Buldakova S L, Kim K K, Tikhonov D B, Magazanik L G
I. M. Sechenov Institute of Evolutionary Physiology and Biochemistry, Russian Academy of Sciences, 44 Thorez pr., 194223, St. Petersburg, Russia.
Neuroscience. 2007 Jan 5;144(1):88-99. doi: 10.1016/j.neuroscience.2006.09.005. Epub 2006 Nov 13.
Using whole cell patch-clamp recording from pyramidal cells and interneurons in the CA1 area of hippocampal slices, the effect of IEM-1460, a selective channel blocker of Ca2+ permeable AMPA receptors (AMPARs), on postsynaptic currents (PSCs) was studied. Excitatory postsynaptic currents (EPSCs) were evoked by stimulation of Schaffer collaterals (SCs) in the presence of APV and bicuculline to pharmacologically isolate the EPSCs mediated by AMPAR activation. IEM-1460 (50 microM) did not affect the amplitude of EPSCs in CA1 pyramidal cells but reversibly decreased their amplitude in interneurons of pyramidal layer (15 cells), radiatum (37 cells) and border radiatum-lacunosum-moleculare (R-LM) (55 cells) layers. The ability of IEM-1460 to decrease EPSC amplitude correlated with EPSC rectification properties in CA1 interneurons, providing evidence for synaptic localization of Ca2+ permeable AMPARs at the SC synaptic input. Independent of their localization, the majority of interneurons studied exhibited only modest sensitivity to IEM-1460 (EPSC amplitude decreased by less than 30%), while in 15% of interneurons IEM-1460 induced more than 50% reduction in EPSC amplitude. To reveal possible afferent-specific localization of Ca2+ permeable AMPARs on R-LM interneurons, the effect of IEM-1460 on EPSCs evoked by stimulation of SC was compared with that of perforant path (PP). Although average sensitivities did not differ significantly, in 61% of R-LM layer interneurons, the SC-evoked EPSCs exhibited higher sensitivity to IEM-1460 than the PP-evoked EPSCs. Moreover, in 54% of R-LM layer interneurons the EPSCs evoked by SC stimulation were complex, having an initial peak followed by one or several late components. Kinetics, latency distribution and reversal potential of late components suggest di- and polysynaptic origin of the late components. Late EPSCs were strongly and reversibly inhibited by IEM-1460 indicating that Ca2+ permeable AMPARs are involved in the indirect excitation of R-LM layer interneurons. Despite the ability to decrease the excitatory synaptic input to interneurons, IEM-1460 did not affect interneuron-mediated inhibitory postsynaptic currents (IPSCs) evoked in pyramidal neurons by SC stimulation. These data suggest that interneurons with a synaptic input highly sensitive to IEM-1460 do not contribute specifically to the feed-forward inhibition of hippocampal pyramidal neurons.
利用海马脑片CA1区锥体细胞和中间神经元的全细胞膜片钳记录技术,研究了Ca2+通透型AMPA受体(AMPARs)的选择性通道阻滞剂IEM-1460对突触后电流(PSCs)的影响。在存在APV和荷包牡丹碱的情况下,通过刺激海马伞(SCs)诱发兴奋性突触后电流(EPSCs),以药理学方法分离出由AMPAR激活介导的EPSCs。IEM-1460(50 microM)不影响CA1锥体细胞中EPSCs的幅度,但可逆地降低了锥体层(15个细胞)、辐射层(37个细胞)和辐射层-腔隙-分子层边界(R-LM)(55个细胞)中间神经元中EPSCs的幅度。IEM-1460降低EPSC幅度的能力与CA1中间神经元中EPSC的整流特性相关,为Ca2+通透型AMPARs在海马伞突触输入处的突触定位提供了证据。无论其定位如何,大多数研究的中间神经元对IEM-1460仅表现出适度的敏感性(EPSC幅度降低不到30%),而在15%的中间神经元中,IEM-1460导致EPSC幅度降低超过50%。为了揭示Ca2+通透型AMPARs在R-LM中间神经元上可能的传入特异性定位,将IEM-1460对海马伞刺激诱发的EPSCs的影响与对穿通通路(PP)刺激诱发的EPSCs的影响进行了比较。尽管平均敏感性没有显著差异,但在61%的R-LM层中间神经元中,海马伞诱发的EPSCs对IEM-1460的敏感性高于穿通通路诱发的EPSCs。此外,在54%的R-LM层中间神经元中由海马伞刺激诱发的EPSCs是复杂的,有一个初始峰值,随后是一个或几个晚期成分。晚期成分的动力学、潜伏期分布和反转电位表明晚期成分具有双突触和多突触起源。晚期EPSCs被IEM-1460强烈且可逆地抑制,表明Ca2+通透型AMPARs参与了R-LM层中间神经元的间接兴奋。尽管IEM-1460能够减少对中间神经元的兴奋性突触输入,但它不影响海马伞刺激在锥体神经元中诱发的中间神经元介导的抑制性突触后电流(IPSCs)。这些数据表明,对IEM-1460突触输入高度敏感的中间神经元对海马锥体神经元的前馈抑制没有特异性贡献。