Higley Michael J, Contreras Diego
Department of Neuroscience, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104, USA.
J Neurosci. 2006 Jan 11;26(2):448-57. doi: 10.1523/JNEUROSCI.3506-05.2006.
In layer 4 (L4) of the rat barrel cortex, a single whisker deflection evokes a stereotyped sequence of excitation followed by inhibition, hypothesized to result in a narrow temporal window for spike output. However, awake rats sweep their whiskers across objects, activating the cortex at frequencies known to induce short-term depression at both excitatory and inhibitory synapses within L4. Although periodic whisker deflection causes a frequency-dependent reduction of the cortical response magnitude, whether this adaptation involves changes in the relative balance of excitation and inhibition and how these changes might impact the proposed narrow window of spike timing in L4 is unknown. Here, we demonstrate for the first time that spike output in L4 is determined precisely by the dynamic interaction of excitatory and inhibitory conductances. Furthermore, we show that periodic whisker deflection results in balanced adaptation of the magnitude and timing of excitatory and inhibitory input to L4 neurons. This balanced adaptation mediates a reduction in spike output while preserving the narrow time window of spike generation, suggesting that L4 circuits are calibrated to maintain relative levels of excitation and inhibition across varying magnitudes of input.
在大鼠桶状皮层的第4层(L4)中,单个触须偏转引发一系列刻板的兴奋序列,随后是抑制,据推测这会导致一个狭窄的时间窗口用于发放动作电位输出。然而,清醒的大鼠会用触须扫过物体,以已知会在L4内的兴奋性和抑制性突触处诱发短期抑制的频率激活皮层。尽管周期性触须偏转导致皮层反应幅度随频率降低,但这种适应性是否涉及兴奋和抑制的相对平衡变化,以及这些变化如何影响L4中所提出的狭窄发放时间窗口尚不清楚。在这里,我们首次证明L4中的发放动作电位输出精确地由兴奋性和抑制性电导的动态相互作用决定。此外,我们表明周期性触须偏转导致L4神经元兴奋性和抑制性输入的幅度和时间的平衡适应。这种平衡适应介导了发放动作电位输出的减少,同时保留了发放动作电位产生的狭窄时间窗口,这表明L4回路经过校准以在不同幅度的输入下维持兴奋和抑制的相对水平。