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[Characterization of the biological activities of the 'yellow' and 'white' venoms from Crotalus durissus ruruima compared with the Crotalus durissus terrificus venom. Neutralizing activity of Crotalus durissus ruruima antivenins].

The biological activities of 'yellow' and 'white' venom of a rattlesnake Crotalus durissus ruruima Hoge, 1965, found in the savanna-like vegetation (cerrado) of northern Brazil (Roraima) and Venezuela have been studied, and compared to the reference Crotalus durissus terrificus venom. The lethal activity of venoms depended on the inoculation route. The most toxic venom was the white one. The venoms of C. d. terrificus and the yellow of C. d. ruruima had similar lethalities. The yellow venom of C. d. ruruima showed a caseinolytic activity three times higher than that obtained with either the venom of C. d. terrificus or the white one of the C. d. ruruima. Hemorrhagic and necrotic activities were found only in the yellow venom. White and yellow venoms from C. d. ruruima showed a similar action on fibrinogen; this thrombin-like action was greater with C. d. terrificus venom. On histopathological sections local and pulmonary hemorrhage was found only with the yellow venom, but myonecrotic activity was observed with both venoms of C. d. ruruima. Among all antivenoms studied, the anti-bothropic-crotalic was the best at neutralizing hemorrhagic and hemolytic activities. These results suggest that antivenom bothropic-crotalic should be used in the treatment of patients with snakebite by C. d. ruruima: besides its neutralization on lethal activity, it also neutralizes the hemorrhagic activity present in some venoms.

Animals

Regional differences in content of small basic peptide toxins in the venoms of Crotalus adamanteus and Crotalus horridus.

1. Reverse-phase HPLC and organic solvents were used to isolate small basic peptide (SBP) toxins from the venoms of Crotalus adamanteus, C. durissus terrificus, C. horridus, C. scutulatus scutulatus, C. viridis concolor, C. viridis helleri and C. viridis viridis. 2. Acid-DEP analyses indicated a high degree of toxin purity which was obtained with a single HPLC run. 3. The combined results of HPLC, immunodiffusion and electrophoresis analyses of venoms from different geographical regions indicate that the SBP toxin content in the venoms of Crotalus adamanteus, Crotalus horridus, Crotalus scutulatus and Crotalus viridis viridis may vary regionally.

Animals

Biochemical and pharmacological similarities between the venoms of newborn Crotalus durissus durissus and adult Crotalus durissus terrificus rattlesnakes.

A comparative study was performed with the venoms of newborn Crotalus durissus durissus, adult Crotalus durissus terrificus and adult Crotalus durissus durissus snakes. Venom of newborn specimens of C.d. durissus is very similar to that of adult specimens of C.d. terrificus, since they have strong lethal and myotoxic activities, and weak proteolytic, hemorrhagic and edema-forming effects, in contrast to venom of adult specimens of C.d. durissus. In addition, the two former venoms have high amounts of the neurotoxic complex crotoxin, whereas venom from adult C.d. durissus has a low concentration of crotoxin. Electrophoretic analysis corroborates the strong similarities between the former two venoms. It is concluded that venom of newborn C.d. durissus contains high concentrations of crotoxin and low amounts of hemorrhagic and proteolytic components, and that a drastic ontogenetic change takes place in the venom composition of this subspecies.

Animals

Classification of myonecrosis induced by snake venoms: venoms from the prairie rattlesnake (Crotalus viridis viridis), western diamondback rattlesnake (Crotalus atrox) and the Indian cobra (Naja naja naja).

The pathogenesis of myonecrosis induced by three different snake venoms was studied by light microscopic examination of skeletal muscle tissue taken at time periods ranging from 0.25 hr to 4 weeks after an intramuscular injection of the venom into mice. It was possible to identify different types of myonecrosis based on the abnormal morphologic states of the damaged cells. The types of myonecrosis observed correlated with the types of components present in the venom injected. Venoms containing direct acting toxins such as myotoxin a or phospholipase A2 induced specific types of myonecrosis. Also, venoms containing hemorrhagic toxins produced a type of myonecrosis similar to that induced by pure hemorrhagic toxins. The pathogenesis of each type of myonecrosis could be divided into the same four phases based on the pathologic states of the affected cells and the time after injection. During the 'early phase' (0.25-3 hr) affected muscle cells were in several different pathologic states reflecting the types of components present in the venom injected. During the 'intermediate phase' (6-24 hr) the pathologic state of the damaged cells had changed and depending on the venom new states might be present. By the 'late phase' (48-96 hr) all damaged cells have reached a common pathologic state of necrosis. The 'final phase' (1-4 weeks) is characterized by regeneration (partial or complete) of muscle cells. Although the number of different types of myonecrosis depended on the type of venom injected, i.e. Naja naja naja venom produced only two different types whereas Crotalus atrox venom produced at least four different types, cells of each tpe of myonecrosis progressed through the same four phases. In studies of the myotoxicity of snake venoms it is important to examine tissues taken during the early and intermediate phases to obtain accurate and useful information on the types of myonecrosis caused by the venom.

Animals

Venom characteristics as an indicator of hybridization between Crotalus viridis viridis and Crotalus scutulatus scutulatus in New Mexico.

One hundred and thirteen venoms from 46 populations of Crotalus viridis viridis were screened by immunodiffusion for protein toxins antigenically similar to the phospholipase A2 (PLA) toxin 'Mojave toxin', using a polyclonal antibody to it's basic PLA subunit. Venom i.p. LD50 values in mice were recorded from 22 of the 46 populations. The venoms of three of 14 specimens from southwest (S.W.) New Mexico and one specimen from northern Arizona were immunologically positive by the immunodiffusion tests and produced low LD50 values (0.38-0.65 mg/kg) compared to all immunologically negative venoms (0.9-5.5 mg/kg). These four specimens were morphologically typical for C. v. viridis and their venoms were the only samples of 15 southern New Mexico specimens examined by reverse phase HPLC to exhibit peaks corresponding to the acidic and basic subunits of Mojave toxin. Alkaline polyacrylamide gel electrophoresis (PAGE) analysis of the recombined subunit peaks from the C.v. viridis venom from the S.W. New Mexico specimens showed more similarity to Mojave toxin from C.s. scutulatus venom than to similar toxins in C.v. concolor venom. The combined results of the immunodiffusion, lethal toxicity tests, HPLC profiles and PAGE analysis strongly suggest that the venoms of the three New Mexico specimens contain Mojave toxin(s), as a result of some previous hybridization with C.s. scutulatus. The northern Arizona specimen likely contains 'concolor toxin' through integration with C.v. concolor in its' genetic background.

Animals

Comparative enzymatic study of HPLC-fractionated Crotalus venoms.

1. Ten venoms of the genus Crotalus (Crotalus adamanteus, Crotalus atrox, Crotalus durissus durissus, Crotalus horridus horridus, Crotalus lepidus, Crotalus polystictus, Crotalus molossus molossus, Crotalus pusillus, Crotalus scutulatus scutulatus, venom B, and Crotalus viridis lutosus) were fractionated using HPLC anion and cation exchange chromatography. 2. HPLC venom fractions were tested for hemorrhagic, hemolytic, and proteolytic activities. 3. Crude Virginia opossum (Didelphis virginiana) serum neutralized the hemorrhagic activity of HPLC fractions.

Animals

Haemorrhagic activity of neotropical rattlesnake (Crotalus vegrandis Klauber, 1941) venom.

In this work we have demonstrated for the first time in any Venezuelan Crotalus, haemorrhagic activities that are present in the Neotropical Uracoan rattlesnake (Crotalus vegrandis) venom. This venom has been little studied, perhaps because the snake is restricted to a small habitat located in the dry savannahs of northeastern Venezuela. In our experiments Crotalus vegrandis venom caused a very evident haemorrhagic area consisting of approximately 2/3 diameter of the area caused by a positive control Bothrops lanceolatus venom. Crotalus vegrandis venom affects blood coagulation and causes intense haemorrhages. It does not clot fibrinogen, therefore it has neither thrombin-like activity which transforms fibrinogen to fibrin nor procoagulant enzymatic function which produces thrombin. On the other hand, it degrades fibrinogen making it incoagulable to thrombin. The venom, when injected in the animals, resulted in a high increase of the Partial Time of Thromboplastin (PTT) tests. It is interesting to observe that the haemorrhagic capacity in the Crotalus genus (widely distributed in the American continent) increases from south to the north, being present in North American Crotalus, a venom with wide haemorrhagic activities, and almost non-existent in most of the South American Crotalus species and subspecies.

Animals

Isolation, characterization and crystallization of a phospholipase A2 myotoxin from the venom of the prairie rattlesnake (Crotalus viridis viridis).

A myotoxin with phospholipase A2 (PLA2) activity was isolated from the venom of the prairie rattlesnake (Crotalus viridis viridis, CVV) by cation-exchange chromatography. The toxin contains 123 amino acids and has an estimated mol. wt of 14,000. It is basic, with a pI above 9. Comparison of the N-terminal 33 residues of this myotoxin with other PLA2 proteins from snake venoms showed that CVV myotoxin has highest homology (91%) to one isoform of the B component of crotoxin from Crotalus durissus terrificus venom, and less homology (73-75%) to mojave toxin from Crotalus scutulatus scutulatus venom and agkistrotoxin from Agkistrodon halys Pallas venom. It has the least homology (40-43%) to PLA2s from venom of two other snakes in the Crotalus genus which are neither neurotoxic nor myotoxic. CVV myotoxin induces the type of myonecrosis typical of snake venom myotoxins with the PLA2 structure, i.e. rapid disruption of the plasma membrane as indicated by the presence of delta lesions, hypercontraction and clumping of the myofilaments, and necrosis of affected skeletal muscle cells. Inhibition of the phospholipase activity of the toxin with p-bromophenacyl bromide inhibits the myotoxic activity, indicating that for some myotoxins with the PLA2 structure, the catalytic activity is important for myotoxic activity. This is the first report of the isolation of a non-neurotoxic, single-chain PLA2 myotoxin from the venom of a snake from the Crotalus genus.

Amino Acid Sequence

Liver dysfunction in patients bitten by Crotalus Durissus terrificus (Laurenti, 1768) snakes in Botucatu (State of São Paulo, Brazil).

Thirty-two patients bitten by venomous snakes sixteen by Bothrops spp. and sixteen by Crotalus durissus terrificus were studied. The group comprised thirty males and two females, aged eight to sixty-three years (mean 33 +/- 15). Bromsulphalein tests were increased in the majority of patients bitten by Crotalus durissus terrificus. The correlation coefficient of Spearman was positive between bromsulphalein tests and alanine aminotransferase levels, and between alanine aminotransferase and aspartate aminotransferase levels only in the Crotalus group. The only patient who died was bitten by Crotalus durissus terrificus and showed hydropic degeneration and mitochondrial injury in the liver. It was concluded that the hepatic damage might have been caused by at least two possible mechanisms: venom effect on liver mitochondria and cytokine effects on hepatocyte, specially interleukin-6.

Adolescent

[Hemorrhagic and edema-forming activity and histologic changes in the mouse footpad induced by venoms from Argentinian Bothrops and Crotalus genuses].

Hemorrhagic, oedema-forming activities and histopathological alterations in the mouse footpad induced by Bothrops and Crotalus snake venoms from Argentina. Hemorrhagic and oedema-forming activities of various Bothrops and Crotalus snake venoms from Argentina were studied, together with histological alterations in the mouse footpad. The highest oedema-forming activity was found in the venom of B. jararaca, followed by B. jararacussu, B. neuwiedii diporus, B. alternatus, and Crotalus durissus terrificus. Regarding hemorrhage, the highest activity was found in the venom of B. neuwiedii diporus, followed by B. jararacussu, B. alternatus, and B. jararaca. No hemorrhage was observed after injection of Crotalus durissus terrificus venom, in agreement with histological observations of injected footpads. Histological analysis revealed a conspicuous inflammatory reaction in the injected footpad, characterized by oedema and an inflammatory infiltrate rich in polymorphonuclear leucocytes. Necrotic blood vessels and dilated lymphatic vessels were observed after injection of B. jararaca and B. jararacussu venoms, and myonecrosis was evident in tissue of mice injected with B. alternatus and B. neuwiedii diporus.

Animals

Neurotoxic and myotoxic effects of crotalus phospholipase A and its complex with crotapotin.

1. The acidic peptide crotapotin potentiated the toxicity of the basic crotalus phospholipase A in all species tested. The order of sensitivity to the lethal action of the phospholipase was: chick greater than mouse larger than or equal to rabbit greater than rat. After a latency period of a least 20 min the animals died of respiratory paralysis. Rabbits survived for more than 10 h, if they were artificially respired. The animals recovered very slowly from respiratory depression. 2. In rabbits even high doses of the basic crotalus phospholipase A or its complex with crotapotin did not affect the respiratory center nor its reactivity to asphyxia. Conduction of action potentials in the phrenic nerve was not changed. 3. Phospholipase-crotapotin complexes decreased the contractile response of isolated phrenic-hemidiaphragms of rats to direct and indirect stimulation in an irreversible manner. A latency period 20-100 min preceded the paralysis. 4. A similar block of neuromuscular transmission developed in vivo. After i. v. injection of PC-complexes the contractile response of isolated rat phrenic diaphragms to nerve stimulation was considerably lower than to direct stimulation. 5. Crotalus phospholipase A alone as well as its complex with crotapotin reduced the contractions of the isolated chick biventer cervicis muscle but did not cause a contracture, thus indicating that the phospholiphase PC-complexes act not as depolarizing blockers. 6. Blood pressure, heart rate and electrocardiogram were not substantially altered, when phospholipase A or PC-complex were injected slowly i.v. into rabbits or rats. No cardiotoxic effect was observed in the Langendorff preparation of rat hearts perfused with phospholipase A alone (6 x 10(-6) M) or together with crotapotin (10(-5) M). Rapid i.v. injection of the venom produced hypotension. The degree of haemolysis correlated with the enzymatic activity, and was low for the highly toxic PC-complexes.

Action Potentials

Several isoforms of crotoxin are present in individual venoms from the South American rattlesnake Crotalus durissus terrificus.

Crotalus durissus terrificus venoms collected either from individual snakes or from a large number of animals (more than 30) have been fractionated by high performance liquid chromatography on gel-filtration and ion exchange columns. The chromatographic patterns obtained with individual venom samples indicated that each Crotalus durissus terrificus snake synthesizes five to ten different crotoxin isoforms in widely variable relative proportions. Furthermore, the heterogeneity of venom samples collected from a large number of snakes did not appear significantly larger than that observed with venoms obtained from individual snakes. The comparison of the chromatographic patterns that we obtained with the various (individual and pooled) venoms allowed us to identify about 15 crotoxin isoforms, which may result from the expression of isogenes, since two amino acid variants have been reported to occur at several positions in the sequence of crotoxin component B. These observations confirm the existence of numerous molecular isoforms of crotoxin and suggest that an individual Crotalus durissus terrificus snake possesses several genes coding for the various crotoxin isoforms. The heterogeneity of venom samples collected from a large number of animals is explained, in a large measure, by the complexity of the venom obtained from the individual snakes.

Animals

Gyroxin, a toxin from the venom of Crotalus durissus terrificus, is a thrombin-like enzyme.

We report a simple method for the isolation of gyroxin, a protein from the venom of the South American rattlesnake Crotalus durissus terrificus. The intravenous injection of gyroxin into mice produces temporary episodes characterized by opisthotonos and rotations around the long axis of the animal. We found gyroxin to be a glycoprotein with thrombin-like and esterase activities. Gyroxin loses its ability to produce the gyroxin syndrome, its thrombin-like activity and its esterase activity with heat, dithiothreitol, phenylmethylsulfonyl fluoride or diisopropylfluorophosphate. We also report that three other thrombin-like enzymes, crotalase from the eastern diamondback rattlesnake (Crotalus adamanteus), ancrod from the Malayan pit viper (Agkistrodon rhodostoma) and a thrombin-like enzyme from the Central American rattlesnake (Crotalus durissus durissus), produce the gyroxin syndrome in mice. These enzymes may work by releasing neuroactive peptides from endogenous precursors.

Animals

Intergradation of two different venom populations of the Mojave rattlesnake (Crotalus scutulatus scutulatus) in Arizona.

Two distinct venom populations of Crotalus scutulatus scutulatus exist in Arizona. The venom of one population (venom A) contains the toxin 'Mojave toxin' and is lacking in hemorrhagic and specific proteolytic activities. The other population (venom B) does not contain Mojave toxin but does produce hemorrhagic and proteolytic activities. The venoms of 15 Crotalus scutulatus scutulatus from regions between the venom A and venom B populations in Arizona were examined for the presence of Mojave toxin by immunochemical assay, lethality by mouse i.p. LD50, proteolytic activity and hemorrhagic activity in mice. Venom protein constituents were analyzed using reverse-phase HPLC. Seven venoms contained both the Mojave toxin of venom A and the proteolytic and hemorrhagic activities of venom B. The i.p. LD50 values of the A + B venoms were 0.4-2.6 mg/kg, compared to 0.2-0.5 mg/kg for venom A individuals and 2.1-5.3 mg/kg for the venom B individuals. HPLC illustrated that the A + B venoms exhibited a combined protein profile of venom A and venom B. These data indicate that an intergrade zone exists between the two venom types which arcs around the western and southern regions of the venom B population. Within these regions, three major venom types can occur in Crotalus s. scutulatus.

Animals

Purification and properties of an antivenom factor from the plasma of the South American rattlesnake (Crotalus durissus terrificus).

The lethal toxicity of Crotalus durissus terrificus (Crotalinae, Viperidae) can be attributed mainly to the presence of a neurotoxic protein, crotoxin, which also shows phospholipase A2 activity. It has been previously demonstrated that both lethal and phospholipase A2 activities of crotoxin can be neutralized by an alpha 1-globulin factor that is present in the homologous blood. Crotalus durissus terrificus plasma also renders some degree of protection to mice against the lethal toxicity of heterologous venoms from snakes of the genus Bothrops (Crotalinae, Viperidae), but not of the genus Micrurus (Elapinae, Elapidae). An anti-toxic factor was purified to homogeneity from C.d. terrificus plasma after three chromatographic steps (DEAE-Sephacel anion exchange, CM-Sepharose cation exchange and Pro-RPC reverse phase chromatography); it is named CNF for Crotalus neutralizing factor. The purification process was accompanied by polyacrylamide gel electrophoresis in the presence of SDS and by measurements of phospholipase A2 inhibition. After the first two purification steps, an 86-fold increase of the inhibitory activity of CNF was observed; however, the third step caused an apparent inactivation of the factor. The inactive CNF was shown to correspond to the previously active plasma material and to be homogeneous on electrophoresis, immunoelectrophoresis and partial amino-terminal sequence. The mol. wt of CNF was estimated as 23,600 by SDS-PAGE.

Animals