Schubert D, Staiger J F, Cho N, Kötter R, Zilles K, Luhmann H J
Institute of Neurophysiology, University of Duesseldorf, D-40001 Duesseldorf, Germany.
J Neurosci. 2001 May 15;21(10):3580-92. doi: 10.1523/JNEUROSCI.21-10-03580.2001.
Layer V pyramidal cells in rat barrel cortex are considered to play an important role in intracolumnar and transcolumnar signal processing. However, the precise circuitry mediating this processing is still incompletely understood. Here we obtained detailed maps of excitatory and inhibitory synaptic inputs onto the two major layer V pyramidal cell subtypes, intrinsically burst spiking (IB) and regular spiking (RS) cells, using a combination of caged glutamate photolysis, whole-cell patch-clamp recording, and three-dimensional reconstruction of biocytin-labeled cells. To excite presynaptic neurons with laminar specificity, the release of caged glutamate was calibrated and restricted to small areas of 50 x 50 microm in all cortical layers and in at least two neighboring barrel-related columns. IB cells received intracolumnar excitatory input from all layers, with the largest EPSP amplitudes originating from neurons in layers IV and VI. Prominent transcolumnar excitatory inputs were provided by presynaptic neurons also located in layers IV, V, and VI of neighboring columns. Inhibitory inputs were rare. In contrast, RS cells received distinct intracolumnar inhibitory inputs, especially from layers II/III and V. Intracolumnar excitatory inputs to RS cells were prominent from layers II-V, but relatively weak from layer VI. Conspicuous transcolumnar excitatory inputs could be evoked solely in layers IV and V. Our results show that layer V pyramidal cells are synaptically driven by presynaptic neurons located in every layer of the barrel cortex. RS cells seem to be preferentially involved in intracolumnar signal processing, whereas IB cells effectively integrate excitatory inputs across several columns.
大鼠桶状皮层的V层锥体细胞被认为在柱内和跨柱信号处理中发挥重要作用。然而,介导这种处理的精确神经回路仍未完全被理解。在这里,我们结合笼锁谷氨酸光解、全细胞膜片钳记录以及生物素标记细胞的三维重建,获得了两种主要的V层锥体细胞亚型,即内在爆发式放电(IB)细胞和常规放电(RS)细胞上兴奋性和抑制性突触输入的详细图谱。为了以层特异性激发突触前神经元,对笼锁谷氨酸的释放进行了校准,并将其限制在所有皮层层以及至少两个相邻桶状相关柱中50×50微米的小区域内。IB细胞从所有层接收柱内兴奋性输入,最大的兴奋性突触后电位(EPSP)幅度来自IV层和VI层的神经元。突出的跨柱兴奋性输入由位于相邻柱的IV层、V层和VI层的突触前神经元提供。抑制性输入很少见。相比之下,RS细胞接收明显的柱内抑制性输入,特别是来自II/III层和V层。RS细胞的柱内兴奋性输入从II-V层很突出,但从VI层相对较弱。仅在IV层和V层可诱发明显的跨柱兴奋性输入。我们的结果表明,V层锥体细胞由位于桶状皮层各层的突触前神经元进行突触驱动。RS细胞似乎优先参与柱内信号处理,而IB细胞有效地整合跨多个柱的兴奋性输入。