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Biomedical subjects

M P Blaustein

Publications and source records attributed to M P Blaustein.

At least 19 recordsLinked to original sources

Saxitoxin binding to synaptosomes, membranes, and solubilized binding sites from rat brain.

Binding of 3H-saxitoxin to Na+ channels was studied in subcellular fractions prepared from rat brain homogenates. Saxitoxin binding to synaptosomes was saturable with an apparent dissociation constant of about 1 nM; about 1 pmol/mg protein was bound at saturating saxitoxin concentrations. A linear, nonsaturable component of saxitoxin binding accounted for less than 3% of the total binding at 30 nM. Saxitoxin binding to synaptosomes was unaffected by depolarization with elevated K+ concentrations, or by activation of the Na+ channels with batrachotoxin plus a purified polypeptide toxin from the scorpion Leiurus quinquestriatus. A procedure is described for preparing a membrane fraction that contains 70--80% of the total saxitoxin binding activity of the crude homogenate. The specific activity of this fraction was about 4 to 6 pmol/mg protein. About 60--70% of the saxitoxin binding sites were solubilized by incubating these membranes with the nonionic detergent Triton X-100; the detergent-solubilized binding sites eluted at a position corresponding to a mol wt of about 700,000 on gel filtration chromatography. Both membrane-bound and solubilized saxitoxin binding were assayed by a new cation exchange column method. The binding of saxitoxin to both membrane-bound and detergent-solubilized binding sites was saturable with an apparent dissociation constant of about 2 nM. Dissociation of the saxitoxin-receptor complex followed a single exponential decay with a rate constant at 0 degrees of 0.1 min-1 for membrane bound and 0.2 min-1 for detergent-solubilized binding sites. The measured association rate constant was 6 X 10(8) M-1 min-1 at 0 degrees for membrane-bound saxitoxin binding sites.

Animals

Regulation of nerve terminal calcium channel selectivity by a weak acid site.

The effects of low pH, and of alkaline earth cations, were examined on calcium uptake by pinched-off nerve terminals (synaptosomes). This uptake appears to be mediated by voltage-sensitive Ca channels (J. Physiol. 247:617, 1975). Ca uptake was measured in low (5 mM) or high (77 mM) potassium media. The extra uptake promoted by depolarizing (K-rich) media was almost maximal at pH 7.5, and decreased as the pH was lowered. Data relating depolarization-induced 45Ca uptake to pH fit a titration curve with a pKa approximately 6. Experiments in which Ca concentration and pH were both varied indicated that Ca2+ and H+ compete for a common binding site. Inhibition of depolarization-induced 45Ca uptake by the alkaline earth cations was studied to determine the apparent binding sequence for these cations in the Ca channels: Ca greater than Sr greater than Ba greater than Mg. This sequence resembles that observed for block of Ca channels in other preparations. The apparent binding sequence of the alkaline earth cations and the apparent pKa (approximately 6) of the Ca-binding site indicate that the Ca channel is a "high field strength" system. Protonation of a Ca channel binding site could explain the inhibitory effect of low pH on Ca-dependent neurotransmitter release (cf. Del Castillo et al., J. Cell. Comp. Physiol. 59:35, 1962).

Animals

Retrieval and recycling of synaptic vesicle membrane in pinched-off nerve terminals (synaptosomes).

The morphological features of pinched-off presynaptic nerve terminals (synaptosomes) from rat brain were examined with electron microscope techniques; in many experiments, an extracellular marked (horseradish peroxidase or colloidal thorium dioxide) was included in the incubation media. When incubated in physiological saline, most terminals appeared approximately spherical, and were filled with small (approximately 400-A diameter) "synaptic vesicles"; mitochondria were also present in many of the terminals. In a number of instances the region of synaptic contact, with adhering portions of the postsynaptic cell membrane and postsynaptic density, could be readily discerned. Approximately 20--30% of the terminals in our preparations exhibited clear evidence of damage, as indicated by diffuse distribution of extracellular markers in the cytoplasm; the markers appeared to be excluded from the intraterminal vesicles under these circumstances. The markers were excluded from the cytoplasm in approximately 70--80% of the terminals, which may imply that these terminals have intact plasma membranes. When the terminals were treated with depolarizing agents (veratridine or K-rich media), in the presence of Ca, many new, large (600--900-A diameter) vesicles and some coated vesicles and new vacuoles appeared. When the media contained an extracellular marker, the newly formed structures frequently were labeled with the marker. If the veratridine-depolarized terminals were subsequently treated with tetrodotoxin (to repolarize the terminals) and allowed to "recover" for 60--90 min, most of the large marker-containing vesicles disappeared, and numerous small (approximately 400-A diameter) marker-containing vesicles appeared. These observations are consistent with the idea that pinched-off presynaptic terminals contain all of the machinery necessary for vesicular exocytosis and for the retrieval and recycling of synaptic vesicle membrane. The vesicle membrane appears to be retrieval primarily in the form of large diameter vesicles which are subsequently reprocessed to form new "typical" small-diameter synaptic vesicles.

Calcium

Calcium buffering in presynaptic nerve terminals. I. Evidence for involvement of a nonmitochondrial ATP-dependent sequestration mechanism.

A latent ATP-dependent Ca storage system is enriched in preparations of pinched-off presynaptic nerve terminals (synaptosomes), and is exposed when the terminals are disrupted by osmotic shock or saponin treatment. The data indicate that a fraction of the Ca uptake (measured with 45Ca) is associated with the intraterminal mitochondria; it is blocked by ruthenium red, by FCCP, and by azide + dinitrophenol + oligomycin. There is, however, a residual ATP-dependent Ca uptake that is insensitive to the aforementioned poisons; this (nonmitochondrial) Ca uptake is blocked by tetracaine, mersalyl and A-23187. Moreover, A-23187 rapidly releases previously accumulated Ca from these (nonmitochondrial) storage sites, whereas the Ca chelator, EGTA, does not. The proteolytic enzyme, trypsin, spares the mitochondria but inactivates the nonmitochondrial Ca uptake mechanism. Chemical measurements of total Ca indicate that the ATP-dependent Ca uptake at the nonmitochondrial sites involves the net transfer of Ca from medium to tissue fragments. This system can sequester Ca when the ambient-ionized Ca2+ concentration (buffered with EGTA) is less than 0.3 micrometer; brain mitochondria take up little Ca when the ionized Ca2+ level is this low. Preliminary subfractionation studies indicate that the nonmitochondrial Ca storage system does not sediment with synaptic vesicles. We propose that this Ca storage system, which has many properties comparable to those of skeletal muscle sarcoplasmic reticulum, may be associated with intraterminal smooth endoplasmic reticulum. This Ca-sequestering organelle may help to buffer intracellular Ca.

Adenosine Triphosphate

Calcium buffering in presynaptic nerve terminals. II. Kinetic properties of the nonmitochondrial Ca sequestration mechanism.

The kinetic properties of the nonmitochondrial ATP-dependent Ca sequestering mechanism in disrupted nerve terminal (synaptosome) preparations have been investigated with radioactive tracer techniques; all solutions contained DNP, NaN3, and oligomycin, to block mitochondrial Ca uptake. The apparent half-saturation constant, KCa, for the nonmitochondrial Ca uptake is approximately 0.4 micrometer Ca; the Hill coefficient is approximately 1.6. Mg is also required for the Ca uptake, and the apparent KMg is approximately 80 micrometer. ATP and deoxy-ATP, but not CTP, GTP, ITP, UTP, ADP, or cyclic AMP, promote Ca uptake; the KATP, is approximately 10 micrometer. ATP analogs with blocked gamma-phosphate groups are unable to replace ATP. Particulate fractions from the disrupted synaptosomes possess Ca-dependent ATPase activity in the presence of Mg; the apparent KCa for this activity is 0.4--0.8 micrometer Ca, and the Hill coefficient is approximately 1.6. The Ca uptake and ATPase kinetic data suggest that the hydrolysis of 1 ATP may energize the transport of two Ca2+ ions into the storage vesicles. The second part of the article concerns the intraterminal distribution of Ca in "intact" terminals. When the terminals are disrupted after 45Ca loading, about one-half of the 45Ca is retained in the particulate material; some of this Ca, presumably stored in mitochondria, is released by the uncoupler, FCCP. Some of the 45Ca is released by A-23187, but not by FCCP; this fraction may be Ca stored in the nonmitochondrial sites described above. The proportion of 45Ca stored in the nonmitochondrial sites is increased when the Ca load is reduced or when the mitochondria are blocked with ruthenium red. These data indicate that the nonmitochondrial Ca storage sites are involved in intraterminal Ca buffering; they may play an important role in synaptic facilitation and post-tetanic potentiation, which result from Ca retention after neural activity.

Adenosine Triphosphate

Effects of internal and external cations and of ATP on sodium-calcium and calcium-calcium exchange in squid axons.

Calcium-45 efflux was measured in squid axons whose internal solute concentration was controlled by internal dialysis. Most of the Ca efflux requires either external Na (Na-Ca exchange) or external Ca plus in alkali metal ion (Ca-Ca exchange; cf. Blaustein & Russell, 1975). Both Na-Ca and Ca-Ca exchange are apparently mediated by a single mechanism because both are inhibited by Sr and Mn, and because addition of Na to an external medium optimal for Ca-Ca exchange inhibits Ca efflux. The transport involves simultaneous (as opposed to sequential) ion counterflow because the fractional saturation by internal Ca (Cai) does not affect the external Na (Nao) activation kinetics; also, Nao promotes Ca efflux whether or not an alkali metal ion is present inside, whereas Ca-Ca exchange requires alkali metal ions both internally and externally (i.e., internal and external sites must be appropriately loaded simultaneously). ATP increases the affinity of the transport mechanism for both Cai and Nao, but it does not affect the maximal transport rate at saturating [Ca2+]i and [Na+]o; this suggest that ATP may be acting as a catalyst of modulator, and not as an energy source. Hill plots of the Nao activation data yield slopes congruent to 3 for both ATP-depleted and ATP-fueled axons, compatible with a 3 Na+-for-1 Ca2+ exchange. With this stoichiometry, the Na electrochemical gradient alone could provide sufficient energy to maintain ionized [Ca2+]i in the physiological range (about 10(-7) M).

Adenosine Triphosphate

Sodium ions, calcium ions, blood pressure regulation, and hypertension: a reassessment and a hypothesis.

An attempt is made to elucidate the cellular mechanisms which may account for the well-documented correlation between sodium metabolism and peripheral vascular resistance. As a starting point, the evidence that the Na electrochemical gradient across the vascular smooth muscle cell plasma membrane (sarcolemma) plays an important role in cell calcium regulation is reviewed. Because there is significant resting tension ("tone") in most resistance vessels, the ionized Ca2+ level ([Ca2+]1) in the smooth muscle fibers in these vessels must be maintained above the contraction threshold. Consequently, the Ca transport system in the sarcolemma, presumably an Na-Ca exchange mechanism, must be set so as to hold [Ca2+]1 at this suprathreshold level. Any change in the Na gradient will then be reflected as a change in [Ca2+]1 and, therefore, in steady vessel wall tension and peripheral resistance. The correlation between Na metabolism and hypertension could then be accounted for if a circulating agent, perhaps the "natriuretic hormone," affects the Na gradient (across the sarcolemma) and, therefore, [Ca2+]1 and tension.

Animals

Influence of membrane potential on the sodium-dependent uptake of gamma-aminobutyric acid by presynaptic nerve terminals: experimental observations and theoretical considerations.

Sodium, potassium and veratridine were tested for their effects on the uptake of gamma-aminobutyric acid (GABA) by pinched-off presynaptic nerve terminals (synaptosomes). As noted by previous investigators, the uptake from media containing 1 mum GABA ("high-affinity" uptake) is markedly Na-dependent; the uptake averaged 65 pmoles/mg synaptosome protein x min, with [Na]0=145mm and [K]0=5mm, and declined by about 90 percent when the external Na concentration ([Na]0) was reduced to 13mm (Na replaced by Li). The relationship between [Na]0 was GABA uptake was sigmoid, suggesting that two or more Na+ ions may be required to activate the uptake of one GABA molecule. Thermodynamic considerations indicate that with a Na+/GABA stoichiometry of 2:1, the Na electrochemical gradient, alone, could provide sufficient energy to maintain a maximum steady-state GABA gradient ([GABA]i/[GABA]0) of about 104 across the plasma membrane of GABA-nergic terminals. In Ca-free media with constant [Na]0, GABA uptake was inhibited, without delay, by increasing [K]0 or by introducing 75mum veratridine; the effect of veratridine was blocked by 200 nm tetrodotoxin. The rapid onset (within 10 sec) of the veratridine and elevated-K effects implies that alterations in intra-terminal ion concentrations are not responsible for the inhibition. The uptake of GABA was inversely proportional to log [K]0. These observations are consistent with the idea that the inhibitory effects of both veratridine and elevated [K]0 may be a consequence of their depolarizing action. The data are discussed in terms of a barrier model (Hall, J.E., Mead, C.A., Szabo, G. 1973. J. Membrane Biol. 11:75) which relates carrier-mediated ionic flux to membrane potential.

Aminobutyrates

Carrier-mediated sodium-dependent and calcium-dependent calcium efflux from pinched-off presynaptic nerve terminals (synaptosomes) in vitro.

The influence of external cations on 45Ca2+ efflux from Ca2+ loaded synaptosomes has been examined. The synaptosomes were pre-loaded with 45Ca2+ by incubating the suspensions in potassium-rich media for 2 min. The suspensions were then diluted into "efflux" media containing a "normal" (5mM) K+ concentration; the content of Na+ and Ca2+ was varied, as noted below. Efflux of 45Ca2+ was measured for a 2-min period (except for "zero-time" samples), and was terminated by filtering the suspensions on 0.3 mum cellulose acetate filters. 45Ca2+ retained on the filters was determined by liquid scintillation spectroscopy. The difference between the 45Ca2+ in the "zero-time" samples (="Ca2+ load") and in the samples incubated for 2 min was taken as the 45Ca2+ efflux. 45Ca2+ loss into Ca2+ -free efflux media containing ethyleneglycol-bis-(beta-aminoethylether)-N,N'-tetraacetic acid (EGTA) was markedly influenced by the Na+ concentration: nearly 80% of the 45Ca2+ was lost from the synaptosomes if the media contained 132 mM Na+, but only about 7% was lost in 2 min if 97% of the Na+ was replaced mol-for-mol by choline. In media containing 1.2 mM Ca2+ and 132 mM Na+, the 45Ca2+ uptake by synaptosomes previously loaded with 40Ca2+ was significantly less than 45Ca2+ loss from synaptosomes loaded with 45Ca2+. Thus there was a net efflux of Ca2+ from the Ca2+ -loaded synaptosomes; this efflux was, presumably, Na+ dependent. In media containing 1.2 mM 40Ca2+ and only 4 mM Na+, the 45Ca2+ efflux from 45Ca2+ -loaded synaptosomes was significantly greater if most of the external Na+ (128 mM) was replaced isomotically by Li+ rather than by choline, guanidine or glucose. This observation may be evidence for a Ca2+ -Ca2+ exchange which is promoted by Li+. Both the Na+ -dependent and the Ca2+ -dependent Ca2+ effluxes were inhibited by Mn2+. The data are consistent with a Ca2+ carrier mechanism which can extrude Ca2+ in exchange for Na+ or for Ca2+, the latter being activated by Li+. These properties bear a striking resemblance to those of a Ca2+ efflux mechanism which has been characterized in squid axons. This mechanism may there fore have evolved fairly early on in the history of the animal kingdom.

Animals

Barbiturates block calcium uptake by stimulated and potassium-depolarized rat sympathetic ganglia.

The effects of two barbiturates on calcium uptake by sympathetic ganglia have been examined. Sodium pentobarbital (0.4-0.75 mM) and sodium thiopental (0.3 mM) block the preganglionic stimulation-induced uptake of 45Ca by rat superior cervical ganglia but not action potential conduction in the presynaptic axons. The ganglionic-blocking agent, tetraethylammonium, does not inhibit stimulation-induced Ca uptake and does not prevent the blocking effect of thiopental. This effect is therefore probably presynaptic. Postassium-rich media also stimulate Ca uptake by the ganglia, and this effect is markedly inhibited by pentobarbital. Since the K stimulation effect is also observed in deafferented ganglia but not in guanethidine-denervated ganglia, this effect is probably associated primarily with postsynaptic elements. In sum, the data suggest that the barbiturates inhibit Ca permeability changes in both pre- and postsynaptic neurons.

Animals

The ins and outs of calcium transport in squid axons: internal and external ion activation of calcium efflux.

The intracellular ionized calcium concentration ([Ca2+]i) in squid axons is far below that expected at equilibrium, and Ca2+ must therefore be extruded against a large electrochemical gradient in order to maintain the steady state. In the absence of ATP, Ca efflux from internally-dialyzed axons is largely dependent on external Na, and is associated with a Cai-dependent Na influx. An Nai-dependent Ca influx and Cao-dependent Na efflux have also been observed in squid axons. The data imply that the axolemma has a "carrier" mechanism that can mediate the counterflow exchange of Na+ for Ca2+. Several observations indicate that the stoichiometry of the exchange is about 3 Na+-for-1 Ca2+:a) Ca efflux appears to be a cubic function of external Na concentration; b) Ca efflux is reduced when the membrane is depolarized; and c) the Nao-dependent Ca efflux is about 1.5 pmoles/cm2-sec when free [Ca2+]i is about 160 mum, while the Cai-dependent Na influx is about 5 pmoles/cm2sec. If the stoichiometry is 3-for-1, the Na electrochemical gradient, alone, could provide sufficient energy to maintain [Ca2+]i at about 50-200 nM. ATP also influences the Ca efflux: it appears to increase the affinity of the transport mechanism for internal Ca, but does not affect the maximum velocity of transport. Thus ATP may catalyze, but not necessarily energize Ca transport.

Adenosine Triphosphate