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June 4, 2003The Journal of Physiology162 citationsOpen Access

Presynaptic Rat Kv1.2 Channels Suppress Synaptic Terminal Hyperexcitability Following Action Potential Invasion

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PDPaul D. DodsonBBBrian BillupsZRZoltán Rusznák

Key Result

Blockade of Kv1.2 channels with TsTX-Kalpha increased depolarising after-potential amplitude, leading to aberrant action potentials and indicating they suppress terminal hyperexcitability.

Structured PICO

P
Population
Rat calyx of Held (presynaptic terminals and bushy cell somata)
I
Intervention
Selective blockade of Kv1.1 and Kv1.2 containing channels with dendrotoxin-K (DTX-K) and tityustoxin-Kalpha (TsTX-Kalpha)
C
Comparator
Baseline/unblocked state
O
Outcome
Presynaptic low threshold current and terminal excitability (depolarising after-potential amplitude)surrogate

Kv1.2 channels play a crucial presynaptic role in suppressing terminal hyperexcitability during the depolarising after-potential in rat synapses.

Abstract

Voltage-gated K+ channels activating close to resting membrane potentials are widely expressed and differentially located in axons, presynaptic terminals and cell bodies. There is extensive evidence for localisation of Kv1 subunits at many central synaptic terminals but few clues to their presynaptic function. We have used the calyx of Held to investigate the role of presynaptic Kv1 channels in the rat by selectively blocking Kv1.1 and Kv1.2 containing channels with dendrotoxin-K (DTX-K) and tityustoxin-Kalpha (TsTX-Kalpha) respectively. We show that Kv1.2 homomers are responsible for two-thirds of presynaptic low threshold current, whilst Kv1.1/Kv1.2 heteromers contribute the remaining current. These channels are located in the transition zone between the axon and synaptic terminal, contrasting with the high threshold K+ channel subunit Kv3.1 which is located on the synaptic terminal itself. Kv1 homomers were absent from bushy cell somata (from which the calyx axons arise); instead somatic low threshold channels consisted of heteromers containing Kv1.1, Kv1.2 and Kv1.6 subunits. Current-clamp recording from the calyx showed that each presynaptic action potential (AP) was followed by a depolarising after-potential (DAP) lasting around 50 ms. Kv1.1/Kv1.2 heteromers had little influence on terminal excitability, since DTX-K did not alter AP firing. However TsTX-Kalpha increased DAP amplitude, bringing the terminal closer to threshold for generating an additional AP. Paired pre- and postsynaptic recordings confirmed that this aberrant AP evoked an excitatory postsynaptic current (EPSC). We conclude that Kv1.2 channels have a general presynaptic function in suppressing terminal hyperexcitability during the depolarising after-potential.

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Cite This Study

Dodson et al. (2003) studied this question. dendrotoxin-K (DTX-K) and tityustoxin-Kalpha (TsTX-Kalpha) was evaluated on presynaptic low threshold current and terminal excitability. Blockade of Kv1.2 channels with TsTX-Kalpha increased depolarising after-potential amplitude, leading to aberrant action potentials and indicating they suppress terminal hyperexcitability.

synapsesocial.com/papers/6a62c90d0582df600cc3e3echttps://doi.org/10.1113/jphysiol.2003.046250
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Novel effects of dendrotoxin homologues on subtypes of mammalian Kv1 potassium channels expressed in Xenopus oocytes1996 · 133 citations
  2. 2Identification of a trafficking determinant localized to the Kv1 potassium channel pore2001 · 101 citations
  3. 3Association and colocalization of the Kvbeta1 and Kvbeta2 beta-subunits with Kv1 alpha-subunits in mammalian brain K+ channel complexes.1997 · 291 citations
  4. 4Localization of Kv1.1 and Kv1.2, two K channel proteins, to synaptic terminals, somata, and dendrites in the mouse brain1994 · 397 citations
  5. 5Direct patch recording from identified presynaptic terminals mediating glutamatergic EPSCs in the rat CNS, in vitro.1994 · 367 citations