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猫外侧膝状核中神经元的动力学:体内电生理学与计算建模

Dynamics of neurons in the cat lateral geniculate nucleus: in vivo electrophysiology and computational modeling.

作者信息

Mukherjee P, Kaplan E

机构信息

Laboratory of Biophysics, Rockefeller University, New York, New York 10021, USA.

出版信息

J Neurophysiol. 1995 Sep;74(3):1222-43. doi: 10.1152/jn.1995.74.3.1222.

DOI:10.1152/jn.1995.74.3.1222
PMID:7500146
Abstract
  1. We investigated the time domain transformation that thalamocortical relay cells of the cat lateral geniculate nucleus (LGN) perform on their retinal input, and used computational modeling to explore the biophysical properties that determine the dynamics of the LGN relay cells in vivo. 2. We recorded simultaneously the input (S potentials) and output (action potentials) of 50 cat LGN relay cells stimulated by drifting sinusoidal gratings of varying temporal frequency. The temporal modulation transfer functions (TMTFs) of the neurons were derived from these data. The burstiness of the LGN spike trains was also assessed using objective criteria. 3. We found that the form of the TMTF was quite variable among cells, ranging from low-pass to strongly band-pass. The optimal temporal frequency of band-pass neurons was between 2 and 8 Hz. In addition, the TMTF of some cells was nonstationary: their temporal tuning changed with time. 4. The temporal tuning of a cell was directly related to the degree of burstiness of its spike train. Tonically firing relay cells had low-pass TMTFs, whereas the most bursty neurons exhibited the most sharply band-pass transfer functions. This was also true for single cells that altered their temporal tuning: a shift to more band-pass tuning was associated with increased burstiness of the spike train, and vice versa. 5. We constructed a computer simulation of the LGN relay cell. The model was a simplified five-channel version of the thalamocortical neuron model of McCormick and Huguenard. It incorporated the quantitative kinetics of the Ca2+ T channel, as well as the Hodgkin-Huxley Na+ and K+ channels, as the only active membrane currents. To simulate the in vivo dynamics of the relay cell, the input to the model consisted of trains of synaptic potentials, recorded as S potentials in our physiological experiments. 6. When the resting membrane potential of the model neuron was relatively depolarized, the model's TMTF was low-pass, with no bursting evident in the simulated spike train. At hyperpolarized resting membrane potentials, however, the modeled TMTF was band-pass, with frequent burst discharges. Thus the biophysical model reproduced not only the range of dynamics seen in real LGN relay cells, but also the dependence of the overall dynamics on the burstiness of the spike train. However, neither of these phenomena could be simulated without the T channel. Thus the simulations demonstrated that the T-type Ca2+ channel was necessary and sufficient to explain the LGN dynamics observed in physiological experiments.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 我们研究了猫外侧膝状体核(LGN)的丘脑皮质中继细胞对其视网膜输入所执行的时域变换,并使用计算建模来探索决定体内LGN中继细胞动力学的生物物理特性。2. 我们同时记录了50个猫LGN中继细胞在不同时间频率的漂移正弦光栅刺激下的输入(S电位)和输出(动作电位)。神经元的时间调制传递函数(TMTF)由这些数据得出。LGN尖峰序列的爆发性也使用客观标准进行了评估。3. 我们发现,TMTF的形式在细胞间差异很大,范围从低通到强带通。带通神经元的最佳时间频率在2至8赫兹之间。此外,一些细胞的TMTF是非平稳的:它们的时间调谐随时间变化。4. 细胞的时间调谐与其尖峰序列的爆发程度直接相关。持续放电的中继细胞具有低通TMTF,而爆发性最强的神经元表现出最尖锐的带通传递函数。对于改变其时间调谐的单个细胞也是如此:向更带通调谐的转变与尖峰序列爆发性的增加相关,反之亦然。5. 我们构建了LGN中继细胞的计算机模拟。该模型是McCormick和Huguenard丘脑皮质神经元模型的简化五通道版本。它纳入了Ca2+ T通道以及霍奇金 - 赫胥黎Na+和K+通道的定量动力学,作为唯一的主动膜电流。为了模拟中继细胞的体内动力学,模型的输入由一系列突触电位组成,这些电位在我们的生理实验中记录为S电位。6. 当模型神经元的静息膜电位相对去极化时,模型的TMTF是低通的,在模拟的尖峰序列中没有明显的爆发。然而,在超极化的静息膜电位下,模拟的TMTF是带通的,有频繁的爆发放电。因此,生物物理模型不仅再现了真实LGN中继细胞中看到的动力学范围,还再现了整体动力学对尖峰序列爆发性的依赖性。然而,如果没有T通道,这两种现象都无法模拟。因此,模拟表明T型Ca2+通道对于解释生理实验中观察到的LGN动力学是必要且充分的。(摘要截取自400字)

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