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1 ic compartment, and 2) reduced activation of voltage-dependent potassium channels.
2 KTx specificity for calcium-activated versus voltage-dependent potassium channels.
3 Shaker (Kv1) and Shal (Kv4), both expressing voltage-dependent potassium channels.
4 the mGluR1-dependent down-regulation of Kv7 voltage-dependent potassium channel and hyperpolarizatio
5 Application of indole slows activation of voltage-dependent potassium channels and reduces steady-
6 elopmental transcriptional regulation of Kv1 voltage-dependent potassium channels and the resulting p
7 Kv3.3 proteins are pore-forming subunits of voltage-dependent potassium channels, and mutations in t
8 lices, consisting of S1-S6, conserved in all voltage-dependent potassium channels, and the unique S0
12 ns in KCNC3, the gene that encodes the Kv3.3 voltage dependent potassium channel, cause Spinocerebell
15 ods were used to determine the expression of voltage-dependent potassium channel currents and mRNAs i
17 CA, is a rapidly activating and inactivating voltage-dependent potassium channel expressed in chemose
19 visualize this movement in the mammalian Eag voltage-dependent potassium channel in lipid membrane ve
21 rized the properties and functional roles of voltage-dependent potassium channels in the dendrites of
22 that METH exposure affected the activity of voltage-dependent potassium channels in these neurons.
25 ood flow responses, and identify upregulated voltage-dependent potassium channel (KV) number in cereb
34 se in IGABA was assessed by coexpressing the voltage-dependent potassium channel Kv1.4 along with the
36 e beta subunit (Kvbeta) of the Shaker family voltage-dependent potassium channels (Kv1) is a cytosoli
38 ion of ERK results in phosphorylation of the voltage-dependent potassium channel Kv4.2 and the nuclea
39 that oxidation of a methionine residue in a voltage-dependent potassium channel modulates its inacti
40 ved lncRNA, named Kcna2 antisense RNA, for a voltage-dependent potassium channel mRNA, Kcna2, in firs
41 key and rat optic nerves, immunolabeling for voltage-dependent potassium channels of the Shaker famil
43 s inhibits neuronal excitability through the voltage-dependent potassium channel, promotes white adip
45 nd that reduced functional expression of the voltage-dependent potassium channel subunit Kv1.1 substa
49 pret the recent atomic structures of the Kv (voltage-dependent potassium) channel T1 domain in a func
50 pioid receptors are coupled to a Shaker-type voltage-dependent potassium channel that is sensitive to
52 s study, we analyze KvAP, an archaebacterial voltage-dependent potassium channel, to study the mobili
53 to membrane potential, indicating few active voltage-dependent potassium channels, whereas sympatheti
54 Smooth muscle cells express Kv7.4 and Kv7.5 voltage-dependent potassium channels, which have each be