Related Experiment Video
Updated: Jun 1, 2026

Two-photon Calcium Imaging in Neuronal Dendrites in Brain Slices
Published on: March 15, 2018
Involvement of the Cav3.2 T-type calcium channel in thalamic neuron discharge patterns
Yi-Fang Liao1, Meng-Li Tsai, Chien-Chang Chen
1Institute of Zoology, National Taiwan University, Roosevelt Road, Taipei, Taiwan.
Background:
Mice that have defects in their low-threshold T-type calcium channel (T-channel) genes show altered pain behaviors. The changes in the ratio of nociceptive neurons and the burst firing property of reticular thalamic (RT) and ventroposterior (VP) neurons in Cav3.2 knockout (KO) mice were studied to test the involvement of thalamic T-channel and burst firing activity in pain function.
Results:
Under pentobarbital or urethane anesthesia, the patterns of tonic and burst firings were recorded in functionally characterized RT and VPL neurons of Cav3.2 KO mice. Many RT neurons were nociceptive (64% under pentobarbital anesthesia and 50% under urethane anesthesia). Compared to their wild-type (WT) controls, fewer nociceptive RT neurons were found in Cav3.2 KO mice. Both nociceptive and tactile RT neurons showed fewer bursts in Cav3.2 KO mice. Within a burst, RT neurons of Cav3.2 KO mice had a lower spike frequency and less-prominent accelerando-decelerando change. In contrast, VP neurons of Cav3.2 KO mice showed a higher ratio of bursts and a higher discharge rate within a burst than those of the WT control. In addition, the long-lasting tonic firing episodes in RT neurons of the Cav3.2 KO had less stereotypic regularity than their counterparts in WT mice.
Conclusions:
RT might be important in nociception of the mouse. In addition, we showed an important role of Cav3.2 subtype of T-channel in RT burst firing pattern. The decreased occurrence and slowing of the bursts in RT neurons might cause the increased VP bursts. These changes would be factors contributing to alternation of pain behavior in the Cav3.2 KO mice.
Insights
Defects in T-type calcium channels (T-channels) in mice alter pain behaviors. Cav3.2 knockout mice show fewer nociceptive neurons and altered burst firing in thalamic neurons, impacting pain processing.
Area of Science:
- Neuroscience
- Pain Research
- Ion Channels
Background:
- Altered pain behaviors are observed in mice with defects in low-threshold T-type calcium channel (T-channel) genes.
- The study investigates the role of thalamic T-channels and neuronal burst firing in pain function using Cav3.2 knockout (KO) mice.
Purpose of the Study:
- To examine the changes in nociceptive neuron ratios in Cav3.2 KO mice.
- To analyze the burst firing properties of reticular thalamic (RT) and ventroposterior (VP) neurons in Cav3.2 KO mice.
- To determine the involvement of thalamic T-channel activity in pain perception.
Main Methods:
- Electrophysiological recordings of RT and VPL neurons in anesthetized Cav3.2 KO and wild-type (WT) mice.
- Functional characterization of neurons to identify nociceptive and tactile types.
- Analysis of tonic and burst firing patterns, including spike frequency and regularity.
Main Results:
- Cav3.2 KO mice exhibited a reduced proportion of nociceptive RT neurons compared to WT controls.
- Both nociceptive and tactile RT neurons in Cav3.2 KO mice showed decreased burst firing frequency and altered intraburst spike patterns.
- VP neurons in Cav3.2 KO mice displayed an increased burst firing ratio and higher intraburst discharge rates.
Conclusions:
- The reticular thalamus (RT) plays a significant role in nociception.
- The Cav3.2 T-channel subtype is crucial for regulating RT neuronal burst firing patterns.
- Altered RT burst firing dynamics in Cav3.2 KO mice may lead to increased VP bursts, contributing to modified pain behaviors.
Related Concept Videos
The Role of Ion Channels in Neuronal Computation
Sometimes a single EPSP is strong enough to induce an action potential in the postsynaptic neuron. However, multiple presynaptic inputs must often create EPSPs around the same time for the postsynaptic neuron to be sufficiently depolarized to fire an action potential.
Ligand-Gated Ion Channel Receptor: Gating Mechanism
Voltage-gated Ion Channels
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Action Potential
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...

