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Abdulzahir, A.

Publications and source records attributed to Abdulzahir, A..

2 recordsLinked to original sources

Dose-dependent suppression of hippocampal contextual memory formation, place cells, and spatial engrams by the NMDAR antagonist (R)-CPP

A common way to study the functional importance of N-methyl-D-aspartate receptors (NMDARs) in hippocampal memory-encoding circuits is by administering NMDAR antagonists. We recently compared the effects of (R,S)-3-(2-carboxypiperazin-4-yl)-propyl-1-phosphonic acid (CPP), a competitive NMDAR antagonist, on suppression of memory in vivo versus suppression of NMDAR-mediated field EPSPs (fEPSPNMDA) and long-term potentiation (LTP) in vitro. Surprisingly, we found that concentrations that block contextual conditioning in vivo are ineffective at blocking the fEPSPNMDA or LTP in vitro. Here we tested one possible explanation for the mismatch - that the hippocampus is relatively resistant to CPP compared to other brain structures engaged in contextual fear conditioning. We used the context pre-exposure facilitation effect (CPFE) paradigm to isolate the hippocampal component of contextual learning, and in-vivo calcium imaging of place cells and spatial engrams to directly assess hippocampal spatial coding. We found that, by both measures, the active enantiomer (R)-CPP did interfere with hippocampal function at concentrations below those that block fEPSPs or LTP. We conclude that the alternative - that CPP interferes with memory by targeting NMDARs in interneurons rather than pyramidal neurons - is the more likely explanation.

neuroscience↗

Control of contextual memory through interneuronal α5-GABAA receptors

{gamma}-aminobutyric acid type A receptors that incorporate 5 subunits (5-GABAARs) are highly enriched in the hippocampus and are strongly implicated in control of learning and memory. Receptors located on pyramidal neuron dendrites have long been considered responsible, but here we report that their selective knockout from either interneurons (5-i-KO) or pyramidal neurons (5-pyr-KO) interferes with the ability of the general anesthetic etomidate to suppress contextual conditioning. Using Ca2+ imaging of CA1 pyramidal neuron activity in freely exploring mice to assess hippocampal function directly, we found that etomidate blocked the development of place cells and spatial engrams in wild type (WT) and 5-pyr-KO mice, but not in 5-i-KO mice. In addition, 5-i-KO mice developed weaker spatial engrams than WT mice under control conditions. These findings show that interneuronal 5-GABAARs serve a physiological role in promoting spatial learning, and that they mediate the suppression of hippocampus-dependent memory by etomidate.

neuroscience↗