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At least 19 recordsLinked to original sources

Immobilization of small molecules on solid matrices: a novel approach to enzyme-linked immunosorbent assay screening for saxitoxin and evaluation of anti-saxitoxin antibodies.

A novel enzyme-linked immunosorbent assay (ELISA) technology was developed for detecting saxitoxin or evaluation of anti-saxitoxin antibodies, which is based on non-covalent immobilization "free' saxitoxin to Maxisorp microtitre plates. The effect of pH on immobilization was studied in media with wide-range buffering capacities (piperazine-glycylglycine and barbiturate buffers). Increasing pH resulted in better responses, although this was mainly due to non-specific interactions. At pH 10.0, however, saxitoxin immobilization was quite effective and specific. The same pattern was found under four different conditions; absence vs presence of bovine serum albumin precoating and absence vs presence of 150 mM NaCl. The best results (high specific response) were achieved with bovine serum albumin precoating in the presence of 150 mM NaCl. The method of choice involved precoating Maxisorp with 5 micrograms/ml albumin followed by addition of 5 microM saxitoxin in 0.01 M piperazine-glycylglycine buffer, pH 10.0. The efficacy of this technology was demonstrated on a polyclonal rabbit anti-saxitoxin antibody and compared with a conventional ELISA of saxitoxin using saxitoxin-bovine serum albumin conjugate as the coating antigen. In the experiments investigating cross-reactivities of various saxitoxin derivatives based on a competitive assay, significantly greater sensitivity was achieved with the novel approach, e.g. 35 pM saxitoxin could be detected (3 x 10(4) times lower concentrations than using the conjugate). The assay works well with mussel tissue homogenates, and because it does not require the use of the covalent saxitoxin-carrier conjugates it offers a simpler alternative to the traditional ELISA for saxitoxin.

Antibodies↗

Stabilization of a sodium channel state with high affinity for saxitoxin by intramolecular cross-linking. Evidence for allosteric effects of saxitoxin binding.

Incubation of purified rat brain sodium channels at 37 degrees C or at high ionic strength causes a concomitant loss of saxitoxin-binding activity and dissociation of beta 1 subunits. Reaction with hydrophilic carbodiimides produced a resistance against the loss of saxitoxin binding and caused covalent cross-linking of alpha, beta 1, and beta 2 subunits. In the presence of saxitoxin, this cross-linking reaction led to formation of a state with increased affinity for saxitoxin. However, analysis of the concentration dependence of covalent cross-linking and its inhibition by hydrophilic nucleophiles showed that the stabilization of the saxitoxin-binding activity was due to the formation of a small number of isopeptide bonds in the alpha subunit rather than to cross-linking of alpha and beta 1 subunits. In the presence of amine nucleophiles, carbodiimides caused loss of saxitoxin binding, which was prevented in the presence of the toxin. Nucleophiles yielding positively charged amide products were more effective than those forming uncharged or negatively charged products. Under conditions where saxitoxin protected the binding activity of the sodium channel from inactivation, the overall availability of carboxyl groups for reaction was increased, providing evidence for a toxin-induced conformational change on binding. These results are considered in terms of an allosteric model of saxitoxin binding, in which the functional form of the sodium channel having high affinity for saxitoxin can be stabilized against inactivation by noncovalent interactions with beta 1 subunits, binding of saxitoxin and tetrodotoxin, or intramolecular cross-linking of amino acid residues within the alpha subunit.

Allosteric Regulation↗

Neutralization of saxitoxin by anti-saxitoxin rabbit serum.

This study examined the ability of anti-saxitoxin rabbit serum to neutralize saxitoxin, both in vitro and in vivo. In vitro, two rabbit antisera decreased [3H]-saxitoxin binding to specific sites in rat brain membranes. The more potent of these sera, antiserum A, when combined with saxitoxin in vitro, decreased saxitoxin's lethal potency based on mouse bioassay. Antiserum A also neutralized saxitoxin in vivo, as illustrated by the fact that mice injected i.p. with antiserum A (1:4) survived a s.c. injection 1 hr later of 16.7 micrograms saxitoxin/kg (1 LD99). Finally, antiserum A prevented death when injected i.v. immediately after s.c. injection of 16.7 micrograms saxitoxin/kg, however, antiserum injected by the i.p. and i.m. routes caused no significant increase in survival. This study indicates that antiserum can neutralize saxitoxin both in vitro and in vivo.

Animals↗

Actions of epimers of 12-(OH)-reduced saxitoxin and of 11-(OSO3)-saxitoxin on squid axon.

The actions of the 12 alpha-saxitoxinol, 12 beta-saxitoxinol and a C-12 ethylene thioketal derivative of saxitoxin, as well as those of 11 alpha-(OSO3)-saxitoxin, 11 beta-(OSO3)-saxitoxin and 11 alpha-(OH)-saxitoxin, have been examined on the isolated squid giant axon. Each of these analogues acted similarly to saxitoxin in blocking specifically the sodium channel. The relative potencies are: STX (1); 11 beta-(OSO3)-STX (gonyautoxin III) (0.42); 11 alpha-(OSO3)-STX (gonyautoxin II) (0.20); 11 alpha-(OH)-STX (0.10); 12 alpha-saxitoxinol (0.0021); 12 beta-saxitoxinol (0.0005). Thus, the presence of a bulky and negatively charged sulphate group on C-11 does not materially affect the biological activity of STX. Hydrogen bonding at the C-12 position is probably an important means of binding of STX to the membrane receptor site. The difference between the epimers of saxitoxinol suggests that the H in one of them may be geometrically better aligned than that in the other, with the hydrogen acceptor group in the receptor.

Amphibian Proteins↗

The potencies of synthetic analogues of saxitoxin and the absolute stereoselectivity of decarbamoyl saxitoxin.

The potencies of synthetic saxitoxin (+/- STX) and six of its synthetic analogues, including the enantioselectively synthesized unnatural (-)enantiomer of decarbamoyl saxitoxin (dcSTX), were measured and compared to those of natural saxitoxin [(+)STX]. The analogues, all of which were racemic (+/-) mixtures except for dcSTX, varied in the substituents at the C6 position, the carbamoyl 'moeity', and the C12 position, the hydrated ketone. The ability of the toxins to inhibit the compound action potential (AP) and to displace radiolabeled natural saxitoxin (3H-STX) from nerve membranes at equilibrium were both used as potency assays. Biological activity of both (+)- and (-)dcSTX was analyzed by the kinetics of block of single Na+ channels reconstituted in planar lipid bilayer membranes, where it was demonstrated that only (+)dcSTX had biological activity. The potency of STX analogues fell markedly as the substituent at the C6 position became smaller; Ki values from the binding competition assay (at 4 degrees C) are: (+/-)6-methanolic-STX, 5 x 10(-10) M; (+/-)6-methyl-STX, 1 x 10(-6) M; (+/-)6-dihydro-STX, 3.5 x 10(-5) M. Replacement of the ketone at the C12 position by a methylene group was accomplished in two derivatives, although both also had substituents at the C6 position. The compound (+/-)6-methyl-12-deoxy-STX was about 0.03 as potent as (+/-)6-methyl-STX and only 10(-5) as potent as racemic (+/-)STX. In synthetic compounds where the benzyloxymethyl (-CH2OCH2C6H5) substituent occurred at the C6 position, the C12-methylene derivative still displayed some binding activity (Ki = 6 x 10(-4) M). However, when the same C6 derivatized compounds also contained a 6-membered heterocyclic group (-C3H8S2-) conjugated to carbon 12, the measured binding affinity was even further decreased (Ki = 2 x 10(-3) M). The findings show that substitutions on the carbon 6 position of STX have stronger effects on STX potency than previously believed, and that the toxin may form a hydrogen bond with the sodium channel at this site. Furthermore, the total removal of oxygen from the C12 position does not completely abolish the binding activity of the molecule.

Action Potentials↗

Active groups of saxitoxin and tetrodotoxin as deduced from actions of saxitoxin analogues on frog muscle and squid axon.

1. The actions of three saxitoxin (STX) analogues have been studied on the frog sartorius muscle fibre and the squid giant axon. One--neosaxitoxin--is a natural analogue, and two--decarbamylsaxitoxin and reduced saxitoxin--are synthetic. 2. The maximum dV/dt of the action potential in paired-muscle protocol is reduced by the analogues with relative potencies: STX (1), tetrodotoxin (1), neo-STX (1), decarbamyl-STX (0.2) and reduced-STX (0.01). 3. In constant-current studies on frog muscle fibres and in voltage-clamp studies on squid axons, all three analogues block only the sodium channel without affecting the potassium channel. 4. All three analogues bind to the same site as does STX in a competitive manner. 5. The experimental results suggest that the active groups in STX are the 7,8,9 guanidinium and the C-12 hydroxy groups. The carbamyl group contributes to, but is not essential for activity. 6. Stereospecific groups in the tetrodotoxin (TTX) molecule are the 1,2,3 guanidinium and the C-9, C-10 hydroxy groups. C-4 and C-8 groups are also important. 7. As new view is proposed in which STX and TTX can bind to a receptor located in the outside surface of the membrane very close to the orifice of the sodium channel.

Action Potentials↗

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↗

Characterization of saxitoxin binding to saxiphilin, a relative of the transferrin family that displays pH-dependent ligand binding.

Saxiphilin is a 91 kDa saxitoxin-binding protein that is homologous to members of the transferrin family of Fe(3+)-binding proteins noted for pH-dependent release of Fe3+. The mechanism of toxin binding to purified native saxiphilin from the bullfrog (Rana catesbeiana) was studied using [3H]saxitoxin. At pH 7.4 and 0 degrees C [3H]saxitoxin binds to a single site on saxiphilin with a KD of approximately 0.2 nM. The pH dependence of [3H]saxitoxin binding follows a one-site titration curve in the range of pH 9-4 with maximal binding from pH 9 to 7 and half-inhibition at pH 5.7. Inhibition of toxin binding at low pH is the combined result of a decrease in the rate of toxin association and an increase in the rate of toxin dissociation. The dependence of the apparent rate constants for [3H]saxitoxin association and dissociation on [H+] can be accounted for by a four-state model of allosteric interaction between the toxin-binding site and a single titratable residue of saxiphilin with a pKa of 7.2 in the toxin-free form and 4.3 in the toxin-bound form. From 0 to 25 degrees C, the temperature dependence of [3H]saxitoxin binding to saxiphilin is characterized by delta H degrees = -8.3 kcal mol-1, delta S degrees = 13.8 cal mol-1 K-1, and activation energies of 22.5 kcal mol-1 for dissociation and 11.1 kcal mol-1 for association. Binding of [3H]saxitoxin to saxiphilin is competitively inhibited with low affinity by a variety of divalent metal and lanthanide cations. Inhibition of toxin binding by the carboxyl-methylating reagent trimethyloxonium is prevented by pre-equilibration with [3H]saxitoxin, implicating the presence of one or more carboxyl groups in the binding site. Functional similarities suggest that the saxitoxin-binding site of saxiphilin is located in an interdomain cleft analogous to the location of one of the two homologous Fe(3+)-binding sites of transferrins. On the basis of residue substitutions between saxiphilin and transferrins, it is proposed that the saxitoxin-binding site is located in the carboxy terminal lobe of saxiphilin and that binding is modulated by protonation of a conserved histidine residue.

Amino Acid Sequence↗

Two formats of enzyme immunoassay for the detection of saxitoxin and other paralytic shellfish poisoning toxins.

A competitive direct enzyme-linked immunofiltration assay for the detection of saxitoxin was developed, using polyclonal antibodies against saxitoxin and a saxitoxin-horseradish peroxidase conjugate. The test was performed in an eight-well plastic test device, in which antibody-coated nylon membranes were pressed tightly to an absorbent cellulose layer. Saxitoxin standard or sample extract solution, saxitoxin-conjugate, and enzyme substrate/chromogen solution were sequentially added on to the membrane. The test was evaluated visually by comparing the intensity of the resulting coloured (blue) dot with that of a negative control. The detection limits for saxitoxin in buffer solution and in shellfish tissue were 4 ng/ml and 80 ng/g respectively, with an assay time of less than 15 min. Under the conditions of the immunofiltration assay, decarbamoyl-saxitoxin, gonyautoxin 2/3, and neosaxitoxin standards (in buffer) gave a positive response at concentrations of about 10 ng/ml, 40 ng/ml, and 80 ng/ml, respectively. The relative cross-reactivity of the antibody to these PSPs was similar when determined using both direct and indirect (using a saxitoxin-bovine serum albumin conjugate) competitive enzyme immunoassays in microtitre plate format. In competitive direct microtitre plate assays, the 50% binding values found for saxitoxin, decarbamoyl-saxitoxin, gonyautoxin 2/3 and neosaxitoxin were 15 pg/ml, 47.5 pg/ml, 163.5 pg/ml, and 510 pg/ml respectively. In competitive indirect microtitre assay, the respective values were 138 pg/ml, 404 pg/ml, 1582 pg/ml, and 6982 pg/ml.

Animals↗

Biphasic regulation of development of the high-affinity saxitoxin receptor by innervation in rat skeletal muscle.

Specific binding of 3H-saxitoxin (STX) was used to quantitate the density of voltage-sensitive sodium channels in developing rat skeletal muscle. In adult triceps surae, a single class of sites with a KD = 2.9 nM and a density of 21 fmol/mg wet wt was detected. The density of these high-affinity sites increased from 2.0 fmol/mg wet wt to the adult value in linear fashion during days 2-25 after birth. Denervation of the triceps surae at day 11 or 17 reduced final saxitoxin receptor site density to 10.4 or 9.2 fmol/mg wet wt, respectively, without changing KD. Denervation of the triceps surae at day 5 did not alter the subsequent development of saxitoxin receptor sites during days 5-9 and accelerated the increase of saxitoxin receptor sites during days 9-13. After day 13, saxitoxin receptor development abruptly ceased and the density of saxitoxin receptor sites declined to 11 fmol/wg wet wt. These results show that the regulation of high-affinity saxitoxin receptor site density by innervation is biphasic. During the first phase, which is independent of continuing innervation, the saxitoxin receptor density increases to 47-57% of the adult level. After day 11, the second phase of development, which is dependent on continuing innervation, gives rise to the adult density of saxitoxin receptors.

Animals↗

Multiple saxitoxin-binding sites in bullfrog muscle: tetrodotoxin-sensitive sodium channels and tetrodotoxin-insensitive sites of unknown function.

The possible presence of multiple sodium channel subtypes in bullfrog skeletal muscle was investigated in binding experiments with [3H]saxitoxin and in single-channel studies using planar lipid bilayers. Two classes of [3H]saxitoxin-binding sites were identified in membrane preparations. One class displayed a toxin specificity characteristic of voltage-dependent sodium channels: high affinity for saxitoxin (KD approximately equal to 0.5 nM), neosaxitoxin (KD approximately equal to 0.1 nM), and tetrodotoxin (KD approximately equal to 1.3 nM). A second class of membrane-associated binding sites exhibited high affinity for saxitoxin (KD approximately equal to 0.1 nM), lower affinity for neosaxitoxin (KD approximately equal to 25 nM), and complete insensitivity to tetrodotoxin at concentrations up to 32 microM. The first class corresponded to functional tetrodotoxin-sensitive sodium channels that could be incorporated and observed in planar bilayers in the presence of batrachotoxin. Similar attempts to incorporate tetrodotoxin-insensitive sodium channels from bullfrog muscle and heart membranes were unsuccessful. The unusual, tetrodotoxin-insensitive binding activity for [3H]saxitoxin was also found at nM levels in the high speed supernatant of homogenized skeletal muscle without the addition of detergents. This soluble class of sites exhibited low affinity for neosaxitoxin (KD approximately equal to 60 nM) and a very slow dissociation rate of [3H]saxitoxin (t0.5 approximately equal to 90 min), properties nearly identical to those of the tetrodotoxin-insensitive sites in membranes. The soluble saxitoxin-binding activity is also characterized by a more basic pH dependence and a complete lack of binding competition between saxitoxin and alkali cations. Bullfrog muscle appears to be a good tissue source for the purification of this soluble saxitoxin-binding protein.

Amphibian Proteins↗

Urinary elimination of saxitoxin after intravenous injection.

Paralytic shellfish poisoning is a serious public health concern throughout the world. An analytical method with diagnostic potential was used to isolate and measure saxitoxin, the most potent and studied paralytic shellfish poisoning toxin, in the urine of rats injected i.v. with sublethal doses (2 micrograms/kg) of saxitoxin. Urine was collected at intervals between 4 and 144 hr after injection. Saxitoxin was isolated from urine with an ion-exchange procedure, identified, and measured with a precolumn-oxidation-HPLC procedure coupled with fluorescence detection. The identity of oxidized saxitoxin was confirmed with electrospray ionization mass spectrometry. Four hours after injection, approximately 19% of the injected saxitoxin dose was excreted. By 24 hr, approximately 58% of the administered dose was excreted. Average total urinary excretion of administered saxitoxin was approximately 68% for the full study period. These results demonstrate that small quantities of unmetabolized saxitoxin can be detected in rat urine up to 144 hr after i.v. administration, and that the analytical method may have diagnostic potential for saxitoxin intoxication and paralytic shellfish poisoning.

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↗

Polyclonal anti-idiotypes induce specific anti-saxitoxin antibody responses.

Polyclonal BALB/C mouse and New Zealand White rabbit anti-idiotypic antibodies were raised by immunization with a protein G-purified burro anti-saxitoxin IgG antibody preparation. Following absorption of non-anti-idiotype reactivity, murine and rabbit IgG were purified by protein A chromatography and used to immunize BALB/C mice for the induction of anti-saxitoxin antibody responses. Unconjugated BALB/C anti-idiotypes did not induce significant anti-saxitoxin reactivity in BALB/C mice, even after repeated immunizations. However, BALB/C mice immunized with purified BALB/C anti-idiotypes conjugated to keyhole limpet hemocyanin, or with purified, unconjugated rabbit anti-idiotypes, as aluminum hydroxide precipitates, induced significant and specific anti-saxitoxin immune responses. Saxitoxin, a sodium channel blocker, can protect cells treated with veratridine and ouabain, whose respective actions are to open sodium channels and to block the activity of Na/K-ATPase. The anti-idiotype-induced anti-saxitoxin antibodies inhibited saxitoxin from protecting against cell death induced by veratridine and ouabain treatment. These and other published experimental results strengthen the concept of anti-idiotype-based vaccines in eliciting protective immunity against a variety of low molecular weight, nonproteinaceous biological and chemical toxins, whose extreme toxicity does not allow their use as safe immunogens.

Animals↗

Binding of [3H]saxitoxin to the voltage-dependent Na channels and inhibition of 22Na influx in bovine adrenal medullary cells.

The binding characteristics of [3H]saxitoxin and its binding site were examined in bovine adrenal medullary cells. These cells showed a specific binding of [3H]saxitoxin which was saturable and reversible. Scatchard analysis showed a single class of high-affinity binding sites with an equilibrium dissociation constant of 5.8 nM and a maximum binding capacity of 427.2 fmoles/10(7) cells (124.2 fmoles/mg of cell protein). A Hill plot revealed that there were no co-operative interactions among the binding sites. Unlabeled saxitoxin inhibited the specific binding of [3H]saxitoxin as well as veratridine-induced 22Na influx with a similar potency as did tetrodotoxin. However, veratridine, aconitine and scorpion venom, at concentrations that increased 22Na influx, did not inhibit [3H]saxitoxin binding. These results indicate that saxitoxin binds to a specific site on voltage-dependent Na channels and inhibits the influx of 22Na. [3H]Saxitoxin would be useful for the detailed analysis of voltage-dependent Na channels in adrenal medullary cells.

Adrenal Medulla↗