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Published on: April 5, 2016
Optogenetic Visualization of Presynaptic Tonic Inhibition of Cerebellar Parallel Fibers
Ken Berglund1, Lei Wen2, Robert L Dunbar3
1Department of Neurobiology, Duke University Medical Center, Durham, North Carolina 27710, Departments of Neurosurgery and Anesthesiology, Emory University School of Medicine, Atlanta, Georgia 30322.
Unlabelled:
Tonic inhibition was imaged in cerebellar granule cells of transgenic mice expressing the optogenetic chloride indicator, Clomeleon. Blockade of GABAA receptors substantially reduced chloride concentration in granule cells due to block of tonic inhibition. This indicates that tonic inhibition is a significant contributor to the resting chloride concentration of these cells. Tonic inhibition was observed not only in granule cell bodies, but also in their axons, the parallel fibers (PFs). This presynaptic tonic inhibition could be observed in slices both at room and physiological temperatures, as well as in vivo, and has many of the same properties as tonic inhibition measured in granule cell bodies. GABA application revealed that PFs possess at least two types of GABAA receptor: one high-affinity receptor that is activated by ambient GABA and causes a chloride influx that mediates tonic inhibition, and a second with a low affinity for GABA that causes a chloride efflux that excites PFs. Presynaptic tonic inhibition regulates glutamate release from PFs because GABAA receptor blockade enhanced both the frequency of spontaneous EPSCs and the amplitude of evoked EPSCs at the PF-Purkinje cell synapse. We conclude that tonic inhibition of PFs could play an important role in regulating information flow though cerebellar synaptic circuits. Such cross talk between phasic and tonic signaling could be a general mechanism for fine tuning of synaptic circuits.
Significance Statement:
This paper demonstrates that an unconventional form of signaling, known as tonic inhibition, is found in presynaptic terminals and affects conventional synaptic communication. Our results establish the basic characteristics and mechanisms of presynaptic tonic inhibition and show that it occurs in vivo as well as in isolated brain tissue.
Insights
Presynaptic tonic inhibition, a form of GABAA receptor signaling, was found in cerebellar parallel fibers. This signaling regulates glutamate release and impacts cerebellar circuit information flow.
Area of Science:
- Neuroscience
- Cellular Neuroscience
- Synaptic Physiology
Background:
- Tonic inhibition, mediated by GABAA receptors, influences neuronal excitability.
- Its presence and function in presynaptic terminals, specifically cerebellar parallel fibers, remain less understood.
Purpose of the Study:
- To investigate the presence and characteristics of tonic inhibition in cerebellar granule cell axons (parallel fibers).
- To determine the functional impact of presynaptic tonic inhibition on synaptic transmission and cerebellar circuit function.
Main Methods:
- Utilized transgenic mice expressing the optogenetic chloride indicator, Clomeleon, for imaging chloride concentration.
- Employed electrophysiological recordings in brain slices and in vivo to measure GABAA receptor activity and synaptic transmission.
- Pharmacologically blocked GABAA receptors to assess their role in tonic inhibition.
Main Results:
- Tonic inhibition was detected in cerebellar granule cell bodies and their axons (parallel fibers), contributing significantly to resting chloride concentration.
- Parallel fibers exhibit distinct GABAA receptors: high-affinity for ambient GABA mediating tonic inhibition (chloride influx), and low-affinity causing excitation (chloride efflux).
- Presynaptic tonic inhibition was found to regulate glutamate release, enhancing spontaneous and evoked excitatory postsynaptic currents at the parallel fiber-Purkinje cell synapse.
Conclusions:
- Tonic inhibition in parallel fibers is a key regulator of presynaptic neurotransmitter release.
- This presynaptic signaling mechanism plays a crucial role in modulating information flow within cerebellar circuits.
- The interplay between phasic and tonic signaling represents a general strategy for fine-tuning synaptic circuits.

