Indexed keywords
8 BROMO CYCLIC ADENOSINE MONOPHOSPHATE;
8 BROMO CYCLIC AMP;
BUCLADESINE;
CHOLINERGIC RECEPTOR;
CYCLIC AMP;
FORSKOLIN;
ANIMAL;
ARTICLE;
CELL JUNCTION;
DIAPHRAGM;
DRUG EFFECT;
FEMALE;
METABOLISM;
MOUSE;
MUSCLE;
MUSCLE DENERVATION;
NEUROMUSCULAR SYNAPSE;
ORGAN CULTURE;
PHYSIOLOGY;
ULTRASTRUCTURE;
8-BROMO CYCLIC ADENOSINE MONOPHOSPHATE;
ANIMAL;
BUCLADESINE;
CYCLIC AMP;
DIAPHRAGM;
FEMALE;
FORSKOLIN;
INTERCELLULAR JUNCTIONS;
MICE;
MUSCLE DENERVATION;
MUSCLES;
NEUROMUSCULAR JUNCTION;
ORGAN CULTURE;
RECEPTORS, CHOLINERGIC;
SUPPORT, NON-U.S. GOV'T;
SUPPORT, U.S. GOV'T, NON-P.H.S.;
SUPPORT, U.S. GOV'T, P.H.S.;
3
0018741754
Regulation of muscle acetylcholine receptor synthesis in vitro by derivatives of cyclic nucleotides
(1979)
Nature
, vol.278
, pp. 749-752
Betz1
Changeux2
4
0020647606
Denervation increases the degradation rate of acetylcholine receptors and end-plates in vivo and in vitro
(1983)
J. Physiol.
, vol.336
, pp. 159-177
Bevan1
Steinbach2
6
0023718411
Regulation of acetylcholine receptor channel function during development of skeletal muscle
(1988)
Dev. Biol.
, vol.129
, pp. 1-11
Brehm1
Henderson2
7
0024593677
On the effect of muscle activity on the end-plate membrane in denervated mouse muscle
(1989)
J. Physiol.
, vol.410
, pp. 501-512
Brenner1
Rudin2
8
0025246683
Imprinting of acetylcholine receptor messenger RNA accumulation in mammalian neuromuscular synapses
(1990)
Nature
, vol.344
, pp. 544-547
Brenner1
Witzemann2
Sakmann3
10
0025288109
Developmental changes in the half-life of acetylcholine receptors in the myotomal muscle of Xenopus laevis
(1990)
J. Physiol.
, vol.426
, pp. 281-296
Cohen1
Frair2
Cantin3
Hebert4
11
0018348339
Control of acetylcholine receptors in skeletal muscle
(1979)
Physiol. Rev.
, vol.59
, pp. 165-227
Fambrough1
13
0023580393
Calcitonin gene-related peptide and muscle activity regulate acetylcholine receptor α-subunit mRNA levels by distinct intracellular pathways
(1987)
J. Cell Biol.
, vol.105
, pp. 1337-1342
Fontaine1
Klarsfeld2
Changeux3
15
0024021019
Acetylcholine receptor α-, β-, γ-, and 8-subunit mRNA levels are regulated by muscle activity
(1988)
Neuron
, vol.1
, pp. 329-333
Goldman1
Brenner2
Heinemann3
16
0023986105
Immunological evidence for a change in subunits of the acetylcholine receptor in developing and denervated rat muscle
(1988)
Neuron
, vol.1
, pp. 117-125
Gu1
Hall2
18
0023217125
Single channel properties of newly synthesized acetylcholine receptors following denervation of mammalian skeletal muscle
(1987)
Gen. Physiol.
, vol.89
, pp. 999-1014
Henderson1
Lechleiter2
Brehm3
25
0019795530
Denervated endplates have a dual population of junctional acetylcholine receptors
(1981)
Nature
, vol.291
, pp. 239-241
Levitt1
Salpeter2
27
0015021481
The role of adenosine 3′:5′-cyclic monophosphate in the regulation of insulin release by isolated rat islets of Langerhans
(1971)
Biochem. J.
, vol.122
, pp. 115-120
Montague1
Cook2
28
0019829293
Metabolic stabilization of acetylcholine receptors at newly formed neuromuscular junctions in rat
(1981)
Dev. Biol.
, vol.84
, pp. 247-254
Reiness1
Weinberg2
30
0025339881
Metabolic stabilization of acetylcholine receptors in vertebrate neuromuscular junction by muscle activity
(1990)
J. Cell Biol.
, vol.111
, pp. 655-661
Rotzler1
Brenner2
31
0018221570
Change in synaptic channel gating during neuromuscular development
(1978)
Nature
, vol.276
, pp. 401-402
Sakmann1
Brenner2
32
0022347334
Nicotinic acetylcholine receptors in vertebrate muscle: properties, distribution and neural control
(1985)
Prog. Neurobiol.
, vol.25
, pp. 297-325
Salpeter1
Loring2
34
0022981562
Degradation rates of acetylcholine receptors can be modified after they are inserted into the postjunctional plasma membrane or the vertebrate neuromuscular junction
(1986)
J. Cell Biol.
, vol.103
, pp. 1399-1403
Salpeter1
Cooper2
Levitt-Gilmour3
36
0025582538
Effect of reinnervation on the degradation rate of junctional acetylcholine receptors synthesized in denervated skeletal muscles
(1990)
J. Neurosci.
, vol.10
, pp. 3905-3915
Shyng1
Salpeter2
37
0019479309
Denervation accelerates the degradation of junctional acetylcholine receptors
(1981)
Exp. Neurol.
, vol.73
, pp. 390-396
Stanley1
Drachman2