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D M Fambrough

Publications and source records attributed to D M Fambrough.

At least 91 records · Page 5Linked to original sources

Synthesis, insertion into the plasma membrane, and turnover of alpha-bungarotoxin receptors in chick sympathetic neurons.

alpha-Bungarotoxin was used to identify an integral membrane protein in the plasma membrane of chick sympathetic neurons. The synthesis, insertion into the plasma membrane, and turnover of the alpha-bungarotoxin receptor were studied using isotopically labeled amino acids (2H, 13C, 15N) to directly label receptor molecules. Neurons incubated in medium containing dense amino acids continued to insert unlabeled receptors from a pool of previously synthesized molecules for 2 h. Density-labeled receptors began to appear in the plasma membrane after this 2-h period. Synthesis of receptors, but not insertion into the surface, was blocked by cycloheximide (100 microgram/ml). Neither colchicine (0.05 microgram/ml) of actinomycin D (5 microgram/ml) has any effect on alpha-bungarotoxin receptor synthesis or insertion. Autoradiographic studied revealed that receptors occur on growth cones, axons, and cell bodies of single neurons and explanted ganglia. The rate of insertion of newly synthesized receptors into the plasma membrane of axons extending from explanted sympathetic ganglia was approximately the same as that into the cell body portion of the ganglion. Cytochalasin B (2 microgram/ml) rapidly distrupted growth cones but had no effect on receptor insertion. These experiments suggested that the growth cone is not the sole or even the primary site for insertion of this membrane protein. The kinetics of turnover of the alpha-bungarotoxin receptor were a first-order exponential with t 1/2 = 11 h. Neurons that had their surface receptors labeled with 125I-alpha-bungarotoxin produced [125I]iodotyrosine. This process was inhibited by low temperature (23 degrees C) and also by a metabolic inhibitor. This is interpreted as evidence that receptors turn over by a mechanism in which they are internalized and then proteolytically degraded.

Amino Acids↗

Control of acetylcholine receptors in skeletal muscle.

An ACh receptor is the molecular entity that, in its native habitat, possesses the binding sites for ACh and all the other components required to generate the ion channels mediating the ACh response. Narrower definitions of an ACh receptor (as the binding site for ACh or the polypeptide chain that is folded to form the binding site) could lead to semantic arguments about receptor structure. Experimentally, ACh receptors are defined by their total function (when electrophysiological tests are used) or by ligand binding. There is no evidence that the ligand-binding portions of ACh receptors ever exist in vivo without the associated channel-forming mechanism and vice versa. Most data are consistent with the idea that detergent-solubilized glycoproteins retaining the ACh binding sites of the receptor also include the channel-forming components, although it appears that the mechanism is prone to denaturation or proteolytic damage. Studies of receptor-rich membranes and of solubilized receptor glycoprotein have not yet yielded a totally satisfactory image of receptor structure. Most evidence favors an ACh receptor composed of three or four different types of glycosylated polypeptide chains organized into a unit of aggregate molecular weight about 300,000--400,000 daltons. Plasma membranes are dynamic structures in two different ways. First, their constituent molecules are in rapid thermal motion and, when these molecules are not tethered to extramembranous structures or mired in large aggregates, they fairly rapidly change their position in the plane of the lipid bilayer. Second, all membrane components are continually being synthesized and degraded. Acetylcholine receptors participate in both aspects of this dynamism. In this review it is proposed that the number and the distribution of ACh receptors in skeletal muscle are controlled by modulation of receptor metabolism and modulation of associations between receptor molecules or between receptors and other, as yet unidentified, elements in neuromuscular junctions and at extrajunctional sites where receptors are clustered. The arrangements of receptors in skeletal muscle and the total number of receptors in skeletal muscle may be regulated by separate mechanisms. Clusters of ACh receptors apparently can form spontaneously in extrajunctional areas of denervated muscles and in tissue-cultured embryonic muscle. Such clusters may be positionally stable and the receptor molecules in them may be highly restricted in mobility. Nevertheless, these receptors have average lifetimes on the order of 20 h, just like the nonclustered, mobile extrajunctional receptors. Receptor clusters also form at sites of innervation. In the chick embryo the junctional receptor molecules remain short-lived. The metabolism of ACh receptors is highly regulated. The biosynthesis of receptors commences during myogenesis at about the time myogenic cells become competent to fuse. Later, biosynthesis is dramatically repressed by muscle activity and possibly by other factors...

Acetylcholine↗

Nonequivalence of alpha-bungarotoxin receptors and acetylcholine receptors in chick sympathetic neurons.

alpha-Bungarotoxin binds selectively to chick sympathetic neurons that are responsive iontophoretically applied acetylcholine. alpha-Bungarotoxin (125 nM) does not affect the response of cultured neurons to acetylcholine, nor does it affect a cholinergic synaptic potential recorded from sympathetic ganglia. d-Tubocurarine (100 muM) inhibits alpha-bungarotoxin binding and blocks acetylcholine receptor function in both preparations, but alpha-bungarotoxin does not protect acetylcholine receptors against d-tubocurarine blockade of acetylcholine responses. The receptor for alpha-bungarotoxin can be extracted from neuronal membranes with nonionic detergents and, when assayed by velocity sedimentation in sucrose gradients, sediments at a rate faster than that of skeletal muscle acetylcholine receptors. Treatment of alpha-bungarotoxin-receptor complexes with glutaraldehyde (0.1%, wt/vol) increases their stability from a half-time for dissociation of 3.5 hr to greater than 6 days at 23 degrees. This permits a quantitative assay of alpha-bungarotoxin-receptor complexes after relatively long periods of velocity sedimentation. It is concluded that alpha-bungarotoxin does not bind to the acetylcholine-binding site of neuronal acetylcholine receptors. These results compel a reevaluation of studies that assume that alpha-bungarotoxin is a specific ligand for neuronal acetylcholine receptors.

Acetylcholine↗

Newly synthesized acetylcholine receptors are located in the Golgi apparatus.

Chick skeletal muscle cells in tissue culture were fixed and treated with saponin to allow [125I]alpha-bungarotoxin access into the cells while preserving ultrastructure. The kinetics of binding of iodinated alpha-bungarotoxin to intracellular acetylcholine (ACh) receptors and to surface A Ch receptors were comparable. About half of the intracellular ACh receptors are newly synthesized and in the pathway leading to incorporation into the plasma membrane. Correlated electron microscope autoradiographic and kinetic studies of this receptor population suggest that a substantial fraction of the newly synthesized ACh receptors are located in the Golgi apparatus, where they reside for approx. 2 h.

Acetylcholine↗

Metabolism of acetylcholine receptors in skeletal muscle.

The acetylcholine receptor in skeletal muscle is an integral plasma membrane glycoprotein. Its biosynthesis and incorporation into plasma membrane and its degradation are being studied with the use of biochemical, biophysical, and microscopic techniques. In this report, previously published data are combined with new information to yield a consistent and fairly detailed description ofthe mechanisms involved in receptor metabolism. It is proposed that the biosynthesis, transport, and incorporation of the receptor into plasma membranes involve a mechanism similar, or identical, to that used by the cell for production and secretion of secretory proteins. The receptor is degraded by a random-hit process, which involves internalization, transport to secondary lysosomes, and hydrolysis. Sites of regulation of receptor metabolism are discussed in the context of regulation of the number and distribution of receptors in plasma membranes, particularly with respect to the formation and stability of neuromuscular junctions.

Acetylcholine↗

Kinetics of biosynthesis of acetylcholine receptor and subsequent incorporation into plasma membrane of cultured chick skeletal muscle.

20% of the acetylcholine receptors in cultured chick skeletal muscle remain unbound following long-term growth of muscle in medium containing a potent, essentially irreversible receptor-blocking agent, alpha-bungarotoxin. About half the receptors which are unavailable for interaction with extracellular alpha-bungarotoxin are newly synthesized molecules which presumably are being processed and transported to the plasma membrane. When the muscle cultures are switched to a medium containing 2H, 13C, 15N-amino acids, these receptors are rapidly labeled, the fraction of labeled molecules beginning to plateau at 3 hr. Few labeled receptors appear in the plasma membrane during the first 3 hr of labeling with 2H, 13C, 15N-amino acids. After 3.5 hr of labeling, virtually all the receptors being incorporated into the plasma membrane are labeled receptors. The kinetics of labeling of the "pool" and "surface" receptors with 2H, 13C, 15N-amino acids confirm the "precursor-product" type relationship of pool and surface acetylcholine receptors. In this study, receptors synthesized in medium containing 2H, 13C, 15N-amino acids were resolved from 1H, 12C, 14N-receptors by velocity sedimentation in sucrose-deuterium oxide and sucrose-H2O gradients, and their densities were estimated from sedimentation rates in shallow gradients of various average density. Estimated densities were 1.32 g/cm3 for 1H, 12C, 14N-receptors and 1.41 g/cm3 for 2H, 13C, 15N-receptors. This density difference corresponds to 80% substitution of normal aminoacyl residues by 2H, 13C, 15N-residues in the denser receptor.

Acetylcholine↗

Are muscle fibers denervated in myotonic dystrophy?

An underlying neurogenic abnormality has recently been postulated in the muscular dystrophies. To test this hypothesis, we applied a widely accepted criterion of denervation-ie, and increase in extrajunctional acetyicholine (ACh) receptor sites--to muscles biopsy specimens from nine patients with myotonic dystrophy and three with amyotrophic lateral scierosis (ALS). The ACh receptor sites were determined by means of iodine 125-labeled alpha-bungarotoxin binding, measured by scintillation counting and autoradiography. None of the myotonic dystrophy muscles showed increased extrajunctiona ACh receptor sites, even in the smallest fibers. By contrast, muscle biopsy specimens from patients with ALS showed notably increased extrajunctional ACh receptor sites, especially in the small fibers. Our findings do not support the hypothesis of a neurogenic defect in myotonic dystrophy.

Adult↗

Synthesis of acetylcholine receptors by cultured chick myotubes and denervated mouse extensor digitorum longus muscles.

Mono-[125I]iodo- alpha - bungarotoxin - receptor complexes extracted from chick myotube cultures as well as from adult denervated extensor digitorum longus muscles of the mouse have been banded at their buoyant density in gradients of metrizamide-deuterium oxide. When cultures or denervated adult muscles are preincubated in media containing 2H- or 13C-substituted amino acids under conditions of active receptor accumulation, the mono-[125I]iodo-alpha-bungarotoxin-receptor complexes have an increased buoyant density and band in a position of higher density in the gradient relative to a marker of mono-[131I]iodo-alpha-bungarotoxin-receptor complexes extracted from cells preincubated in normal media. It is concluded that the accumulation of receptors on the surfaces of cultured chick myotubes and on the non-synaptic surfaces of extensor digitorum longus muscles following denervation are the result of de novo synthesis.

Animals↗

Acetylcholine receptor turnover in membranes of developing muscle fibers.

[125I mono-iodo-alpha-bungarotoxin is used as a specific marker in a description of acetylcholine receptor metabolism. It is concluded that acetylcholine receptors in the surface membranes of chick and rat myotubes developing in cell cultures have a half-life of 22-24 h. Alpha-bungarotoxin (bound to a receptor which is removed from the membrane) is degraded to monoiodotyrosine which appears in the medium. Several observations are consistent with a model in which receptors or alpha-bungarotoxin-receptor complexes are internalized and then degraded: (a) the rate of appearance of iodotyrosine does not reach its maximal rate until 90 min after alpha-bungarotoxin is bound to the surface receptors; (b) 2,4-dinitrophenol, reduced temperature, and cell disruption all inhibit the degradation process. The degradation of surface receptors is not coupled to the process by which receptors are incorporated into the membrane. Evidence suggest that receptors are incorporated into the surface membrane from a presynthesized set of receptors containing about 10% as many alpha-bungarotoxin binding sites as does the surface. Additionally, a third set of acetylcholine receptors is described containing about 30% as amny binding sites as does the surface. These "hidden" recptors are not precursors yet are not readily accessible for binding of extracellular alpha-bungarotoxin. These findings are discussed in relation to both plasma membrane biosynthesis and control of chemosensitivity in developing and denervated skeletal muscle.

Animals↗

Ionic properties of the acetylcholine receptor in cultured rat myotubes.

The acetylcholine reversal potential (Er) of cultured rat myotubes is -3mV. When activated, the receptor is permeable to K+ and Na+, but not to Cl- ions. Measurement of Er in Tris+-substituted, Na-free medium also indicated a permeability to Tris+ ions. Unlike adult frog muscle the magnitude of Er was insensitive to change in external Ca++ (up to 30 mM) or to changes in external pH (between 6.4 and 8.9). The equivalent circuit equation describing the electrical circuit composed of two parallel ionic batteries (EK and ENa) and their respective conductances (gK and gNa), which has been generally useful in describing the Er of adult rat and frog muscle, could also be applied to rat myotubes when Er was measured over a wide range of external Na+ concentrations. The equivalent circuit equation could not be applied to myotubes bathed in media of different external K+ concentrations. In this case, the Er was more closely described by the Goldman constant field equation. Under certain circumstances, it is known that the receptor in adult rat and frog muscle can be induced to reversibly shift from behavior described by the equivalent circuit equation to that described by the Goldman equation. Attempts to similarly manipulate the responses of cultured rat myotubes were unsussessful. These trials included a reduction in temperature (15 degress C), partial alpha-bungarotoxin blodkade, and activation of responses with the cholinergic agonist, decamethonium.

Animals↗

Electrophysiological properties of the membrane and acetylcholine receptor in developing rat and chick myotubes.

Membrane properties of rat and chick myotubes in various stages of development were studied. Resting membrane potentials (Em) increased from -8 to -55 mV in both rat and chick as the myotubes developed from myoblasts to large multinucleated fibers. In the rat myotubes, this increase was not accompanied by significant changes in specific membrane resistivity or changes in Na+ and K+ ion distribution. Nor have we observed a significant electrogenic component to the resting Em of mature rat myotubues under normal circumstances. A progressive increase in the passive permeability of the membrane to K+ relative to Na+ ions has been observed which can account for the changes in Em with development. In contrast to the changes in the ionic selectivity of the membrane, we have found that the ionic selectivity of the ACh receptor of rat and chick myotubes remains constant during the same period of myotube development.

Acetylcholine↗

Acetylcholine receptors. Revised estimates of extrajunctional receptor density in denervated rat diaphragm.

The number of extrajunctional acetylcholine receptors ((125)I-labeled alpha-bungarotoxin binding sites) per unit length of muscle fiber and the average fiber circumference were determined for rat diaphragm muscle fibers denervated 0, 2, 4, 7, 10, and 14 days. From these data receptor densities (sites per square micrometer of surface) were calculated. Values thus obtained were considerably lower than those estimated previously by autoradiography. Receptor density increased from < 6 sites/microm(2) in innervated muscle to 635 +/- 29 sites/microm(2) 14 days after denervation. The form of the relationship between receptor density and acetylcholine sensitivity and the time-course of change in receptor density after denervation are as previously reported.

Acetylcholine↗

Neuromuscular junction in myasthenia gravis: decreased acetylcholine receptors.

The number of acetylcholine receptors was determined in the neuromuscular junctions of eight patients with typical myasthenia gravis and in five controls, by means of (125)1-labeled alpha-bungarotoxin binding. The junctional acetylcholine receptors were reduced in the myasthenic muscles as compared with the controls. This reduction in receptors may account for the defect in neuromuscular transmission in myasthenia gravis.

Adolescent↗

Acetylcholine receptors: number and distribution at neuromuscular junctions in rat diaphragm.

The number of acetylcholine receptors per motor end plate in the rat diaphragm, measured by the binding of [(125)1]alpha-bungarotoxin, varies directly with rat size and is (4.0 +/- 0.2) x 10(7) for full-grown male rats. Autoradiographic analysis of single fibers labeled with this substance reveals that virtually all of these receptors are localized in the end plate.

Animals↗