Bédard Claude, Rodrigues Serafim, Roy Noah, Contreras Diego, Destexhe Alain
Integrative and Computational Neuroscience Unit (UNIC), UPR2191, CNRS, Gif-sur-Yvette, France.
J Comput Neurosci. 2010 Dec;29(3):389-403. doi: 10.1007/s10827-010-0250-7. Epub 2010 Jun 18.
We examine the properties of the transfer function F(T)=V(m)/V(LFP) between the intracellular membrane potential (V(m)) and the local field potential (V(LFP)) in cerebral cortex. We first show theoretically that, in the subthreshold regime, the frequency dependence of the extracellular medium and that of the membrane potential have a clear incidence on F(T). The calculation of F(T) from experiments and the matching with theoretical expressions is possible for desynchronized states where individual current sources can be considered as independent. Using a mean-field approximation, we obtain a method to estimate the impedance of the extracellular medium without injecting currents. We examine the transfer function for bipolar (differential) LFPs and compare to simultaneous recordings of V(m) and V(LFP) during desynchronized states in rat barrel cortex in vivo. The experimentally derived F(T) matches the one derived theoretically, only if one assumes that the impedance of the extracellular medium is frequency-dependent, and varies as 1/√ω (Warburg impedance) for frequencies between 3 and 500 Hz. This constitutes indirect evidence that the extracellular medium is non-resistive, which has many possible consequences for modeling LFPs.
我们研究了大脑皮层中细胞内膜电位(V(m))与局部场电位(V(LFP))之间传递函数F(T)=V(m)/V(LFP)的特性。我们首先从理论上表明,在阈下状态下,细胞外介质的频率依赖性和膜电位的频率依赖性对F(T)有明显影响。对于去同步状态,即单个电流源可被视为独立的情况,可以根据实验计算F(T)并将其与理论表达式进行匹配。使用平均场近似,我们得到了一种无需注入电流即可估计细胞外介质阻抗的方法。我们研究了双极(差分)局部场电位的传递函数,并将其与大鼠桶状皮层在体去同步状态期间V(m)和V(LFP)的同步记录进行比较。只有当假设细胞外介质的阻抗与频率有关,并且在3至500赫兹频率范围内随1/√ω(沃伯格阻抗)变化时,实验得出的F(T)才与理论得出的F(T)相匹配。这构成了细胞外介质是非电阻性的间接证据,这对局部场电位建模有许多可能的影响。