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Covalent structure of the insect toxin of the North African scorpion Androctonus australis Hector.

The complete covalent structure of the insect toxin purified from the venom of the North-African scorpion Androctonus australis Hector was described. Its amino acid sequence was established by phenylisothiocyanate degradation of several protein derivatives and proteolytic fragments in a liquid protein sequencer using either a "protein" or a "peptide" program. The position of the four disulfide bridges were deduced by analysis of proteolytic peptides before and after diperformic oxidation, and by partial labeling of the half cystine residues with [14C]-iodoacetic acid and determining the specific radioactivities of the S-[14C]-carboxymethylated phenylthiohydantoin cysteines. The sequences of the insect and mammal toxins from scorpions can be aligned with homology with the positions of seven half-cystine residues as registers. The mammal and insect toxins have three disulfide bridges at homologous positions. The mammal and insect toxins have three disulfide bridges at homologous positions. The fourth bridge is different in that Cys12 in mammal toxin II is replaced by Cys38 in the insect toxin. It is likely that the position of the disulfide bridges is the same for all scorpion neurotoxins active on mammals. We believe that the shift of one half-cystine residue in the insect toxin may induce a conformational change in the structure of the protein, which, in turn, may partially account for the total specificity of this toxin for insect nervous system.

Amino Acid Sequence↗

Characterization of a new family of toxin-like peptides from the venom of the scorpion Leiurus quinquestriatus hebraeus. 1H-NMR structure of leiuropeptide II.

To extend our knowledge about the structural features of short scorpion toxins, the ion-exchange fractions obtained from Leiurus quinquestriatus hebraeus venom were investigated by plasma desorption mass spectrometry in order to select low molecular mass polypeptides. Three toxin-like peptides with molecular mass close to 3 kDa, named leiuropeptides I, II and III, were purified and found devoid of any significant toxicity against mammals and insects. Their amino acid sequences revealed a cysteine pattern analogous to that of short-chain scorpion toxins. The solution structure of leiuropeptide II was determined by 2D 1H-NMR spectroscopy and indicated the presence of a helix accommodating a proline, connected to a two-standard beta-sheet by three disulfide bonds. The overall fold of leiuropeptide II is found to be similar to that of leiurotoxin I, a 31-residue toxin present in the same scorpion venom which acts on K+ channels. In order to rationalize the absence of toxicity, the electrostatic potential of leiuropeptide II was compared to that of leiurotoxin I. The peptide is characterized by a large negative zone around Glu4, Asp5 and Asp8 residues, beginning in the neighbourhood of the beta-turn and extending along the helix. In the same area, leiurotoxin I exhibits a positive surface, around Arg6 and Arg13 basic residues, which are essential for its receptor affinity.

Amino Acid Sequence↗

Specificity of antibodies to sea anemone toxin III and immunogenicity of the pharmacological site of anemone and scorpion toxins.

Toxin III (ATX III) of the sea anemone (Anemonia sulcata) is a polypeptide containing 27 amino acid residues. It has no sequence similarity with other toxins (ATX I and II) from the same species, or with scorpion toxins, although they apparently act in a similar manner by prolonging action potentials. The specificity of ATX III antibodies was characterized using ATX III, ATX I, native and chemically modified ATX II, and scorpion alpha-toxins. The results obtained suggest that a region of ATX III, partially or totally overlapping the pharmacological site shared with ATX I and ATX II, is immunogenic. It includes a guanidino and at least two carboxylate groups. The corresponding region is not immunogenic in ATX I and ATX II. Anti-(ATX III) antibodies recognize the similar regions of ATX I and ATX II and apparently do not recognize scorpion toxins.

Action Potentials↗

Activation of the voltage-sensitive sodium channel by a beta-scorpion toxin in rat brain nerve-ending particles.

Neurotoxins purified from scorpion venoms previously had been divided into two classes according to their binding properties in rat brain synaptosomes. However, the pharmacological action of beta-scorpion toxin (beta-ScTx) on this preparation has not yet been described. In this report we show that a beta-ScTx induced an increase in 22Na+ uptake through synaptosomal voltage-sensitive sodium channels since this stimulation was abolished by tetrodotoxin (TTX). The increase was smaller than with veratridine and no synergy was observed between beta-ScTx and veratridine, as is the case for alpha-scorpion toxin (alpha-ScTx) and veratridine. The effects of alpha- and beta-ScTx were additive and the concentration-effect curves for each type of toxin were not modified by the other, suggesting that these two types of toxins act through distinct and noninteracting receptor sites. This was confirmed by the absence of mutual modification of the equilibrium and kinetic binding properties. beta-ScTx was shown to inhibit the uptake and to stimulate the release of [3H]gamma-aminobutyric acid. These effects were blocked by TTX, and no synergy was observed with veratridine. It was concluded that all these effects are mediated by the activation of voltage-sensitive sodium channels induced by the binding of beta-ScTx to a receptor site (site 4) distinct from those for other neurotoxins acting on sodium channels.

Animals↗

Effects of potassium, veratridine, and scorpion venom on calcium accumulation and transmitter release by nerve terminals in vitro.

1. 45-Ca uptake by pinched-off nerve terminals (synaptosomes) of rat brain incubated in standard physiological saline (including 132 mM-Na + 5mM-K + 1-2 mM-Ca) at 30 degrees C averages about 0-5 mumole Ca per g protein per minute. This may be equivalent to a Ca influx of about 0-03 p-mole/cm-2 sec. 2. The rate of 45-Ca uptake is increased when the concentration of K in the medium is increased above 15-20 mM, K replacing Na isosmotically. Maximum stimulation, a three- to six-fold increase in the rate of Ca uptake, occurs when [K]o is about 60 mM. The effect of increased [K]o is reversible. 3. The K-stimulated Ca uptake is associated primarily with the nerve terminal fraction of brain homogenates. The entering Ca is not accompanied by extracellular markers such as mannitol or inulin. Replacement of external chloride by methylsulphate or sulphate does not prevent the stimulation by K. 4. The effects of external K are quantitatively mimicked by Rb. Caesium also stimulates Ca uptake, but is only about one fifth as effective as K or Rb; Li is ineffective. 5. Two other depolarizing agents also stimulate Ca uptake by synaptosomes: veratridine (7-5 times 10- minus 6 to 7-5 times 10- minus 5 M) and scorpion (Leirus quinquestriatus) venom (6-7 times 10- minus 7 to 6-7 times 10- minus g/ml.). The stimulatory effects of veratridine and scorpion venom, but not of increased [K] are blocked by 2 times 10- minus 7 M tetrodotoxin. 6. Internal K also influences the rate of 45-Ca uptake by synaptosomes: lowering [K]i reduces the stimulatory effect of external K and veratridine. 7. Replacement of external Na by choline markedly inhibits the response to veratridine, but has a much smaller effect on the response to increased [K]o. 8. The Ca uptake mechanism has an apparent dissociation constant for Ca (KCa) of about 0-8 mM. Increasing [K]o increases the maximal rate of Ca uptake, but has no effect on KCa. The K-induced 45-Ca uptake is competitively inhibited by Mg-2+, Mn-2+ and La-3+. 9. The release of acetylcholine and noradrenaline was also studied. Increasing [K]o stimulates external Ca-dependent acetylcholine release. Scorpion venom stimulates noradrenaline release from synaptosomes; this effect could be prevented by adding tetrodotoxin or removing external Ca. 10. These results indicate that synaptosomes may increase their permeability to Ca, accumulate Ca and release neural transmitter substances, when stimulated by depolarizing agents under appropriate physiological conditions.

Acetylcholine↗

Effects of scorpion venom on structure and function of esophageal lower sphincter (LES) and body circular muscle (BCM) from opossum.

In the lower esophageal sphincter (LES) and body circular muscle (BCM) from opossum, nerves appeared to innervate the interstitial cells of Cajal more closely than they innervated smooth muscle cells, and it was postulated that these cells might mediate nonadrenergic, noncholinergic ( NANC ) nerve effects. Tissues were treated with a toxin, selective for structures with Na channels, the venom of the scorpion, Leiurus quinquestriatus, to determine its morphological effects on nerves and other structures and its effect on responses of LES and BCM to NANC nerve stimulation by field stimulation with 0.5- and 5-ms pulses. Relaxations to 5-ms pulses are tetrodotoxin-insensitive and might result from the release of mediators from nerve terminals by a different, Na channel independent mechanism or from activation of a nonneural structure with a longer time constant than nerve. Scorpion venom relaxes the LES temporarily and, like tetrodotoxin, abolished responses of LES and BCM to 0.5-ms pulses of field stimulation, but not responses to 5-ms pulses of field stimulation. When responses to 0.5 ms of field stimulation were first inhibited, some nerve varicosities were damaged. Later nearly all were depleted markedly of synaptic vesicles. Venom did not structurally damage other cells. The venom effects to relax LES and to damage nerves were prevented by tetrodotoxin pretreatment, suggesting that venom released an inhibitory mediator and destroyed synaptic vesicles by acting on Na channels. The finding that interstitial cells of Cajal, which often had gap junction contacts to smooth muscle and close associations with nerves, were resistant to scorpion venom while the nerves that innervate them were not, is consistent with the hypothesis that interstitial cells are intercalated between the nerves and muscles and may mediate tetrodotoxin-insensitive responses to field stimulation.

Animals↗

Isolation and characterization of a novel lepidopteran-selective toxin from the venom of South Indian red scorpion, Mesobuthus tamulus.

BACKGROUND: Scorpion venom contains insect and mammal selective toxins. We investigated the venom of the South Indian red scorpion, Mesobuthus tamulus for the purpose of identifying potent insecticidal peptide toxins. RESULTS: A lepidopteran-selective toxin (Buthus tamulus insect toxin; ButaIT) has been isolated from this venom. The primary structure analysis reveals that it is a single polypeptide composed of 37 amino acids cross-linked by four disulfide bridges with high sequence homology to other short toxins such as Peptide I, neurotoxin P2, Lqh-8/6, chlorotoxin, insectotoxin I5A, insect toxin 15 and insectotoxin I1. Three dimensional modeling using Swiss automated protein modeling server reveals that this toxin contains a short alpha-helix and three antiparallel beta-strands, similar to other short scorpion toxins. This toxin is selectively active on Heliothis virescens causing flaccid paralysis but was non-toxic to blowfly larvae and mice. CONCLUSION: This is the first report of a Heliothine selective peptide toxin. Identification of diverse insect selective toxins offer advantages in employing these peptides selectively for pest control.

Amino Acid Sequence↗

Molecular mechanism of scorpion neurotoxins acting on sodium channels: insight into their diverse selectivity.

Scorpion toxins that affect sodium channel gating traditionally are divided into alpha- and beta-classes. They show vast diversity in their selectivity for phyletic- or isoform-specific sodium channels. This article discusses the molecular mechanism of the selectivity. Moreover, a phylogenetic tree of scorpion toxins has been constructed, which, together with the worldwide distribution of toxins and the zoogeographic dispersion of the studied genera, offers an insight into the evolution of diverse scorpion toxins.

Amino Acid Sequence↗

Effect of ligation of spleen vessels on left ventricular function and coronary blood flow in dogs injected with scorpion venom.

Scorpion sting may cause myocardial dysfunction in human victims, probably by increased O2 demand and decreased O2 supply. In dog, scorpion venom (SV) causes no myocardial dysfunction. Myocardium is probably protected by "autotransfusion" of blood from the spleen to the circulation, increasing coronary blood flow (CBF) and O2 delivery. We hypothesized that ligation of spleen vessels prior to injection of SV in dogs would prevent the autotransfusion of blood, thereby causing myocardial ischemia due to decreased CBF, simulating the hemodynamic pattern of human envenomation. We studied cardiac output (CO), CBF, left ventricular (LV) O2 delivery and contractility in 11 dogs injected with 0.07 mg/kg of SV (Leiurus quinquestriatus). Ligation of spleen vessels was performed on 6 of the 11 dogs prior to SV injection. 15 min after SV injection CO had increased by 186% in control dogs, while ligation of spleen vessels completely prevented CO elevation (p<0.001). In both groups, however, LV dp/dt increased by 400% and dp/dt/p by 170% (p<0.001). CBF increased by 350% and 550% in the spleen and control groups (p<0.001) respectively. This was associated with elevation of diastolic blood pressure and a decrease in coronary vascular resistance. LV O2 delivery increased (p<0.05) in both groups. At 60 minutes there was a decrease in CO, stroke work, and LV end systolic pressure in both groups, while LV contractility remained above baseline. Scorpion venom injection in dogs causes an initial increase in CO by auto-transfusion of blood from the spleen. Prevention of the autotransfusion does not preclude increases in CBF, O2 delivery and LV contractility.

Animals↗

Standardization of an enzyme linked immunosorbent assay (ELISA) for detecting circulating toxic venom antigens in patients stung by the scorpion Tityus serrulatus.

The sensitivity and specificity of an enzyme-linked immunosorbent assay (ELISA) for the detection of circulating antigens from toxic components of Tityus serrulatus scorpion venom was determined in patients stung by T. serrulatus before antivenom administration. Thirty-seven patients were classified as mild cases and 19 as moderate or severe cases. The control absorbance in the venom assay was provided by serum samples from 100 individuals of same socioeconomic group and geographical area who had never been stung by scorpions or treated with horse antisera. The negative cutoff value (mean + 2 SD) corresponded to a venom concentration of 4.8 ng/ml. Three out of the 100 normal sera were positive, resulting in a specificity of 97%. The sensitivity of the ELISA when all cases of scorpion sting were included was 39.3%. When mild cases were excluded, the sensitivity increased to 94.7%. This study showed that this ELISA can be used for the detection of circulating venom toxic antigens in patients with systemic manifestations following. T. serrulatus sting but cannot be used for clinical studies in mild cases of envenoming since the test does not discriminate mild cases from control patients.

Adolescent↗

Age effects on the pharmacokinetics of tityustoxin from Tityus serrulatus scorpion venom in rats.

The pharmacokinetics of scorpion venom and its toxins has been investigated in experimental models using adult animals, although, severe scorpion accidents are associated more frequently with children. We compared the effect of age on the pharmacokinetics of tityustoxin, one of the most active principles of Tityus serrulatus venom, in young male/female rats (21-22 days old, N=5-8) and in adult male rats (150-160 days old, N=5-8). Tityustoxin (6 microg) labeled with 99mTechnetium was administered subcutaneously to young and adult rats. The plasma concentration vs time data were subjected to non-compartmental pharmacokinetic analysis to obtain estimates of various pharmacokinetic parameters such as total body clearance (CL/F), distribution volume (Vd/F), area under the curve (AUC), and mean residence time. The data were analyzed with and without considering body weight. The data without correction for body weight showed a higher Cmax (62.30 +/- 7.07 vs 12.71 +/- 2.11 ng/ml, P<0.05) and AUC (296.49 +/- 21.09 vs 55.96 +/- 5.41 ng h(-1) ml(-1), P<0.05) and lower Tmax (0.64 +/- 0.19 vs 2.44 +/- 0.49 h, P<0.05) in young rats. Furthermore, Vd/F (0.15 vs 0.42 l/kg) and CL/F (0.02 +/- 0.001 vs 0.11 +/- 0.01 l h(-1) kg(-1), P<0.05) were lower in young rats. However, when the data were reanalyzed taking body weight into consideration, the Cmax (40.43 +/- 3.25 vs 78.21 +/- 11.23 ng kg(-1) ml(-1), P<0.05) and AUC (182.27 +/- 11.74 vs 344.62 +/- 32.11 ng h(-1) ml(-1), P<0.05) were lower in young rats. The clearance (0.03 +/- 0.002 vs 0.02 +/- 0.002 l h(-1) kg(-1), P<0.05) and Vd/F (0.210 vs 0.067 l/kg) were higher in young rats. The raw data (not adjusted for body weight) strongly suggest that age plays a pivotal role in the disposition of tityustoxin. Furthermore, our results also indicate that the differences in the severity of symptoms observed in children and adults after scorpion envenomation can be explained in part by differences in the pharmacokinetics of the toxin.

Age Factors↗

[Hemodynamics and microcirculation in a rat poisoned by scorpion venom]].

The clinic table of serious scorpionic envenimation is dominated by cardiovascular and pulmonary perturbations. The physiopathology of cardiac failure in man as well as at animal is again badly elucidated. The aim of our study has consisted in evaluating the hemodynamic variations of the Rat poisoned by the venom of the Buthus occitanus scorpion and to contribute through the analyse of plasmatic concentrations of catecholamines and by an histomorphometric study of muscular microcirculation to explain the mechanism of the hemodynamic perturbations and cardiac failure. 51 rats corresponding to 9 groups (witness and poisoned) have been used. The venom of the scorpion Buthus occitanus has been administrated at 850 micrograms/kg. Two groups have been served for hemodynamic study, three groups for the dosage of catecholamines and four groups for histomorphometric study. It has been observed a biphasic variation of arterial pressure and cardiac frequency after venom injection. Four minutes after envenimation, the plasmatic level of catecholamines was strongly higher in the poisoned according to the witness one. Histomorphometric study of muscular skeletal microcirculation has shown a decrease of relative vascular volume contemporary with the increase of plasmatic catecholamines concentration and the peak of arteriel pressure appeared just after envenimation. 10 and 20 minutes after envenimation, the relative vascular volume has significantly increased as well as that interstitium according to witness lot. These hemodynamic perturbations can be attributed to the important dump in catecholamines. This hyperadrenergy was contemporary with decrease of relative muscular vascular volume. This decrease would be explained by a constriction of vessels. On the other hand, the second increase of the vascular relative volume suggests the possibility of development of venous stasis at the muscular microcirculation. It would be induced by a cardiac failure and/or the effect of vasoplegic mediators being able to entail an interstitial oedema in the muscular skeletal that would led to increase the relative interstitial volume observed in this study.

Animals↗

[Amino acid changes following intraperitoneal administration of Tityus zulianus scorpion venom in mice. Study with subcutaneous microdialysis and capillary electrophoresis].

Scorpion human envenoming is a public health hazard in the southwest of Venezuela. Tityus zulianus is one of the scorpion species whose venom causes lung edema and cardiac failure in children. These occasionally deadly manifestations have been attributed to a massive sympathetic discharge. The intraperitoneal administration of T. zulianus venom (20 micrograms/g mouse) to anesthetized mice during subcutaneous microdialysis caused increased secretions, dyspnea, seizures and death between 30 min to 2 h. Seven amino acids were analyzed by capillary electrophoresis with laser induced fluorescence detection (CE-LIFD) in the collected samples before and after the venom administration. We found an increase of arginine (39%), phenylalanine (40%) and glutamate (94%), with no changes in valine, serine and aspartate, changes were significant when the injection of venom and vehicle were compared and before vs after venom injection. Further investigation is needed to know if the observed changes could be related to the molecular mechanisms of the venom or some of its components and therefore with the envenoming symptoms. To our knowledge, this is the first report with subcutaneous microdialysis and CE-LIFD coupling in scorpion envenomation studies in vivo, in mice.

Amino Acids↗

[Toxicological and immunological aspects of scorpion venom (Tytius pachyurus): neutralizing capacity of antivenoms produced in Latin America].

The toxicity and immunochemical properties of Tityus pachyurus Pocock scorpion venom was characterized, as well as the neutralization capacity against it by three anti-scorpion antivenoms (Alacramyn, Instituto Bioclón, México; Suero antiescorpiónico, Instituto Butantán, Sao Paulo, Brasil; and Suero antiescorpiónico, Centro de Biotecnología, Universidad Central de Venezuela, Caracas, Venezuela). The venom yield, obtained by manual milking, 680+/-20 microg venom, a 50% lethal dose in mice was 4.8 microg/kg (90 microg for an 18-20 g mouse). The most common symptoms of venom poisoning in mice were sialorrhea, respiratory distress, profuse sweating, ataxia, behavior alterations (restlessness, somnolence) and hyperglycemia at 3 and 24 hours after subcutaneous venom injection (0.5 LD50). The neutralizing capacity of Bioclón (México City) and Butantán (Sao Paulo) antivenoms (for a 50% effective dose) was 330 and 292 microg venom/ml antivenom, respectively. The Biotecnología (Caracas) antivenom did not neutralize the lethal effect of venom. By electrophoresis (SDS-PAGE) was demonstrated that the venom contains proteins from less than 14 kd to 97 kd. The Western blots indicated immunological reactivity of the three antivenoms with most of venom components, including proteins of low molecular mass (<14 kd). The results allow to conclude that T. pachyurus venom is neutralized efficiently by anti-scorpion antivenoms produced in México and Brasil.

Animals↗

Rates of molecular evolution in nuclear genes of east Mediterranean scorpions.

Scorpions of the genus Mesobuthus represent a useful terrestrial model system for studying molecular evolution. They are distributed on several Aegean islands and the adjacent mainland, they are believed to have low rates of dispersal, and evolutionary divergence dates of taxa are available based on biogeographic events that separated islands from each other and the mainland. Here, we present data on polymorphism and synonymous (Ks) and non-synonymous (Ka) substitution rates for nine nuclear protein-coding genes of two east Mediterranean scorpion species, Mesobuthus gibbosus and M. cyprius (Buthidae). Levels of polymorphism tend to be lower in populations from islands (mean nucleotide diversity pi = 0.0071 +/- 0.0028) than in mainland populations (mean pi = 0.0201 +/- 0.0085). By using linear regression of genetic divergence versus isolation time, we estimate Ks to be 3.17 +/- 1.54 per (site x 10(9) years), and Ka to be 0.39 +/- 0.94 per (site x 10(9) years). These estimates for both Ks and Ka are considerably lower than for many other invertebrates, such as Drosophila, and may be attributed to scorpions' mammal-like generation times (approximately 2 years) and low metabolic rates. Phylogenetic analysis using maximum likelihood revealed a phylogeny that is congruent with that expected based on biogeographic events and in which divergences at synonymous sites are proportional to the dates that the taxa are believed to have split. Tests of equality of branch lengths for the Cyprus and Crete lineages revealed that Ks-estimates are about the same in both lineages, as expected from the biogeographic events that separated the islands, but Ka was increased in the Cyprus lineage compared to the Cretan lineage.

Animals↗

Insulin administration reverses the metabolic and electrocardiographic changes in acute myocarditis induced by Indian red scorpion (Buthus tamulus) venom in experimental dogs.

Acute myocarditis was produced by injection of 4 mg/kg Indian red scorpion (Buthus tamulus) venom in dogs. Several rhythm changes, conduction defects, infarction-like pattern and many other ECG abnormalities; hyperglycemia, reduced insulin secretion, rise in free fatty acids along with fall in triglycerides; depletion of glycogen content of atria, ventricles, liver and skeletal muscles was noticed within 20-30 minutes after scorpion envenomation. Ten units of crystalline insulin was given i.v. at this time. All the arrhythmias, conduction defects and other ECG abnormalities disappeared after intervention with insulin. The sinus rhythm persisted for a duration of 120 minutes till the animals were sacrificed. Reduction in free fatty acids along with a rise in triglycerides; glycogenesis in liver, cardiac and skeletal muscles was observed at the time when ECG tracing was normal. It is suggested that catecholamines released during autonomic storm in scorpion poisoning suppress insulin secretion. These in turn result in glycogenolysis; lipolysis resulting in increased free fatty acids and produce arrhythmias. Insulin administration results in glycogenesis; lipogenesis and stops arrhythmias.

Acute Disease↗

Purification and chemical and biological characterizations of seven toxins from the Mexican scorpion, Centruroides suffusus suffusus.

Seven polypeptides highly toxic to mice were isolated from the venom of the scorpion, Centruroides suffusus suffusus (Css), and their chemical and toxic properties were characterized. It was shown that the most active toxins by intracerebroventricular injection are less active when injected subcutaneously. The complete amino acid sequence (66 residues) of toxin II (Css II) has been determined. The C-terminal end is amidated as found for most other scorpion toxins. Css II is a beta-type toxin, previously used to define the binding site for activation of the sodium channel. Using rat brain synaptosomes, we demonstrated that all Css toxins compete with 125I-Css II to bind to site 4 and should be considered as beta-scorpion toxins. Specific binding parameters for Css VI, one of the most active toxins, were determined: KD = 100 pM; capacity in binding sites, 2.2 pmol of toxin/mg of synaptosomal protein. Css VI was shown to inhibit gamma-aminobutyric acid uptake by synaptosomes: K 0.5 = 100 pM, which agrees with its KD. Competition experiments between the seven Css toxins and 125I-Css II for antiserum raised against Css II demonstrated that all these toxins have common antigenic properties.

Amino Acid Sequence↗

Immunological cross reactivity & paraspecificity of the scorpion Heterometrus bengalensis antivenom.

Immunological cross-reactivity and paraspecificity of scorpion H. bengalensis antivenom were studied to find out the intergeneric therapeutic relationship between the venom of other scorpions in West Bengal Buthus tamulus, Lychas laevifrons and Heterometrus swammerdami. Of these scorpions, Buthus tamulus and Lychas laevifrons failed to show any cross reactivity. However, H. swammerdami venom showed cross-reactivity with H. bengalensis antiserum as revealed from immunogeldiffusion and immunoelectrophoresis. This antiserum protected H. swammerdami venom-induced lethality in mice, blocked the contractile response in smooth muscles and antagonised the venom-induced neuromuscular blockade in rat phrenic nerve diaphragm and chick biventer cervicis.

Animals↗