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1 inactivation caused by the "ball" peptide in voltage-dependent K+ channels.
2  matched closely the nodal presence of these voltage-dependent K+ channels.
3 + channels, Ca(2+)-activated K+ channels and voltage-dependent K+ channels.
4 c densities that clusters NMDA receptors and voltage-dependent K+ channels.
5 l types: ATP-sensitive, Ca(2+)-regulated and voltage-dependent K(+) channels.
6 on with peptide toxins that target different voltage-dependent K(+) channels.
7   Patch-clamp techniques were used to survey voltage-dependent K+ channel activities in different cel
8 ever, we were able to identify four types of voltage-dependent K(+) channels and we categorized them
9             The sequence of H5 is similar in voltage-dependent K+ channels and features a strictly co
10                                              Voltage-dependent K+ channels are members of the family
11  Regulation by voltage is similar to that in voltage-dependent K+ channels, arising from positively c
12     Here, we report that guard cells utilize voltage-dependent K+ channels as targets of the osmosens
13                               The Kv1 family voltage-dependent K(+) channels assemble with cytosolic
14                       The Kv-like (potassium voltage-dependent) K(+) channels at the plasma membrane,
15                   4-aminopyridine or related voltage-dependent K channel blockers could be a useful a
16                            The regulation of voltage-dependent K+ channels by phosphorylation/dephosp
17                                   Like other voltage-dependent K(+) channels, Ca(2+)-activated K(+) c
18                                        A non-voltage-dependent K+ channel does not exhibit the same d
19                                           In voltage-dependent K+ channels, each of the four identica
20    We have analysed by electron microscopy a voltage-dependent K(+) channel from Aeropyrum pernix (Kv
21 tarantula venom voltage-sensor toxins on the voltage-dependent K+ channel from Aeropyrum pernix (KvAP
22     Here we present the structure of KvAP, a voltage-dependent K+ channel from Aeropyrum pernix.
23  of a variety of antiproliferative agents on voltage-dependent K+ channel function in cortical oligod
24 ontrols the membrane expression of the human voltage-dependent K(+) channel human ether-a-go-go-relat
25  to establish the basic gating mechanisms of voltage-dependent K(+) channels, implying prior independ
26                                              Voltage-dependent K(+) channels in the apical dendrites
27  the major somatodendritic delayed rectifier voltage-dependent K+ channel in central neurons, is regu
28 lcium-dependent potassium (BK-type) Ca2+ and voltage-dependent K+ channels in chromaffin cells exhibi
29             This could be due to blockade of voltage-dependent K+ channels in the heart, leading to a
30 died the role of Kv1.4, a presynaptic A-type voltage-dependent K+ channel, in both memory and LTP.
31 terminus but not as expected by analogy with voltage-dependent K+ channels, in H5.
32 rprisingly large effect on the function of a voltage-dependent K(+) channel, including its pharmacolo
33                        Our data suggest that voltage-dependent K+ channel inhibition with 4-aminopyri
34 variety of conditions that the function of a voltage-dependent K+ channel is dependent on the negativ
35 and (ii) cell depolarization and blockage of voltage-dependent K+ channels is likely to be the trigge
36  with the recent proposal that the sensor in voltage-dependent K+ channels is located at the membrane
37  structural basis for the activation gate of voltage-dependent K+ channels is not known, but indirect
38 ctively decreases 4-aminopyridine sensitive, voltage-dependent K(+) channel (K(v)) currents by approx
39                 Pore-blocking toxins inhibit voltage-dependent K(+) channels (Kv channels) by pluggin
40 STRACT: Large-conductance KCa (BK) and other voltage-dependent K(+) channels (Kv) are highly expresse
41 ance Ca(2+) -activated K(+) channel (BK) and voltage-dependent K(+) channels (Kv) on [Ca(2+) ]i respo
42  test directly the hypothesis that different voltage-dependent K+ channel (Kv channel) alpha subunits
43      Whereas many aspects of inactivation of voltage-dependent K+ channels (Kv) can be described by a
44                                          The voltage-dependent K+ channel Kv1.2 grew three-dimensiona
45 actory information by decreasing activity of voltage-dependent K channels (Kv1.3).
46                In this study we identified a voltage-dependent K(+) channel (Kv1.1) expressed in ICC
47         We have cloned the cDNA encoding the voltage-dependent K+ channel Kv2.1 from human brain (hKv
48 d phospholipid interface of the VSD from the voltage-dependent K(+) channel KvAP (prokaryotic Kv from
49             We present two structures of the voltage-dependent K(+) channel KvAP, in complex with mon
50 KOR sequence to the crystal structure of the voltage-dependent K+ channel KvAP from Aeropyrum pernix
51 al structure and dynamics of the prokaryotic voltage-dependent K+ channel (KvAP) at 0 millivolts, usi
52 tretch of eight residues that are similar in voltage-dependent K+ channels, Kvs, and this stretch is
53                                         Many voltage-dependent K+ channels open when the membrane is
54                                     The HERG voltage-dependent K+ channel plays a role in cardiac ele
55    This rise in [Ca2+]i causes inhibition of voltage-dependent K+ channels (possibly Kv1.5), membrane
56                 The inactivation peptides of voltage-dependent K(+) channels reach their site of acti
57                                              Voltage-dependent K(+) channels rely on precise dynamic
58                                              Voltage-dependent K(+) channels serve to set the excitab
59 2 clonal cell line expresses an O2-sensitive voltage-dependent K+ channel similar to that recorded in
60                             Ca(2+)-activated voltage-dependent K(+) channels (Slo1, KCa1.1, Maxi-K, o
61   Mutations in the K(V)7.2 gene encoding for voltage-dependent K(+) channel subunits cause neonatal e
62                     The Slack gene encodes a voltage-dependent K(+) channel that has a unitary conduc
63                       In KvAP, a prokaryotic voltage-dependent K+ channel, the S4 helix forms part of
64 mbrane depolarizes, but in contrast to other voltage-dependent K(+) channels, they also open when int
65 f channel opening on membrane voltage allows voltage-dependent K+ channels to turn on almost like a s
66 The structure of the cytoplasmic assembly of voltage-dependent K+ channels was solved by x-ray crysta
67                                       Single voltage-dependent K+ channels were recorded in cell-atta
68 he IfastAHP is predominantly attributable to voltage-dependent K+ channels, whereas Ca2+-dependent an
69 ere we describe the structure of a chimaeric voltage-dependent K+ channel, which we call the 'paddle-
70                                              Voltage-dependent K(+) channels with a conductance of 55

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