Thalamocortical Up States: Differential Effects of Intrinsic and Extrinsic Cortical Inputs on Persistent Activity
Open Access
- 18 April 2007
- journal article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 27 (16), 4261-4272
- https://doi.org/10.1523/jneurosci.0003-07.2007
Abstract
During behavioral quiescence, the neocortex generates spontaneous slow oscillations that consist of Up and Down states. Up states are short epochs of persistent activity that resemble the activated neocortex during arousal and cognition. Although Up states are generated within the cortex, the impact of extrinsic (thalamocortical) and intrinsic (intracortical) inputs on the persistent activity is not known. Using thalamocortical slices, we found that the persistent cortical activity during spontaneous Up states effectively drives thalamocortical relay cells through corticothalamic connections. However, thalamic activity can also precede the onset of cortical Up states, which suggests a role of thalamic activity in triggering cortical Up states through thalamocortical connections. In support of this hypothesis, we found that cutting the connections between thalamus and cortex reduced the incidence of spontaneous Up states in the cortex. Consistent with a facilitating role of thalamic activity on Up states, electrical or chemical stimulation of the thalamus triggered cortical Up states very effectively and enhanced those occurring spontaneously. In contrast, stimulation of the cortex triggered Up states only at very low intensities but otherwise had a suppressive effect on Up states. Moreover, cortical stimulation suppressed the facilitating effect of thalamic stimulation on Up states. In conclusion, thalamocortical inputs facilitate and intracortical inputs suppress cortical Up states. Thus, extrinsic and intrinsic cortical inputs differentially regulate persistent activity, which may serve to adjust the processing state of thalamocortical networks during behavior.Keywords
This publication has 63 references indexed in Scilit:
- Resonance (∼10 Hz) of excitatory networks in motor cortex: effects of voltage‐dependent ion channel blockersThe Journal of Physiology, 2006
- Short-Term Depression in Thalamocortical Synapses of Cat Primary Visual CortexJournal of Neuroscience, 2005
- Dynamics of sensory thalamocortical synaptic networks during information processing statesProgress in Neurobiology, 2004
- Persistent Cortical Activity: Mechanisms of Generation and Effects on Neuronal ExcitabilityCerebral Cortex, 2003
- Interaction of sensory responses with spontaneous depolarization in layer 2/3 barrel cortexProceedings of the National Academy of Sciences, 2003
- The high-conductance state of neocortical neurons in vivoNature Reviews Neuroscience, 2003
- Turning on and off recurrent balanced cortical activityNature, 2003
- THALAMOCORTICAL SYNAPSESProgress in Neurobiology, 1997
- Firing rates and patterns of output and nonoutput cells in cortical areas 5 and 7 of cat during the sleep-waking cycleExperimental Neurology, 1978
- Brain stem reticular formation and activation of the EEGElectroencephalography and Clinical Neurophysiology, 1949