Electrophysiological differences between neurogliaform cells from monkey and rat prefrontal cortex

被引:50
作者
Povysheva, N. V.
Zaitsev, A. V.
Kroner, S.
Krimer, O. A.
Rotaru, D. C.
Gonzalez-Burgos, G.
Lewis, D. A.
Krimer, L. S.
机构
[1] Univ Pittsburgh, Sch Med, Dept Psychiat, Pittsburgh, PA 15213 USA
[2] Univ Pittsburgh, Dept Neurosci, Pittsburgh, PA 15213 USA
关键词
D O I
10.1152/jn.00794.2006
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Current dogma holds that a canonical cortical circuit is formed by cellular elements that are basically identical across species. However, detailed and direct comparisons between species of specific elements of this circuit are limited in number. In this study, we compared the morphological and physiological properties of neurogliaform ( NGF) inhibitory neurons in the prefrontal cortex ( PFC) of macaque monkeys and rats. In both species, NGF cells were readily identified based on their distinctive morphological features. Indeed, monkey NGF cells had only a few morphological features that differed from rat, including a larger soma, a greater number of dendrites, and a more compact axonal field. In contrast, whole cell recordings of the responses to injected current steps revealed important differences between monkey and rat NGF cells. Monkey NGF cells consistently generated a short-latency first spike riding on an initial depolarizing hump, whereas in rat NGF cells, the first spike appeared after a substantial delay riding on a depolarizing ramp not seen in monkey NGF cells. Thus although rat NGF cells are traditionally classified as late-spiking cells, monkey NGF cells did not meet this physiological criterion. In addition, NGF cells in monkey appeared to be more excitable than those in rat because they displayed a higher input resistance, a lower spike threshold, and a higher firing frequency. Finally, NGF cells in monkey showed a more prominent spike-frequency adaptation as compared with rat. Our findings indicate that the canonical cortical circuit differs in at least some aspects of its constituent elements across species.
引用
收藏
页码:1030 / 1039
页数:10
相关论文
共 48 条
[1]  
[Anonymous], RAT BRAIN STEREOTAXI
[2]  
Banks MI, 1996, J NEUROSCI, V16, P3862
[3]   Prolonged synaptic integration in perirhinal cortical neurons [J].
Beggs, JM ;
Moyer, JR ;
McGann, JP ;
Brown, TH .
JOURNAL OF NEUROPHYSIOLOGY, 2000, 83 (06) :3294-3298
[4]   Rodent models of prefrontal cortical function [J].
Brown, VJ ;
Bowman, EM .
TRENDS IN NEUROSCIENCES, 2002, 25 (07) :340-343
[5]   The temporal and spatial origins of cortical interneurons predict their physiological subtype [J].
Butt, SJB ;
Fuccillo, M ;
Nery, S ;
Noctor, S ;
Kriegstein, A ;
Corbin, JG ;
Fishell, G .
NEURON, 2005, 48 (04) :591-604
[6]  
Chu ZG, 2003, J NEUROSCI, V23, P96
[7]   Translating developmental time across mammalian species [J].
Clancy, B ;
Darlington, RB ;
Finlay, BL .
NEUROSCIENCE, 2001, 105 (01) :7-17
[8]   LOCAL CIRCUIT NEURONS IMMUNOREACTIVE FOR CALRETININ, CALBINDIN D-28K OR PARVALBUMIN IN MONKEY PREFRONTAL CORTEX - DISTRIBUTION AND MORPHOLOGY [J].
CONDE, F ;
LUND, JS ;
JACOBOWITZ, DM ;
BAIMBRIDGE, KG ;
LEWIS, DA .
JOURNAL OF COMPARATIVE NEUROLOGY, 1994, 341 (01) :95-116
[9]   VOLTAGE CLAMP STUDIES OF A TRANSIENT OUTWARD MEMBRANE CURRENT IN GASTROPOD NEURAL SOMATA [J].
CONNOR, JA ;
STEVENS, CF .
JOURNAL OF PHYSIOLOGY-LONDON, 1971, 213 (01) :21-&
[10]   Firing properties and connectivity of neurons in the rat lateral central nucleus of the amygdala [J].
De Armentia, ML ;
Sah, P .
JOURNAL OF NEUROPHYSIOLOGY, 2004, 92 (03) :1285-1294