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1 tion with a binding site which modulates Cl- channel kinetics.
2 lpha) without altering the properties of Na+ channel kinetics.
3 single-channel conductance or the intrinsic channel kinetics.
4 transduction of the effects of the toxin on channel kinetics.
5 he fastest parts of the EPSC to be shaped by channel kinetics.
6 channelrhodopsin-2, while maintaining the ms-channel kinetics.
7 tion of Na(v)1.6-encoded currents and alters channel kinetics.
8 rent suppression without affecting basal Kv7 channel kinetics.
9 Chronos, a channelrhodopsin with ultra-fast channel kinetics.
10 mic loop of MscL, and this also led to rapid channel kinetics.
11 not appear to be secondary to changes in ion channel kinetics.
12 native KARs exhibit characteristically slow channel kinetics.
13 n activation by ACh and 4BP-TQS is in single-channel kinetics.
14 n rectification but did not alter effects on channel kinetics.
15 O neuronal model that incorporated T and P/Q channel kinetics.
16 not cell-type-specific differences in sodium channel kinetics.
17 ong the cochlea underlies the gradient of BK-channel kinetics.
18 inactivation curves, as well as accelerating channel kinetics.
19 rominent aberrations in open probability and channel kinetics.
20 ited hSlo current density but did not change channel kinetics.
21 protein kinase A (PKA) pathway acting on ion channel kinetics.
22 he effects of beta-adrenergic stimulation on channel kinetics.
23 of CaT but not of APD, which depends on ion-channel kinetics.
24 n the Ca(2+) dynamics, but is independent of channel kinetics.
25 -3/TASK-1) displayed nearly identical single-channel kinetics.
26 ependence of spiking activity on the opsin's channel kinetics.
27 n ROMK (+/+ and +/-) exhibited normal single channel kinetics.
28 f a simplified "toy" model for the potassium channel kinetics.
29 er the toxin had isoform-specific effects on channel kinetics.
30 on voltage-gated sodium channels and modify channel kinetics.
31 ndent capacitance was consistent with sodium channel kinetics.
32 es an effective approach for modeling single channel kinetics.
33 ither RGS7 or RGS9 modestly accelerated GIRK channel kinetics.
34 ession of Gbeta5 alone had no effect on GIRK channel kinetics.
35 but not the phospholipid effect on the KACh channel kinetics.
36 uggests that the SSS-dependent regulation of channel kinetics accounts for nearly 40% of the decrease
37 that summarizes the effects of PAS on single channel kinetics, accounts for the PAS effects on macros
38 t the activity-dependent regulation of Kv2.1 channel kinetics allows these channels to modulate repet
41 corporates accurate representations of opsin channel kinetics and delivery modes, spatial distributio
45 ith notable differences in Ca2+ sensitivity, channel kinetics and modulation by DTT from the native I
48 availability in different states, as well as channel kinetics and sensitivity, have allowed us to elu
50 en obtained of the mechanisms modulating ion channel kinetics and thus of cell bioelectric properties
51 distinguished unambiguously by their single-channel kinetics and voltage-dependent rectification.
52 ntial components: two matching desensitizing channel kinetics, and a third component at least 10 time
53 comparisons of simulated and/or measured ion channel kinetics, and facilitates field-wide standardiza
54 the pore-forming alpha subunit can alter BK channel kinetics, and gating is dramatically slowed by c
55 Other mutations did not affect the single-channel kinetics, and may reduce ATP inhibition by inter
57 ransmembrane proteins alter the trafficking, channel kinetics, and pharmacology of the receptors in a
58 s in pH sensitivity, Ca(2+) permeability and channel kinetics, any change in the level of individual
60 ther, the effects of 3alpha5alphaP on single-channel kinetics are similar for wild-type receptors and
61 This effect was separate from modulation of channel kinetics, as mutations within the extracellular
63 eling (HMM) can be applied to extract single channel kinetics at signal-to-noise ratios that are too
64 e critical to form GIRK channels with normal channel kinetics based on heterologous expression studie
65 nal deletions of Kvbeta1.2 no longer altered channel kinetics but promoted dramatic increases in Kv1.
66 d PSD-93delta had no discernible effect upon channel kinetics but resulted in cell surface Kir2.1 clu
67 e major effect of these mutations was not on channel kinetics but was largely, if not entirely, on th
69 t to GABA and baclofen, Vc1.1 changes Cav2.2 channel kinetics by increasing the rate of activation an
70 to identify what specific information on ion channel kinetics, calcium handling, and dynamic changes
71 ation about temperature available in the TRP channels' kinetics can be read out from the times betwee
72 Furthermore, while subtle changes in AMPA channel kinetics could also be observed, we did not find
74 ound additional alterations in mutant PIEZO1 channel kinetics, differences in response to osmotic str
75 with respect to their ligand preferences and channel kinetics during activation, desensitization, and
76 d replacements engineered here showed normal channel kinetics except the two aromatic substitutions,
78 activations and adaptations, irrespective of channel kinetics, from the requirement that the free ene
79 a recent study, examination of these single-channel kinetics has revealed that NMDA receptors can en
80 ctural bases of their ligand preferences and channel kinetics have been incompletely characterized.
81 e shows that truncation of the N2 CTD alters channel kinetics; however, the mechanism by which this o
82 parable effects of SUR on ATP inhibition and channel kinetics implies that the cytoplasmic C terminus
84 he cell surface and those that cause altered channel kinetics in proteins that reach the cell surface
85 n exhibit striking inter-cell variability in channel kinetics in response to the agonists kainate and
86 he roles of glutamate diffusion, uptake, and channel kinetics in shaping the AMPA receptor EPSC were
87 idly equilibrating steps are eliminated, the channel kinetics in these models are represented by a si
92 , ATP dose-response relationships and single-channel kinetics, indicating that DeltaF508-CFTR is not
93 c acid and alkaline pH(i), and showed single-channel kinetics indistinguishable from those of TRAAK.
94 ell data indicated that although one type of channel kinetics is preferentially activated in each Thl
95 site 2 neurotoxins often irreversibly modify channel kinetics, lappaconitine irreversibly blocks the
96 neurons is feasible, but opsins with faster channel kinetics may be necessary to convey information
98 synaptic network activity through their slow channel kinetics, most prominently at mossy fiber (MF)-C
99 bona-fide AMPAR modulatory protein affecting channel kinetics of AMPARs, necessary for synaptic hippo
100 Interestingly, we observe that the single channel kinetics of Ca(2+) inactivation influences the t
102 atergic synapses is determined by the single-channel kinetics of postsynaptic NMDA receptor channels.
103 sion is compromised by AChR deficiency, fast channel kinetics of the epsilonN346del-AChR and incomple
104 based on molecular mechanisms, e.g., single channel kinetics of the inositol 1,4,5-trisphosphate (IP
107 epsy and neuropathic pain because changes in channel kinetics or axonal properties can change the rat
109 synaptic potentials, acetylcholine receptor channel kinetics, or endplate ultrastructure, but endpla
110 ytoskeletal disruption in vitro alters Na(+) channel kinetics, producing a late Na(+) current that ca
112 e-dependent changes in voltage-dependent ion channel kinetics (rates of opening, closing, inactivatin
114 duced modification of nicotinic ACh receptor channel kinetics results in an increase in the open-chan
120 ny cellular processes, ranging from membrane channel kinetics to transcriptional regulation, and link
121 ould not be attributed to a change in Ca(2+) channel kinetics, voltage dependence, prepulse inactivat
122 ither RGS7 or RGS9, the acceleration of GIRK channel kinetics was strongly increased over that produc
123 lular loop of IRK, including the "P-region." Channel kinetics were essentially unaffected by the N- a
130 idal neurons is critically dependent on KCNQ channel kinetics whereas the identity of the sAHP calciu
131 t position 56 to histidine led to changes in channel kinetics which were dependent upon the pH on the
132 n either the cell-attached or excised single-channel kinetics which, in this channel, argues against
133 munication is a consequence of rapid calcium-channel kinetics, which allow significant calcium entry
134 ated neural computation and tailoring of Nav channel kinetics with potassium channel kinetics to enha