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人工突触电导减少内嗅皮层星状细胞的阈下振荡和周期性放电。

Artificial synaptic conductances reduce subthreshold oscillations and periodic firing in stellate cells of the entorhinal cortex.

作者信息

Fernandez Fernando R, White John A

机构信息

Department of Biomedical Engineering, Boston University, Boston, Massachusetts 02115, USA.

出版信息

J Neurosci. 2008 Apr 2;28(14):3790-803. doi: 10.1523/JNEUROSCI.5658-07.2008.

Abstract

Previous work has established that stellate cells of the medial entorhinal cortex produce prominent intrinsic subthreshold oscillations in the voltage response concentrated within the theta range (3-7 Hz). It has been speculated that these oscillations play an important role in vivo in establishing network behavior both in the entorhinal cortex and hippocampus. Consequently, it is important to investigate under what conditions theta oscillations in stellate cells can be generated and whether the spike-train power spectral density (PSD) also carries power at theta. We investigated the ability of stellate cells to generate theta oscillations in the presence of generic in vivo-like patterns of stimulation. Inputs were Poisson process-driven excitatory and inhibitory synaptic conductances or currents, introduced via dynamic clamp. We analyzed the subthreshold membrane oscillations and spike-train behavior in the presence of comparable synaptic conductance- or current-mediated membrane fluctuations. In the presence of conductance-based synapses, subthreshold oscillations are highly attenuated or entirely eliminated. Conversely, with current-based synapses stellate cells retain their ability to generate subthreshold oscillations in the theta band. These results also extend into the spiking regime, where only under current-based synapses does the PSD of the spike train show a prominent peak at theta. Furthermore, the peak in the spike-train PSD and spike clustering results from an increased probability of firing after a spike afterhyperpolarization and not directly from subthreshold oscillatory dynamics as has been previously suggested. Our results suggest that subthreshold oscillations may contribute less to in vivo response properties than has been hypothesized.

摘要

先前的研究已经证实,内侧内嗅皮质的星状细胞在电压响应中会产生显著的内在阈下振荡,这些振荡集中在θ波段(3 - 7赫兹)。据推测,这些振荡在体内对内嗅皮质和海马体的网络行为形成起着重要作用。因此,研究在何种条件下星状细胞能够产生θ振荡,以及动作电位序列功率谱密度(PSD)在θ波段是否也携带功率,具有重要意义。我们研究了在类似体内刺激模式下星状细胞产生θ振荡的能力。通过动态钳制引入的输入是由泊松过程驱动的兴奋性和抑制性突触电导或电流。我们分析了在可比的突触电导或电流介导的膜电位波动情况下的阈下膜振荡和动作电位序列行为。在基于电导的突触存在时,阈下振荡会高度衰减或完全消除。相反,在基于电流的突触情况下,星状细胞保留了在θ波段产生阈下振荡的能力。这些结果也延伸到了动作电位发放状态,只有在基于电流的突触情况下,动作电位序列的PSD才会在θ波段显示出一个显著的峰值。此外,动作电位序列PSD中的峰值和动作电位簇集是由动作电位后超极化后发放概率增加导致的,而不是如先前所认为的直接由阈下振荡动力学引起。我们的结果表明,阈下振荡对体内反应特性的贡献可能比之前假设的要小。

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