コーパス検索結果 (1語後でソート)
通し番号をクリックするとPubMedの該当ページを表示します
1 a recovery of chloride secretion and apical membrane conductance.
2 y (HEK 293) cells and significantly increase membrane conductance.
3 ited spike firing through activation of K(+) membrane conductance.
4 the status of a voltage-dependent, intrinsic membrane conductance.
5 +/- S.E.M.), without appreciable effects on membrane conductance.
6 IL-2 (0.01-500 ng/ml) alone had no effect on membrane conductance.
7 rebound and regular spikes and an increased membrane conductance.
8 mbrane potential and an increase in apparent membrane conductance.
9 solved monitoring (</=30 ms) of IC-modulated membrane conductance.
10 ed by a decrease or no significant change in membrane conductance.
11 ude, accompanied by a pronounced increase in membrane conductance.
12 fect was not associated with changes in cell membrane conductance.
13 iated with either an increase or decrease in membrane conductance.
14 by cellular hyperpolarization and increased membrane conductance.
15 was typically associated with a decrease in membrane conductance.
16 urrent (Iacpd) associated with a decrease of membrane conductance.
17 d a reversible voltage-dependent decrease in membrane conductance.
18 esence of the appropriate mRNA, protein, and membrane conductance.
19 m changes in neurotransmitter release and/or membrane conductance.
20 sed to measure the voltage dependency of the membrane conductance.
21 econds to seconds, depending on the level of membrane conductance.
22 ontacts with vestibular afferent nerves, and membrane conductance.
23 tral and its activation had little effect on membrane conductance.
24 ) channels and the Abeta-induced increase in membrane conductance.
25 at include a substantial increase in overall membrane conductance.
26 l dendrites and contributed substantially to membrane conductance.
27 (P)10 because of a maturational increase in membrane conductance.
28 ate, whereas serotonin decreases the overall membrane conductance.
29 ng substantial (21 nS on average) changes in membrane conductance.
30 , on deoxygenation, showed a further rise in membrane conductance.
31 IL-2 (0.01-10 ng/ml) alone had no effect on membrane conductance.
32 everalfold increase in the rate of change of membrane conductance.
33 pette seal that is in parallel with the true membrane conductance.
34 y, followed by exponentiation through active membrane conductances.
35 etween excitatory and inhibitory neurons and membrane conductances.
36 ad effects on cells including alterations in membrane conductances.
37 lex neurons, together with voltage-dependent membrane conductances.
38 annels involved in the control of background membrane conductances.
39 ses the activation of at least two different membrane conductances.
40 ities, the effective reversal potentials and membrane conductances.
41 imescale dynamics that arise from correlated membrane conductances.
42 ent sets of synaptic strengths and intrinsic membrane conductances.
43 may develop slowly by continuous changes in membrane conductances, a discontinuous change in axonal
44 ent processing of these OFF inputs by active membrane conductances allows the neuron to discriminate
45 th pentobarbitone and propofol increased the membrane conductance, although the benzodiazepine ligand
46 trations of toxin resulted in an increase of membrane conductance and a decrease in membrane stabilit
48 ward current, associated with an increase in membrane conductance and a reversal potential of ~+30 mV
49 AHP that was associated with an increase in membrane conductance and a rightward shift in the discha
50 this mechanism may contribute to the resting membrane conductance and basal Ca2+ influx in this parti
51 hannels are thought to contribute to resting membrane conductance and basal Ca2+ influx in vascular m
52 f the physiological state of a cell, such as membrane conductance and capacitance, as well as cytopla
55 t human RBCs display circadian regulation of membrane conductance and cytoplasmic conductivity that d
56 It was not accompanied by evident changes in membrane conductance and had a decay time constant simil
57 ged inositol 1,4,5-triphosphate (InsP(3)) on membrane conductance and intracellular Ca(2+) concentrat
58 eters (e.g., channel properties and density, membrane conductance and leak) and will apply to most sp
59 urrent; this change was due to a decrease in membrane conductance and may reflect the suppression of
61 s characterized by a significant decrease in membrane conductance and reversed at a potential close t
63 ons is associated with reductions in passive membrane conductance and the amplitude of the slow after
65 (K1), at hyperpolarized potentials decreases membrane conductance and thereby potentiates the ability
66 n of potassium channels increased the cell's membrane conductance and thus had a shunting effect on G
68 not associated with a significant change in membrane conductance and was relatively independent of m
69 s current was associated with an increase in membrane conductance and was still seen in the presence
70 h other, were associated with an increase in membrane conductance and were attenuated by the applicat
71 I(K-LVA) contributed strongly to the resting membrane conductance and, during trains of simulated EPS
72 s both to their own intrinsic pacemaker-like membrane conductances and excitatory synaptic inputs.
73 mechanisms involving direct control of both membrane conductances and gene expression in the MC4R PV
74 f halothane, isoflurane and enflurane on the membrane conductances and ion channels of cultured corti
76 otoreceptor neurotransmitter expression, and membrane conductances and synaptic vesicle release prope
79 /44 neurones) associated with an increase in membrane conductance, and an inward current (I5-HT,inwar
80 arrages (namely, depolarization, increase in membrane conductance, and increase in membrane potential
81 ization of the membrane potential, decreased membrane conductance, and increased discharge of action
82 ctivity (by depolarizing neurons, increasing membrane conductance, and introducing fluctuations) stro
83 onic', synaptic input, which increases their membrane conductance, and so modifies the spatial and te
84 gest that neurons experience periods of high membrane conductance, and that action potentials are oft
85 depolarization was associated with decreased membrane conductance, and this current had a reversal po
87 Small hyperpolarizing pulses used to measure membrane conductances appeared not to disturb major ioni
88 conductance of the channels and the overall membrane conductance are directly related to the overall
90 Insulin also caused a parallel increase in membrane conductance as measured by whole-cell patch cla
92 confirms activity-dependent co-regulation of membrane conductances as a mechanism underlying homeosta
93 ls (3 of 77) demonstrated clear increases in membrane conductance, associated with the activation of
95 hyperpolarization associated with decreased membrane conductance attributable to blockade of an inwa
99 nt clamp, GIRK activation increased the cell membrane conductance by 1- to 2-fold, hyperpolarized the
101 wo other articles report magnetic control of membrane conductance by attaching ferritin to an ion cha
102 02 models that had varying densities of nine membrane conductances centered on a hand-tuned model tha
104 tial at -93 mV associated with a decrease of membrane conductance, closely resembling the effect of 1
105 ring and are distinguished by a lower "leak" membrane conductance compared with adjacent nonbursting
110 LCO and its subdivisions, alveolar-capillary membrane conductance (DM) and pulmonary capillary blood
111 on UCPs is overlaid by increased nonspecific membrane conductance due to the formation of protein-gen
116 the complementarity of native MS, FPOP, and membrane conductance experiments to shed light on how an
117 and diverse, and that the range of intrinsic membrane conductances expressed endow AD-SPN with the ab
120 O-(3-thiotriphosphate) (GTPgammaS) increased membrane conductance from 10 to 260 picosiemens/picofara
122 ent, voltage-gated Na(+) conductance to leak membrane conductance (g(Na,P)/g(leak)) compared with adj
125 disulfonic acid (DNDS)-sensitive basolateral membrane conductance (GDS) of cells expressing pNBC1, bu
126 n potentials causes changes in fibre resting membrane conductance (Gm) that reflect regulation of ClC
127 technique that permits measurement of plasma membrane conductance (Gm), membrane potential (Vm) and j
128 evidence that these differences are due to a membrane conductance gradient mediated by HCN and leak p
131 nhancement of the widely expressed intrinsic membrane conductance Ih converts the potentiated synapti
132 amyloidogenic proteins and peptides increase membrane conductance in a conformation-specific fashion
133 find that one of the largest contributors to membrane conductance in both conduit and resistance ASMs
135 de channel ClC-1 is the major contributor of membrane conductance in skeletal muscle and has been ass
136 ch markedly blunted calcium oscillations and membrane conductance in spike-expressing cells by suppre
137 om, 24-30 h), a synthetic glucocorticoid, on membrane conductance in the human airway epithelial cell
138 onicity (25 %) failed to evoke any change in membrane conductance in the majority of defolliculated o
139 eronism underscores the importance of plasma membrane conductances in determining the activation stat
141 ntegrity marker dye YO-PRO-1 (YP) and by the membrane conductance increase measured by patch clamp.
145 nt-voltage (I-V) relationship (passive) K(+) membrane conductance is a hallmark of mature hippocampal
148 the loss of gap junctions including reduced membrane conductance, largely reduced sensitivity to the
149 short-term plasticity, how is the balance of membrane conductances maintained over long-term timescal
150 l produced pronounced suppression of resting membrane conductance measured with whole-cell recording
153 PC1 and TRPC4 are essential for an intrinsic membrane conductance mediating the plateau potential in
154 hough immature AIIs lacked the complement of membrane conductances necessary to generate bursting, ph
158 als, temperature-sensitive TRP channels make membrane conductance of cells extremely temperature depe
159 be excluded that the changes observed in the membrane conductance of cortical astrocytes disturb the
162 smembrane chloride movements via the lateral membrane conductance of the cell, GmetL, could serve to
164 ng membrane potentials and voltage-activated membrane conductances of type B cells, but not type A ce
165 The high power dependence (up to 10) of the membrane conductance on the avicin concentration indicat
168 ole, cocaine or amphetamine were observed on membrane conductance or holding current (at holding pote
170 EFO caused a 1.5-2 times greater increase in membrane conductance (p<0.05) than bipolar NEFO, along w
171 shown that a small and transient increase of membrane conductance parallels NP crossing of plasma mem
172 nous expression of GRA17 or GRA23 alters the membrane conductance properties of Xenopus oocytes in a
173 ic vesicle release pathways and postsynaptic membrane conductances provide nuanced control over NTS a
174 ultiple factors such as firing frequency and membrane conductance, raising doubts about their effecti
176 hat the active form of cystic fibrosis trans-membrane conductance regulator (CFTR) Cl(-) channel is a
177 6 with a cysteine in position 35 exhibited a membrane conductance sensitive to the thiol reagent male
178 perpolarized, and analyses of the underlying membrane conductance showed a significant increase in K(
179 on, by way of effects of GABAergic events on membrane conductance ('shunting' inhibition) and membran
180 tant for understanding how the properties of membrane conductances, synapses, dendrites, and the anat
181 membrane voltage in resting neurons with low membrane conductances than in active neurons with high c
182 t one mechanism for mediating the changes in membrane conductance that are essential for the cellular
184 ivation of a rather large increase of apical membrane conductance that preceded significant activatio
185 arge non-selective (PK /PCl approximately 1) membrane conductance that was not blocked by 100 microM
190 oupling synergically interacts with specific membrane conductances to promote synchronization of thes
192 lance of spinal a-motoneuron (aMN) intrinsic membrane conductances underlies the neural output of the
193 cells as a model system, we investigated the membrane conductance underlying these oscillations.
194 ndentation failed to activate an increase in membrane conductance up to the point of causing visible
197 ed to current in a nearly linear manner, and membrane conductance was found to be increased in the Up
200 w IPSPs were reduced without any increase of membrane conductance, we conclude that 5-HT has in addit
204 effects of insulin on membrane turnover and membrane conductance were inhibited by blockers of phosp
206 Ca2+-signalling pathways and the associated membrane conductances were distinguished kinetically and
208 by GABA or bicuculline; however, the resting membrane conductances were reduced by picrotoxin, zinc,
209 embrane potentials associated with increased membrane conductance when pulse widths are microseconds
210 ction of an inward current and a decrease in membrane conductance, whereas activation of group-II or
211 l produced a decrease in outward current and membrane conductance, whereas NaCl, KCl, NH(4)Cl, and HC
212 ses, such as modulation of voltage-dependent membrane conductances, which are expressed as changes in
213 altered by 25-fold by either manipulation of membrane conductance with optogenetic methods or generat
214 increased in the Up state, attributable to a membrane conductance with the same reversal potential as
215 selectivity through interaction of intrinsic membrane conductances with the activation sequence of cl