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The rates of saxitoxin action and of saxitoxin-tetrodotoxin interaction at the node of Ranvier.

Voltage clamp experiments were done on single nodes of Ranvier of Rana esculenta. Equilibrium effects were obtained from INa-V curves, the rates of action from changes in INa on changing solutions during repetitive depolarizing pulses. 2. Saxitoxin (STX) exclusively and reversibly blocked Na channels, the effect being fully described by a one-to-one reaction between STX and a receptor at the channel with an equilibrium dissociation constant, Ks, of 1.4 nM; the mean offset rate constant k2s, was 1.76 X 10(-2) sec-1 (16 +/- 1 degree C;pH 7.2), 1.7 times the value for tetrodotoxin (TTX). 3. At pH 5.6, K2S WAs increased by a factor of 1.33 while the equilibrium STX effects was decreased in a way suggesting competition between STX and protons. 4. After pretreatment of nodes with 3.1 nM TTX the extra block on adding 9.0 nM STX as well as its relief on taking out STX of the TTX-STX mixture revealed transients in the time course of receptor occupation. 5. These non-monotonic time courses are incompatible with the idea of two independent blocking sites (for STX and TTX) per channel but could be quantitatively fitted by analog-computed curves assuming competition between STX and TTX for the same site.

Animals

The binding of saxitoxin to axolemma of mammalian brain. Cooperative competition between saxitoxin and sodium ion.

Saturable, high affinity binding of tritium-labeled saxitoxin ([3H]STX) to axolemma-enriched membranes from white matter of bovine brain was identified. The apparent [3H]STX equilibrium dissociation constant (Kd*) was strongly affected by the cationic environment:choline ion had little effect; cesium ion increased the mammalian axolemma Kd* in a simple competitive manner. In contrast, sodium ion more dramatically increased the Kd*--this effect was highly cooperative between 75 and 200 mM sodium (Hill coefficient of 2.85). The cooperativity is most pronounced at the normally expected [sodium] external to the axon in the mammalian central nervous system. This sodium-specific cooperative modification of the STX binding site (the hypothetical "ion selectivity filter" of the axonal Na+ gate) may be indicative of some as yet undefined regulatory mechanism of the Na+ gate in mammalian myelinated axons.

Animals

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

Pharmacological and biochemical properties of saxiphilin, a soluble saxitoxin-binding protein from the bullfrog (Rana catesbeiana).

Supernatant fractions of various tissues and plasma from the North American bullfrog, Rana catesbeiana, specifically bind saxitoxin with high affinity. Binding of [3H]saxitoxin to bullfrog plasma follows single-site behavior with an equilibrium dissociation constant of Kd = 0.16 +/- 0.03 nM at 0 degrees C and a maximum binding capacity of 380 +/- 60 pmole/ml plasma. High-affinity binding of [3H]saxitoxin is chemically specific since it is unaffected by tetrodotoxin and a variety of cationic peptides, amino acids and drugs. The structure-activity dependence of binding to this site was investigated with eight different natural and synthetic derivatives of saxitoxin. Substitution of the carbamoyl side chain or the C-12 beta-hydroxyl group of saxitoxin with a hydrogen atom had little effect on binding affinity, but addition of a hydroxyl group at the N-1 position decreased the binding affinity from 430- to 710-fold in three different molecular pairs. High performance size exclusion chromatography of supernatant from bullfrog skeletal muscle showed that the [3H]saxitoxin-binding component migrates with an apparent molecular weight of Mr = 74,000 +/- 8000 or a Stokes radius of 35 +/- 2A. The [3H]saxitoxin-binding protein in skeletal muscle extract or plasma is retained on a cation-exchange column at pH 6.0, suggesting that the protein contains a region of exposed basic residues. Column isoelectric focusing of a sample from plasma indicated that the protein has a basic isoelectric point near pH = 10.7.(ABSTRACT TRUNCATED AT 250 WORDS)

Amphibian Proteins

High-affinity binding sites for [3H]saxitoxin are associated with voltage-dependent sodium channels in portal vein smooth muscle.

Saturable, high-affinity binding sites for [3H]saxitoxin were identified in equine portal vein smooth muscle membranes. These sites had a dissociation constant of 0.29 nM and a maximal binding capacity of 115 fmol.mg-1 of protein. A similar dissociation constant was obtained with cells prepared from rat portal vein. Specific binding of [3H]saxitoxin was completely displaced by unlabelled saxitoxin and tetrodotoxin, with inhibition constants of 0.42 and 2.10 nM, respectively. Tetrodotoxin blocked the fast Na+ current in single cells of rat portal vein in a concentration-dependent manner, with an IC50 of 3.15 nM. These results suggest that the high-affinity binding sites for tetrodotoxin and saxitoxin may be associated with voltage-dependent Na+ channels in vascular myocytes.

Amphibian Proteins

Binding to saxitoxin to electrically excitable neuroblastoma cells.

Saxitoxin inhibits the action potential Na+ ionophore of electrically excitable neuroblastoma cells with a KI of 3.7 nM. Binding experiments detect a single class of saturable binding sites with KD = 3.9 nM and a binding capacity of 156 fmol/mg of cell protein (78 sites per micrometer2 of cell surface). Saturable binding is completely inhibited by tetrodotoxin but is unaffected by scorpion toxin or batrachotoxin. No saturable binding is observed in cultures of clone N103, a variant neuroblastoma clone lacking the action potential Na+ response. Thus, saxitoxin binds specifically to the action potential Na+ ionophore in neuroblastoma cells. Comparison of saxitoxin and scorpion toxin binding reveals that there are three saxitoxin receptor sites for each scorpion toxin receptors site. The implications of this stoichiometry are considered.

Action Potentials

Do saxitoxin-like substances have a role in scombrotoxicosis?

Evidence is presented which establishes that mackerel fed in captivity can, by relay from contaminated shellfish via sand eels, accumulate paralytic shellfish poisons (PSP) in the edible flesh at a level (250 micrograms saxitoxin equivalents per kg) similar to that in the contaminated shellfish. Data from ELISAs performed independently in two laboratories show that commercial mackerel fillets which have been associated with incidents of scombrotoxicosis contained 0.02-1.30 micrograms saxitoxin equivalents per kg, concentrations some two to four orders of magnitude below that normally detectable by the mouse bioassay. The doses, expressed as saxitoxin equivalents, administered inadvertently during volunteer testing of such fillets ranged up to 0.5 ng/kg bw, at least four orders of magnitude less than the fatal oral dose for an adult. The doses associated with the rapid induction of nausea/vomiting and/or diarrhoea, 0.11-1.0 ng/kg bw, could not be distinguished from the doses which failed to produce such symptoms in susceptible volunteers (up to 0.5 ng/kg bw). Factors that might explain this lack of correlation between dose (saxitoxin equivalents) and volunteer response are discussed along with previously published reports of PSP relay through the food web. It is suggested that the relay of algal toxins, particularly PSP, but possibly in combination with diarrheic shellfish poisons, may be responsible for scombrotoxicosis.

Animals

Pharmacological properties of axonal sodium channels in the cockroach Periplaneta americana L. I. Selective block by synthetic saxitoxin.

Voltage-clamp experiments on isolated giant axons of the cockroach Periplaneta americana L. show that chemically synthesized saxitoxin specifically and reversibly blocks the transient inward sodium current without affecting the steady-state outward potassium current. From the concentration depending of sodium current suppression it is concluded that individual sodium channels are blocked by single molecules of synthetic saxitoxin which bind reversibly to part of the channel with a dissociation constant of 3.0 x 10(-9) M. Synthetic saxitoxin blocks sodium channels in cockroach axons at a lower concentration than tetrodotoxin. Sodium channel block by synthetic saxitoxin is more readily reversed than tetrodotoxin-induced block.

Animals

Binding of radioactively labeled saxitoxin to the squid giant axon.

The binding of saxitoxin, a specific inhibitor of the sodium conductance in excitable membranes, has been measured in giant axons from the squid, Loligo pealei. Binding was studied by labeling saxitoxin with tritium, using a solvent-exchange technique, and measuring the toxin uptake by liquid scintillation counting. Total toxin binding is the sum of a saturable, hyperbolic binding component, with a dissociation constant at 2--4 degrees C of 4.3 +/- 1.7 nM (mean SE), and a linear, nonsaturable component. The density of saturable binding sites is 166 +/- 20.4 micrometers-2. From this density and published values of the maximum sodium conductance, the conductance per toxin site is estimated to be about 7 pS, assuming sequential activation and inactivation processes (F. Bezanilla & C.M. Armstrong, 1977, J. Gen. Physiol. 70:549). This single site conductance value of 7 pS is in close aggreement with estimates of the conductance of one open sodium channel from measurements of gating currents and of noise on squid giant axons and is consistent with the hypothesis that one saxitoxin molecule binds to one sodium channel.

Animals

Purification and partial sequencing of saxiphilin, a saxitoxin-binding protein from the bullfrog, reveals homology to transferrin.

Plasma from the bullfrog, Rana catesbeiana, contains a soluble component of unknown function that specifically binds the neurotoxin, [3H]saxitoxin, with a Kd of approximately 0.2 nM. Saxiphilin, the protein responsible for this activity, was purified approximately 440-fold from bullfrog plasma by column chromatography on heparin-Sepharose followed by chromatofocusing. The purified saxiphilin preparation exhibits a binding capacity of 9.6 nmol/mg protein and a Kd of 0.32 nM for [3H]saxitoxin. Analysis of the preparation by sodium dodecyl sulfate-polyacrylamide gel electrophoresis shows a predominant band migrating with an apparent Mr of approximately 89,000 which is similar to the expected size of saxiphilin previously estimated by nondenaturing size exclusion chromatography. Amino-terminal sequencing of the approximately 89-kDa protein and sequencing of four different tryptic peptide fragments revealed that each of the partial saxiphilin sequences can be aligned by homology with members of the transferrin protein family with sequence identity as high as 69%. The available sequence corresponding to conserved residues that comprise part of the two Fe3+ binding sites in lacto-transferrin show several substitutions in saxiphilin, suggesting that saxiphilin is not an Fe(3+)-binding protein. Saxiphilin appears to be a monomeric approximately 89-kDa protein that is evolutionarily related to transferrin but which binds saxitoxin instead of Fe3+.

Amino Acid Sequence

Analysis of saxitoxin in urine by continuous-flow fast-atom bombardment mass spectrometry.

An improved method of saxitoxin analysis in urine using continuous-flow fast-atom bombardment mass spectrometry was developed. Parameters studied were matrix composition, matrix flow, temperature of probe tip, probe-tip design and sample extraction. Optimal detection was obtained using the following matrix composition: 5% glycerol, 0.5% acetic acid, 0.025% sodium dodecylsulfate, 0.1% polyethylene glycol (PEG) 400 and 0.5% PEG 300; probe-tip temperature: (approximately 55 degrees C); flow rate: 5 or 8 microL per min.; probe tip: Olson-Hogge design. The STX standard was detected at 200 pg with signal-to-noise ratio of 11. The percent recovery of saxitoxin from human urine after clean-up on a weak cation exchange column was 75%.

Humans

Structural characteristics of the saxitoxin receptor on nerve.

The effects of uranyl ion (UO22+; at low concentrations binds specifically to phosphate groups) and the cationic dye methylene blue (MB+; binds strongly to carboxyl groups) on saxitoxin (STX) potency in crayfish axon has been studied by means of intracellular microelectrodes. At pH 6.00 +/- 0.05 and 13.5 mM Ca2+, addition of 10.0 muM UO22+ + 5.0 nM STX had only slightly, if any, less effect on the spike's maximum rate of rise [0.79 +/- 0.04 (viz., mean +/- SEM) of control value] than did addition of 5.0 nM STX alone (0.72 +/- 0.05). Under the same conditions of pH and Ca2+ concentration, 1.0 mM MB+ had approximately the same effect: 1.0 mM MB+ + 5.0 nM STX, 0.76 +/- 0.03; 5.0 nM STX alone, 0.70 +/- 0.04. However, at pH 7.00 +/- 0.05 and lower Ca2+ concentrations, 1.0 mM MB+ significantly reduced STX potency. Using 6.0 mM Ca2+: 1.0 mM MB+ + 5.0 nM STX, 0.92 +/- 0.01; 5.0 nM STX alone, 0.68 +/- 0.08. Using 3.0 mM Ca2+, the corresponding values were 0.94 +/- 0.03 and 0.67 +/- 0.04. It is concluded that: (1) In accord with previous suggestions, the ionized acidic group known to exist in the Na channel (and to which a guanidinium group of STX appears to bind) is very likely a carboxyl group and not a phosphate group. (2) The accessible part of the Na channel mouth serving as the saxitoxin receptor probably does not include phospholipid in its structure proper.

Action Potentials

Paralytic shellfish poison (saxitoxin family) bioassays: automated endpoint determination and standardization of the in vitro tissue culture bioassay, and comparison with the standard mouse bioassay.

Mouse neuroblastoma cells swell and eventually lyse upon exposure to veratridine, which, when added together with ouabain, enhances sodium ion influx. In the presence of saxitoxin (STX), which blocks sodium channels, the action of the other two compounds is inhibited and the cells remain morphologically normal. A tissue culture bioassay using mouse neuroblastoma cells, developed by Kogure and colleagues, takes advantage of these principles; in this bioassay, the fraction of the cells protected from the actions of ouabain and veratridine is in direct proportion to the concentration of STX and its analogues. We have modified this bioassay, improving its convenience and speed by eliminating the need to count individual cells to determine the saxitoxin equivalents, and instead have employed a microplate reader for automated determinations of absorbances of crystal violet from stained neuroblastoma cells. When these changes and other minor technical modifications were tested in the tissue culture bioassay systematically, we found the lower detection limit to be around 10 ng STX equivalents (eq) per ml of extract ( = 2.0 micrograms STX eq/100 g shellfish tissue). Our version of the tissue culture bioassay was compared with the standard mouse bioassay using 10 acid extracts of dinoflagellates (Alexandrium excavata and A. fundyense) and 47 AOAC extracts of shellfish tissues. The tissue culture bioassay provided results virtually identical to those obtained with the mouse bioassay (r > 0.96), and moreover, was considerably more sensitive. The results gained from high performance liquid chromatographic (HPLC) analysis of 12 of the same extracts were less consistent when compared with the results from both bioassay methods. The automated tissue culture (neuroblastoma cell) bioassay may be a valid alternative to live animal testing for paralytic shellfish poisoning.

Animals

Respiratory and circulatory effects of saxitoxin in the cerebrospinal fluid.

1 In cats anaesthetized with pentobarbitone, saxitoxin and, on a few occasions, tetrodotoxin were injected into a lateral cerebral ventricle or into the subarachnoid space of the lower brain stem. Observations were made on frequency and tidal volume of breathing, on CO(2) responsiveness and on electrical responsiveness of the respiratory centre. Effects on the blood pressure were observed simultaneously.2 A single large dose of toxin, e.g., 250 ng, produced within minutes apneustic breathing and a rise in blood pressure which were converted rapidly to respiratory failure and hypotension. In contrast, repeated small doses, e.g., 25 ng, yielded only progressive slowing of the respiration together with circulatory hypotension. Bulbar depression was produced as effectively by subarachnoid injection as by intraventricular injection of the toxins. Onset of action was detectable within seconds.3 Slowing of the respiration occurred independently of change in tidal volume and whether or not the vagus nerves were cut. The reduction in breathing frequency is attributed to direct toxin-induced depression of the central respiratory oscillator.4 Steady-state measurements of tidal volume at controlled levels of alveolar CO(2) pressure in intermediate stages of respiratory depression showed that the toxins produced an increase in CO(2) stimulation threshold as well as a reduction in gain of CO(2) responsiveness, whether or not the vagus nerves were cut. Carotid arterial chemoreceptor reactivity to O(2) was demonstrable when central sensitivity to CO(2) was depressed. These effects are attributed to a direct influence of the toxins upon the brainstem CO(2)-tidal volume controller.5 Responsiveness of the medullary inspiratory centre to electrical stimulation persisted after the failure of spontaneous breathing was caused by the toxins. Conversely, restitution of electrical responsiveness preceded the reappearance of spontaneous respiratory activity in the recovery phase of toxic depression. Circulatory effects paralleled the changes in respiratory behaviour.6 On the basis of the relatively prompt and discrete alterations in the central respiratory and circulatory control mechanisms produced by saxitoxin and tetrodotoxin placed in the cerebrospinal fluid, it is concluded that the agents rapidly penetrated to deep target loci in the lower brain stem.

Animals

The binding of labelled saxitoxin to the sodium channels in normal and denervated mammalian muscle, and in amphibian muscle.

1. The binding of [3H]saxitoxin to innervated and denervated rat diaphragm muscle, and to normal frog muscle, has been measured. 2. A saturable component of saxitoxin binding, which was inhibited by tetrodotoxin, was detected in all preparations, as well as a component of non-saturable binding. The values for the maximum saturable capacity, M, and the equilibrium binding constant, K, for normal rat diaphragm muscle were: M = 24-4 f-mole.mg wet-1, and K = 3 -8 NM. 3. Denervation of rat diaphragm muscle reduced the maximum binding capacity per unit weight to 16-5 f-mole.mg-1. The value of K remained virtually unchanged at 4-2 nM. 4. It is suggested that the decrease in density per unit weight does not reflect any change in the density of sodium channels per unit area of membrane. 5. Two varieties of the same species of frog, Rana pipiens, were examined. In one variety (Southern) the value of M was 25-6 f-mole.mg-1 and the value of K was 4-3 nM. In the Northern variety the maximum binding capacity was less, M being 14-6 f-mole.mg-1; the value of K was 3-8 nM.

Action Potentials

Influence of Na+ and Li+ ions on the kinetics of sodium channel block by tetrodotoxin and saxitoxin.

Voltage clamp experiments were done on single myelinated frog nerve fibres. The rate of block of Na+ channels by tetrodotoxin (TTX) was obtained from changes in peak Na+ current during 1-Hz trains of depolarizing impulses. In hypertonic Na(+)-rich solution (216 mM) the stationary block was reduced compared with Na(+)-poor solutions (54 mM or less; tetramethylammonium ions substituting for Na+). Washout in 216 mM Na+ was faster than in 54 mM Na+. Concentration of Na+ [( Na+]) little affected onset of block. After equilibration in Na(+)-poor TTX solution, a sudden application of Na(+)-rich toxin solution led to a partial relief from block that proceeded faster than the onset in the latter solution. Comparable results were obtained with saxitoxin (STX) and in analogous Li+ solutions. Most of the observed phenomena could be quantitatively fitted by a cyclic model in which cations favour the transition of channels (unblocked and blocked) from a high- to a low-affinity state from which toxin dissociates faster.

Animals

Saxitoxin and procaine act independently on separate sites of the sodium channel.

1. Voltage clamp experiments were done on single myelinated nerve fibres of the frog, Rana esculenta. 2. The time course of procaine action (1.0 mM at pH 7.2) was obtained from changes in INa on changing solutions during repetitive (1 HZ) depolarizing pulses of constant amplitude following hyperpolarizing prepulses. The mean half times of onset and offset of procaine block were 3.7 and 28 s, respectively. In the presence of 1.4 nM saxitoxin (STX) the corresponding times were virtually the same, 3.1 and 27 s. 3. Similarly, the time course of partial relief from procaine block that is obtained by increasing the frequency of the prepulse-test pulse pairs from 1-10 HZ was unaffected in the presence of STX. 4. Comparison of the equilibrium effects of procaine concentrations ranging from 0.03-1.0 mM suggest a one-to-one drug-receptor reaction. The fraction of Na channels blocked at equilibrium with 1.0 mM procaine, 1.4 nM STX, and 1.0 mM procaine + 1.4 nM STX was 0.81, 0.49, and 0.90, respectively. This result and the kinetic behaviour fully agree with the idea of two separate and independent receptors for procaine and STX.

Animals