Lipid-protein interactions. A comparative study of the binding of cardiotoxins and neurotoxins to phospholipid vesicles.
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Biomedical subjects
Publications and source records attributed to H Rochat.
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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).
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The primary structure of the two less acidic parvalbumins (pI = 5.44 and pI = 4.95) from coelacanth muscle (Latimeria chalumnae) has been determined. They differ only by the presence or absence of a N-terminal blocking group. By the use of the automatic degradation, 69 amino acids could be placed unambiguously in the N-terminal part and 24 amino acids following the single arginine 75. Tryptic peptides were used to establish the sequence and the position of the remaining residues. The two parvalbumins examined belong to the alpha-lineage, and the rate of their molecular evolution is comparable to that found in other vertebrates.
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The amino acid sequences of two neurotoxins of the African cobra Naja mossambica mossambica have been determined using almost uniquely phenylisothiocyanate degradation in a liquid protein sequencer programmed alternatively with 'protein' and 'peptide' programs. When compared to known sequences of so-called 'short' neurotoxins belonging to other Elapidae snakes, neurotoxins I and III of Naja mossambica mossambica are very similar to the cobrotoxin, a neurotoxin isolated from the formosan cobra Naja atra atra.
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Colipase was isolated from porcine pancreas homogenate prepared in the presence of detergent (Triton X 100). After precipitation by ammonium sulfate and ethanol, the cofactor was purified by chromatography on SP-Sephadex in the presence of Triton X 100 and on DEAE-cellulose in the absence of detergent. Two molecular forms of porcine colipase were obtained. They represent 80 per cent (colipase A) and 20 per cent (colipase B), respectively, of the total colipase. Valine is the N-terminal residue of both proteins. Their aminoacid composition is similar to that found by Borgstrom for the two forms of porcine colipase. Determination of the sequence of the first sixteen residues at the N-terminal end of colipase A indicates that the cofactor undergoes no proteolytic degradation in this region of the molecule when extraction is carried out in the presence of detergent. The recovery of colipase is about 30 per cent.
Electrophysiological analysis of the effects of scorpion toxin I, one of the neurotoxins from the venom of the scorpion Androctonus australis Hector, upon crayfish neuromuscular junctions has shown that the toxin strongly associates with the nerve terminal to stimulate release of neurotransmitters. The biochemical approach has shown that the binding of scorpion toxin I to rat brain synaptosomes is accompanied by a decrease in their capacity to accumulate gamma-aminobutyric acid. The main effect of the toxin is to stimulate neurotransmitter release. The apparent dissociation constant of the toxin-receptor complex is 0.1-0.2 muM at 22 degrees C. The rate of dissociation is so slow that complex formation seems to be quasi-irreversible. The "quasi-irreversibility" has also been observed in electrophysiological experiments with the crayfish neuromuscular junction. Tetrodotoxin prevents scorpion toxin I action if it is incubated with synaptosomes or with crayfish neuromuscular junctions before scorpion toxin I application. Tetrodotoxin does not reverse scorpion toxin action if it is added to the preparation after scorpion toxin I. Prevention of scorpion toxin action by tetrodotoxin permits measurements of binding characteristics of this toxin to synaptosomes. The dissociation constant of the tetrodotoxin-receptor complex is 2.2 nM at 22 degrees C. No cooperativity is observed in the binding. Because of its high affinity for synaptosomes (and the "quasi-irreversibility" of the binding), scorpion toxin I appears to be a potentially excellent tool for further studies of the molecular mechanism of neurotransmitter secretion.
Six neurotoxins were purified from Dendroaspis viridis venom using gel filtration and equilibrium chromatography. The amino acid sequences of two of these neurotoxins (72 and 73 residues, five disulphide bridges) have been determined using almost exclusively automated Edman degradation. These two sequences are very similar: the only differences lies in the presence of one extra glycine at the C-terminal end of one of them. There is a good homology with the sequences of toxins now isolated from other Elapidae and Hydrophidae venoms.