Pyramidal Neurons Switch From Integrators In Vitro to Resonators Under In Vivo-Like Conditions
- 1 December 2008
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 100 (6), 3030-3042
- https://doi.org/10.1152/jn.90634.2008
Abstract
During wakefulness, pyramidal neurons in the intact brain are bombarded by synaptic input that causes tonic depolarization, increased membrane conductance (i.e., shunting), and noisy fluctuations in membrane potential; by comparison, pyramidal neurons in acute slices typically experience little background input. Such differences in operating conditions can compromise extrapolation of in vitro data to explain neuronal operation in vivo. For instance, pyramidal neurons have been identified as integrators (i.e., class 1 neurons according to Hodgkin's classification of intrinsic excitability) based on in vitro experiments but that classification is inconsistent with the ability of hippocampal pyramidal neurons to oscillate/resonate at theta frequency since intrinsic oscillatory behavior is limited to class 2 neurons. Using long depolarizing stimuli and dynamic clamp to reproduce in vivo-like conditions in slice experiments, we show that CA1 hippocampal pyramidal cells switch from integrators to resonators, i.e., from class 1 to class 2 excitability. The switch is explained by increased outward current contributed by the M-type potassium current IM, which shifts the balance of inward and outward currents active at perithreshold potentials and thereby converts the spike-initiating mechanism as predicted by dynamical analysis of our computational model. Perithreshold activation of IM is enhanced by the depolarizing shift in spike threshold caused by shunting and/or sodium channel inactivation secondary to tonic depolarization. Our conclusions were validated by multiple comparisons between simulation and experimental data. Thus even so-called “intrinsic” properties may differ qualitatively between in vitro and in vivo conditions.Keywords
This publication has 56 references indexed in Scilit:
- Biophysical Basis for Three Distinct Dynamical Mechanisms of Action Potential InitiationPLoS Computational Biology, 2008
- Coupling of L-Type Ca2+Channels to KV7/KCNQ Channels Creates a Novel, Activity-Dependent, Homeostatic Intrinsic PlasticityJournal of Neurophysiology, 2008
- The effects of cholinergic neuromodulation on neuronal phase-response curves of modeled cortical neuronsJournal of Computational Neuroscience, 2008
- Mechanisms of Firing Patterns in Fast-Spiking Cortical InterneuronsPLoS Computational Biology, 2007
- Nonlinear Interaction between Shunting and Adaptation Controls a Switch between Integration and Coincidence Detection in Pyramidal NeuronsJournal of Neuroscience, 2006
- The high-conductance state of neocortical neurons in vivoNature Reviews Neuroscience, 2003
- Distinct frequency preferences of different types of rat hippocampal neurones in response to oscillatory input currentsThe Journal of Physiology, 2000
- Simplified Dynamics of Human and Mammalian Neocortical NeuronsJournal of Theoretical Biology, 1999
- Type I Membranes, Phase Resetting Curves, and SynchronyNeural Computation, 1996
- Liquid junction potentials and small cell effects in patch-clamp analysisThe Journal of Membrane Biology, 1991