Arsiero Maura, Lüscher Hans-Rudolf, Lundstrom Brian Nils, Giugliano Michele
Institute of Physiology, University of Bern, CH-3012 Bern, Switzerland.
J Neurosci. 2007 Mar 21;27(12):3274-84. doi: 10.1523/JNEUROSCI.4937-06.2007.
The role of irregular cortical firing in neuronal computation is still debated, and it is unclear how signals carried by fluctuating synaptic potentials are decoded by downstream neurons. We examined in vitro frequency versus current (f-I) relationships of layer 5 (L5) pyramidal cells of the rat medial prefrontal cortex (mPFC) using fluctuating stimuli. Studies in the somatosensory cortex show that L5 neurons become insensitive to input fluctuations as input mean increases and that their f-I response becomes linear. In contrast, our results show that mPFC L5 pyramidal neurons retain an increased sensitivity to input fluctuations, whereas their sensitivity to the input mean diminishes to near zero. This implies that the discharge properties of L5 mPFC neurons are well suited to encode input fluctuations rather than input mean in their firing rates, with important consequences for information processing and stability of persistent activity at the network level.
不规则皮层放电在神经元计算中的作用仍存在争议,并且尚不清楚由波动的突触电位携带的信号是如何被下游神经元解码的。我们使用波动刺激研究了大鼠内侧前额叶皮层(mPFC)第5层(L5)锥体神经元体外频率与电流(f-I)的关系。在体感皮层的研究表明,随着输入均值增加,L5神经元对输入波动变得不敏感,并且它们的f-I反应变得线性。相比之下,我们的结果表明,mPFC L5锥体神经元对输入波动保持较高的敏感性,而它们对输入均值的敏感性则降至接近零。这意味着L5 mPFC神经元的放电特性非常适合在其放电率中编码输入波动而不是输入均值,这对网络水平的信息处理和持续活动的稳定性具有重要影响。