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The 1H nuclear-magnetic-resonance spectra of Neurotoxin I and cardiotoxin Vii4 from Naja mossambica mossambica.

Two toxins from the venom of Naja mossambica mossambica, neurotoxin I and cardiotoxin VII4, were investigated in aqueous solution by high-resolution 1H nuclear magnetic resonance (NMR) techniques at 360 MHz. The spectral characterization of the proteins included determination of the number of slowly exchanging amide protons which can be observed in 2H2O solution, measurement of the amide proton chemical shifts and exchange rates, characterization of the aromatic spin systems and the internal mobilities of aromatic rings, and studies of the pH dependence of the NMR spectra. For numerous resonances of labile and non-labile protons quite outstanding pH titration shifts were observed. It is suggested that these NMR parameters provide a useful basis for comparative structural studies of different proteins in the large group of homologous snake toxins. As a first application the NMR data presently available in the literature on neurotoxin II from Naja naja oxiana, toxin alpha from Naja nigricollis and erabutoxin a and b from Laticauda semifasciata have been used to compare these three proteins with neurotoxin I from Naja mossambica mossambica. This preliminary comparative study provides evidence that the same type of spatial structure prevails for these four homologous neurotoxins and that the folding of the backbone corresponds quite closely to that observed in the crystal structure of erabutoxin b. A second application is the comparison of cardiotoxin VII4 from Naja mossambica mossambica with the neurotoxins. The experimental data indicate that the folding of the polypeptide backbone is closely similar, but that the cardiotoxin molecule is markedly more flexible than the neurotoxins.

Amino Acid Sequence

Conformational studies of neurotoxin II from Naja naja oxiana. Selective N-acylation, circular dichroism and nuclear-magnetic-resonance study of acylation products.

After treatment of neurotoxin II, a component part of the venom of the Middle Asian cobra Naja naja oxiana, with acetoxysuccinimide all five possible epsilon-acetylated-lysyl derivatives were obtained and the position of the label was established. Trifluoroacetylation of both the derivatives and the parent toxin yielded, respectively, the five acetyl-penta(trifluoroacetyl)-neurotoxins II and the hexa(trifluoroacetyl)-neurotoxin II, which were studied by circular dichroism (CD), 1H and 19F nuclear magnetic resonance (NMR) spectroscopy. The availability of this series of compounds made possible assignment of all six fluorine signals (from the N-terminal and the five epsilon-amino groups) in the hexa(trifluoroacetyl)-neurotoxin II NMR spectra and disclosure of the proximity of the Lys-26 and Lys-46 trifluoroacetyl groups. The pH dependence of the 19F NMR signals was determined and the pK values of the groups affecting the signal chemical shifts were calculated by a computer iterative program. In order to ascertain the relative accessibility of the lysyl side chains, the change in halfwidths of the hexatrifluoroacetylated neurotoxin II 19F signals, with addition of varying amounts of an iminoxyl spin probe, was determined. The data obtained are compared with the X-ray data on sea snake neurotoxins and the significance of the side chain interactions observed in solution is discussed.

Acylation

Binding of Clostridium botulinum neurotoxin to the presynaptic membrane in the central nervous system.

Large synaptosome fractions were isolated from the cerebellar and cerebral cortices of rats and were incubated with Clostridium botulinum type A neurotoxin in vitro. The binding of the neurotoxin to the synapses was observed by electron microscopy, using the double-sandwich immunocytochemical method. Botulinum neurotoxin was preferentially bound to the presynaptic membrane in the large synaptosome fraction. The binding regions for the neurotoxin were localized on both the extrajunctional and junctional areas of the presynaptic membranes and appeared as patches of various sizes. However, they did not exist on the postsynaptic membranes. Botulinum neurotoxin is proposed to be a useful analytical tool for understanding the characteristics of the presynaptic membranes in the central nervous system.

Animals

[Study of the enterotoxic action of the neurotoxin of the Sonne dysentery microbe in a rabbit small intestine loop model].

The enterotoxic action of neurotoxin from Sonne dysentery microbes (obtained by the method of Mesrobeanu et al.), and also of the culture autolysates and homologous Boiven's endotoxin was studied on a model of the isolated loop of the rabbit small intestine. Neurotoxin preparations obtained from virulent strains as well as autolysates of these cultures possessed enterotoxic activity, whereas purifed endotoxin preparations in doses of 1--10 mg failed to cause any dilatation of the isolated intestinal segment. A significant individual rabbit sensitivity to the enterotoxic action of the neurotoxin preparation was revealed. Lyophilization of neurotoxin preparation did not influence its enterotoxicity. However dialysis against distilled water and boiling of the neurotoxin preparations led to the loss of enterotoxic activity.

Animals

Double-blind study of modified neurotoxin in motor neuron disease.

In a double-blind study, we evaluated the intramuscular administration of modified neurotoxin in 48 patients who were treated for 6 months. There was no evidence to support claims that patients receive any benefit from the neurotoxin. A significant number of patients had minor functional improvement, often of a transient nature, but these manifestations were more common in the placebo-treated patients than in those receiving neurotoxin. These variations in the course of motor neuron disease have not been stressed in the previous literature.

Bungarotoxins

Neurotoxins of Bungarus multicinctus vernom. Purification and partial characterization.

The purification to homogeneity of nine neurotoxic components of the venom of Bungarus multicinctus is described. The purified components include alpha-bungarotoxin and two other alpha-type synaptic toxins and beta-bungarotoxin and five other beta-type synaptic toxins. The purified toxins have been characterized by electrophoresis, isoelectric focusing, amino acid analysis, and N-terminal amino acid determination. The alpha-type synaptic neurotoxins constitute a discrete class with molecular weights of 7000-8500, isoelectric points (pI) of 9.0-9.2, and N-terminal isoleucine or methionine. The beta-type synaptic neurotoxins constitute a second group with molecular weights of 20 000-22 000 and pI = 8.8-9.7. Fractions 10 through 13 exhibit a chain structure consisting of a 6000-7000 light chain and a 11 000-15 000 heavy chain apparently covalently stabilized by interchain disulfides. Fractions 9A and 14 were single chains of 11 000-14 000 which resemble the sequenced beta-type synaptic neurotoxin notexin (Halpert, J., and Eaker, D. (1975), J. Biol. Chem. 250, 6990). All of the beta-type synaptic toxins have a single tryptophan and N-terminal aspartic acid or asparagine.

Acetylcholinesterase

Amino acid sequence of neurotoxin III of the scorpion Androctonus austrialis Hector.

The amino acid sequence of neurotoxin III, purified from the venom of the North African scorpion Androctonus australis Hector, has been determined by Edman degradation using a liquid-phase sequencer. Carboxypeptidase A hydrolyses confirmed not only the sequence of the five last residues but also the presence of a free alpha-carboxylic group at the C-terminus. Edman degradation was conducted on one hand with the Quadrol [N,N,N',N'-tetrakis(2-hydroxypropyl)ethylene diamine] program and S-alkylated protein before or after coupling with sulfophenylisothiocynate (the first 34 residues were thus identified), on the other hand on tryptic and chymotryptic peptides with a dimethylbenzylamine program (residues 1--23 and 31--34 were confirmed, the positions of residues 35-64 were established). Neurotoxin III was found to belong to the same group of scorpion toxins active on mammals as neurotoxin I purified from the same venom (50 homologous positions exist in the two proteins).

Amino Acid Sequence

Evaluation of plasma neurotoxin concentration in uraemic polyneuropathic patients.

Purification of b4-2 sub-peak obtained on DEAE Sephadex A25 chromatography gave us the possibility of quantifying the plasma concentration of the neurotoxin present in uraemic patients with active polyneuropathy. From the purified neurotoxin isolated by kieselguhr and cellulose chromatography we calibrated analytic columns for b4-2 analysis. Plasma concentration, measured in 6 uraemic neuropathic patients, is between 13 and 19 mg/litre. In 52 uraemic patients without neuropathy, the plasma concentration is between 3 and 9 mg/litre. In 20 healthy subjects the plasma concentration is less than 1 mg/litre. The weekly neurotoxin removal in uraemic patients without neuropathy, treated by a five hours RP6 session 3 times a week, is of the same order of magnitude as the weekly urinary excretion in healthy subjects. Preliminary results of a tentative identification of this purified product indicate that it is not a polypeptide but an acid-polyol with carbohydrate structure.

Chromatography, Ion Exchange

Mechanism of action of neurotoxins.

This paper is a summary of studies over the past few years that pertain to animal neurotoxins. These toxins are found throughout the animal kingdom. Homologies exist in the structures of these poisons within classes and point to conservation of active sites throughout evolution. In the case of the peptides, invariant amino acids may be involved in the active site, be essential for maintaining the shape and conformation of the molecule or serve as a fulcrum for folding of the peptide chain after synthesis. At the nuclear or DNA-level, a constant base sequence may regulate gene operation so that only a specific amino acid is coded. Physiologically, and with ultrastructural and biochemical correlation, the predominant mode of action of neurotoxins relate to one or the other of the major activities of the excitable cell,--on conductile activity affecting Na+ or K+ permeabilities, on output or secretory activities affecting the release of neurotransmitter or on in put generator activities affecting the receptor molecules for transmitter themselves. The future of these animal neurotoxins in neurobiological research is secure. The elucidation of molecular mechanisms, by which these various physiological activities of excitable tissue are expressed, will surely involve one or more of these fascinating, naturally-occurring compounds.

Animals

Amino acid sequence of a postsynaptic neurotoxin from the venom of the Australian tiger snake Notechis scutatus scutatus.

Although 60 percent of the protein in tiger snake (Notechis scutatus scutatus) venom consists of the basic per-synaptically neurotoxic and myotoxic phospholipases notexin and Notechis II-5 and other phospholipase homologs such as Notechis II-1, several post-synaptic "curaremimetic" neurotoxins are present in small amounts. The major one of these is a typical "long" neurotoxin containing 73 amino acids in a single peptide chain cross-linked by five disulfide bridges. The formula weight calculated from the amino acid sequence is 8,051. The LD50 for intravenous injection into mice is 125 micrograms/kg.

Amino Acid Sequence

[Production of antiserum to neurotoxin-2 from Naja naja oxiana cobra venom and reaction with the toxin].

Antiserum to neurotoxin-2 from the venom of the cobra was obtained by immunization of rabbits via the injection of the toxin into the lymphatic nodes and by two re-immunizations via the injection of the toxin into the blood and intramuscularly. Using scores of micrograms of the toxin, specific antisera with high antibody titer were obtained. In spite of high specificity of separate stages of the reactions, using indirect immune fluorescence technique, no specific fluorescence was found in the end-plates of the diaphragm, in which "intact" cholinoreceptors were bound to neurotoxin-2. It is suggested that antigenic determinant of the toxin is involved into the formation of a firm link with the receptors, this process resulting in "masking" the determinant and in loss of its ability to react with antibodies.

Animals

Three-dimensional structure of neurotoxin a from venom of the Philippines sea snake.

The crystal structure of neurotoxin a from the venom of Philippines sea snake Laticauda semifasciata has been determined at 2.5 A resolution by x-ray diffraction. Comparison with the structure of neurotoxin b from the same source indicates that the two toxins differ only by substitution at His 26. Earlier chemical work had suggested a difference in chain length and considerable differences in amino acid composition. The difference between our a and b toxins is the same as that reported from sequence analysis for the related erabutoxins a and b from Japanese sea snake, and suggests that the Philippines toxin may be identical to erabutoxin. The replacement of His 26 by a shorter side-chain in toxin a has no effect on the structure of the rest of the molecule. In particular, the protruding loop, which we believe interacts with the acetylcholine receptor, is not affected, even though His 26 is in the loop.

Animals

The pathogenesis of Shigella diarrhea. V. Relationship of shiga enterotoxin, neurotoxin, and cytotoxin.

The biological activity of the enterotoxin of Shigella dysenteriae 1 was compared with that of a well-studied 20-year-old partially purified preparation of neurotoxin from the same organism. Enterotoxicity, neurotoxicity, and cytotoxicity were present to an equivalent extent in both preparations. Human convalescent antisera and experimental rabbit antisera had equal toxin-neutralizing antibody to the cytotoxic activity in these toxin preparations. Multiple protein bands were present in each toxin studied. Two separate HeLa cell fractions could be obtained by Sephadex gel filtration chromatography, isoelectric focusing in a sucrose gradient, and polyacrylamide gel electrophoresis. Only one of these fractions (isoelectric at pH 7.2) was associated with enterotoxicity and neurotoxicity. The second smaller-molecular-weight fraction, which was isoelectric at pH 6.1, possessed only cytotoxic activity. These data suggest that Shiga enterotoxin and neurotoxin are closely related proteins and, indeed, may be identical. The nature of the cytotoxin with pH 6.1 is not clear, although it may be a subunit of the larger toxin that is capable of acting directly on the HeLa cell.

Diarrhea

The sodium channel in non-impulsive cells. Interaction with specific neurotoxins.

The cell line C9 used in this paper has a resting potential of --50 mV (+/- 10 mV) but is unable to generate an action potential upon electrical stimulation. The cell membrane has receptors for the selectivity filter toxin tetrodotoxin as well as for the gating system toxins, veratridine, scorpion toxin and sea anemone toxin. The Na+ channel which remains silent to electrical stimulation in the absence of toxins can be chemically activated by the gating system toxins. This has been demonstarted by electrophysiological techniques and by 22Na+ flux studies. The electrophysiological approach has shown that the sea anemone toxin is able to induce a spontaneous slow-wave activity inhibited by tetrodotoxin. 22Na+ influx analyses have shown that veratridine and the sea anemone toxin produce an important increase of the initial rate of 22Na+ influx into the C9 cell. The stimulation of 22Na+ entry by these gating system toxins is similar to that found using spiking neuroblastoma cells. Veratridine and the sea anemone toxin on one hand as well as veratridine and the scorpion toxin on the other hand are synergistic in their action to stabilize an open and highly permeable form of the sodium channel. Stimulation of 22Na+ entry into the cell through the sodium channel maintained open by the gating system neurotoxins is completely suppressed by tetrodotoxin.

Animals

Acetylcholine receptors in the ciliary ganglion and in the iris muscle of the chick: specific binding and effect on the synaptic transmission of the neurotoxin from Naja naja siamensis.

1 A specific binding of Naja naja siamensis neurotoxin was found both in the iris and in the ciliary ganglion of the chick. 2 Naja-toxin (125 nM) caused a complete block of the iris muscle contraction induced by carbamylcholine. 3 Naja-toxin had a different effect on the two neuronal populations present in the ganglion: it blocked the synaptically evoked response of the ciliary cells, while the response of the choroid ones was only slightly reduced. The effects were the same in a wide range of concentrations (125 to 2500 nM). 4 The results obtained in the iris show the existence of an acetylcholine receptor population similar to the nicotinic receptor of the skeletal muscle. 5 In the ciliary ganglion the results confirm the existence of different acetylcholine receptors on the two cell types.

Animals

Affinity chromatography purification of type A botulinum neurotoxin from crystalline toxic complex.

Type A botulinum neurotoxin was purified from toxic crystals by adsorption to p-aminophenyl-beta-D-thiogalactopyranoside coupled to CH-Sepharose 4B. At pH 6.3, the toxic complex was held by the binding between the ligand and the hemagglutinin of the complex; the toxin is eluted selectively by dissociating the complex with buffer-saline of pH 7.9. The single-step affinity chromatography recovered 50 to 60% of applied toxicity as preparations of greater than 99% purity.

Animals

Isolation and Characterization of Botulinum Neurotoxin-Producing Clostridium caccae from Meat and Soil - China, 1990-2025.

WHAT IS KNOWN ABOUT THIS TOPIC?: Botulinum neurotoxin (BoNT)-producing clostridia are categorized into six physiologically and phylogenetically distinct groups (Groups I-VI). Increasing genomic evidence indicates that bont genes are distributed across multiple clostridial lineages, highlighting the taxonomic complexity of BoNT-producing clostridia. Clostridium caccae (C. caccae), first described in 2020 from human stool, was originally described as a strain lacking the bont gene; however, its association with BoNT production has not been previously recognized. WHAT IS ADDED BY THIS REPORT?: Six isolates originally identified as Group II C. botulinum in China were assigned to C. caccae based on the average nucleotide identity (ANI) analysis. In addition, 140 publicly available genomes of C. caccae were analyzed. Among the 146 C. caccae strains, 63% carried bont genes (subtypes B4, E9, E12, and F6), with geographical distribution patterns differing by subtype. WHAT ARE THE IMPLICATIONS FOR PUBLIC HEALTH PRACTICE?: A subset of Group II C. botulinum strains should be considered as C. caccae, indicating that this species represents a previously under-recognized reservoir of multiple BoNT subtypes. To our knowledge, this is the first study to link BoNT-producing C. caccae to both soil contamination and human botulism, highlighting that BoNT-producing C. caccae may be an under-recognized contributor to the risk of botulism.

Botulinum neurotoxin

[Effect of presynaptic neurotoxin notechis II-5 from tiger snake venom on the motor nerve endings of mice].

The neurotoxin notechis II-5 (N-II-5) from tiger snake venom (Notechis scutatus) induces three-phasic changes in miniature end-plate potential (MEPP) frequency recorded in the mouse diaphragm muscle: an initial fall of frequency followed by increase and decrease in MEPP frequency up to complete blockade. The effect of N-II-5 was enhanced with rising of the solution temperature from 20 to 30 and 35 degrees C. Removal of Ca2+ from the solution prevented the presynaptic effect of N-II-5. After washing out of the muscle from N-II-5 with Ca-free solution, addition of Ca2+ to the solution provoked the development of the effect typical of the effect of typical of the toxin. In the presence of N-II-5 an increase in K+ concentration in the solution up to 20 mM did not result in a sharp rise of MEPP frequency characteristic of depolarized nerve terminals. The agents that raise Ca2+ axoplasmic concentration not on account of depolarization of nerve terminals (hypertonic solution, ionofor A23187) preserved the capacity for increasing MEPP frequecy. It is suggested that the presynaptic effect of N-II-5 is related to its phospholipase activity and can be explained by disturbance of the activity of release sites rather than by depletion of transmitter stores.

Action Potentials