animals. In contrast, spermidine failed to protect CA3-CA1 hippocampal synapses characterized by postsynaptic LTP from age-related changes in function and morphology. Our data demonstrate that dietary spermidine attenuates age-associated deterioration of MF-CA3 synaptic transmission and plasticity. These findings provide a physiological and molecular basis for the future therapeutic usage of spermidine.