Pathway-specific properties of AMPA and NMDA-mediated transmission in CA1 hippocampal pyramidal cells

被引:99
作者
Otmakhova, NA
Otmakhov, N
Lisman, JE
机构
[1] Brandeis Univ, Volen Ctr Complex Syst, Waltham, MA 02454 USA
[2] Brandeis Univ, Dept Biol, Waltham, MA 02454 USA
关键词
AMPA; CA1; D890; inward rectification; NMDA; perforant path; QX-314; regenerative process; Schaffer collaterals; voltage dependence; whole-cell patch clamp; ZD7288;
D O I
10.1523/JNEUROSCI.22-04-01199.2002
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
CA1 pyramidal cells receive glutamatergic input from the entorhinal cortex through the perforant path (PP) and from CA3 through Schaffer collaterals (SC). The PP input terminates in the stratum lacunosum moleculare similar to300 mum from the cell body, whereas SC synapses have a more proximal location in the stratum radiatum. We compared the properties of AMPA- and NMDA-mediated transmission at these two inputs. The AMPA-mediated components have linear voltage dependence in both inputs. The reversal potential in the PP is only slightly more positive than in the SC, indicating that distal membrane voltage could be effectively set. The NMDA-mediated responses in the two pathways, however, are very different. The PP exhibits inward rectification, as evidenced by very low outward currents. The rectification persists in the absence of extracellular Mg(2+). It cannot be attributed to clamping problems, because large outward AMPA currents can be observed even when conditions are modified to have the AMPA currents kinetically match the NMDA currents. Thus, it appears that the PP NMDA channels have novel properties. A second difference between the PP and SC pathways is that the PP has a larger NMDA/AMPA charge ratio. This difference could be observed under many conditions, including block of all voltage-dependent conductances and elimination of the negative resistance of NMDA channels by removing extracellular Mg(2+). The difference in ratio thus cannot be attributed to regenerative currents. The higher NMDA component of the distal PP synapses could help to make these synapses more powerful under depolarizing conditions.
引用
收藏
页码:1199 / 1207
页数:9
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