Roles of specific Kv channel types in repolarization of the action potential in genetically identified subclasses of pyramidal neurons in mouse neocortex

scientific article published on 10 February 2016

Roles of specific Kv channel types in repolarization of the action potential in genetically identified subclasses of pyramidal neurons in mouse neocortex is …
instance of (P31):
scholarly articleQ13442814

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P356DOI10.1152/JN.01028.2015
P932PMC publication ID4922457
P698PubMed publication ID26864770

P50authorRobert FoehringQ68504532
P2093author name stringDongxu Guan
Dhruba Pathak
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P433issue5
P407language of work or nameEnglishQ1860
P304page(s)2317-2329
P577publication date2016-02-10
P1433published inJournal of NeurophysiologyQ1709863
P1476titleRoles of specific Kv channel types in repolarization of the action potential in genetically identified subclasses of pyramidal neurons in mouse neocortex
P478volume115

Reverse relations

cites work (P2860)
Q91858933A Xenopus oocyte model system to study action potentials
Q58737948A-type K channels impede supralinear summation of clustered glutamatergic inputs in layer 3 neocortical pyramidal neurons
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Q90629725Chronic mild stress alters synaptic plasticity in the nucleus accumbens through GSK3β-dependent modulation of Kv4.2 channels
Q52578708Cyproheptadine Regulates Pyramidal Neuron Excitability in Mouse Medial Prefrontal Cortex.
Q52594310Functional Roles of Kv1-mediated Currents in Genetically-Identified Subtypes of Pyramidal Neurons in Layer 5 of Mouse Somatosensory Cortex.
Q54107591GSK3β Modulates Timing-Dependent Long-Term Depression Through Direct Phosphorylation of Kv4.2 Channels.
Q93216551Kv1 potassium channels control action potential firing of putative GABAergic deep cerebellar nuclear neurons
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Q88809355Specialized Subpopulations of Deep-Layer Pyramidal Neurons in the Neocortex: Bridging Cellular Properties to Functional Consequences
Q58610878The tarantula toxin GxTx detains K channel gating charges in their resting conformation
Q46139040Trafficking of Kv2.1 Channels to the Axon Initial Segment by a Novel Nonconventional Secretory Pathway.

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