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Biomedical subjects

A Bdolah

Publications and source records attributed to A Bdolah.

At least 55 records · Page 3Linked to original sources

Comparison of venoms from two subspecies of the false horned viper (Pseudocerastes persicus).

Gel-isoelectric focusing of Pseudocerastes persicus fieldi venom shows a simple pattern with very few protein bands, while the venom of P. p. persicus reveals close to 30 protein bands. Molecular sieve chromatography of P. p. persicus venom shows a typical elution profile of a viperid snake, with hemorrhagic activity and L-amino acid oxidase activity confined to the high molecular weight peak of proteins. In the venom of P. p. fieldi, which has no hemorrhagin or L-amino acid oxidase, the high molecular weight fraction of proteins is practically missing.

Animals↗

Lethal factors and enzymes in the secretion from Duvernoy's gland of three colubrid snakes.

Secretion from Duvernoy's gland of the colubrid snakes Malpolon, Spalerosophis, and Thamnophis was obtained by pilocarpine stimulation and tested for lethality and selected enzymatic activities. Pools of secretion from Malpolon and Spalerosophis were fractionated by gel filtration, and several major active fractions were examined. The secretion from Malpolon had an LD50 of 6.5 micrograms/gm in mice; two lethal fractions with LD50's of 2.75 micrograms/gm and 4.5 micrograms/gm were isolated. One of these fractions appears to be a basic phospholipase A with a molecular weight of about 17,000. Spalerosophis had a secretion with an LD50 of 2.75 micrograms/gm in mice; one main lethal fraction with an LD50 of 2.5 micrograms/gm was isolated. Secretion from Thamnophis had an LD50 of 33.3 micrograms/gm; it was not fractionated owing to a paucity of material. At least two of the snake species examined have toxic secretions that may be important during feeding by killing or weakening and helping to subdue the struggling prey.

Animals↗

The neurotoxic complex from the venom of Pseudocerastes fieldi. Contribution of the nontoxic subunit.

The neurotoxic complex (Cb) from the venom of Pseudocerastes fieldi consists of an acidic non-toxic subunit (CbI) and a basic toxic one (CbII). The complex is only partially dissociated by salt-gradient chromatography; the two components are completely separable in the presence of urea. Chromatofocusing of CbI resulted in two protein peaks, both of which potentiated toxicity of CbII. CbI inhibits hemolysis induced by CbII, but not the phospholipase A2 activity of CbII. CbI reveals phospholipase A activity with non-micellar dithiolecithin, however, it shows no activity with micellar lecithin. The amino acid composition of CbI and its enzymatic activity, as well as the structural homology with A2 phospholipases of nontoxic subunits from other presynaptic neurotoxins may suggest that, a catalytic activity of the non-toxic subunits plays a role at the target site.

Amino Acids↗

Mode of neuromuscular blocking action of a toxic phospholipase A2 from Pseudocerastes fieldi (Field's horned viper) snake venom.

The effects of a toxic phospholipase A2 (Fr.Cb) isolated from the venom of Pseudocerastes fieldi were studied on the chick biventer cervicis muscle and the mouse phrenic nerve--diaphragm preparations. In the chick muscle, Fr.Cb (10 micrograms/ml) caused complete neuromuscular blockade without producing contracture or affecting the response of the muscle to acetylcholine. In the mouse diaphragm, Fr.Cb blocked the indirectly elicited contraction without affecting that evoked directly. In a low calcium medium (0.5 mM), Fr.Cb produced a triphasic change of the indirectly elicited contractions. The frequency of miniature endplate potentials (m.e.p.p.s) in the mouse diaphragm was first increased 3--4 fold 40 min after toxin (10 micrograms/ml) application, then gradually decreased, while the amplitude of m.e.p.p.s. was not decreased, even after the evoked release of transmitter had failed. Giant m.e.p.p.s were frequently observed. The quantal content first increased and then decreased gradually. The resting membrane potential and the compound phrenic nerve action potential were not significantly affected by the toxin at 10 micrograms/ml after 2 hr of incubation. The motor nerve terminals in the Fr.Cb intoxicated mouse diaphragm showed swelling and vacuolization of both synaptic vesicles and mitochondria. It is concluded that the toxin produces a neuromuscular blockade by acting selectively on the presynaptic site.

Animals↗

Isolation and characterization of the main toxic fraction from the venom of the false horned viper (Pseudocerastes fieldi).

The venom of Pseudocerastes fieldi was subjected to gel filtration on Sephadex G-75. Most of the protein and lethality of the venom were eluted in a major symmetrical peak (C). The lethality of this peak is confined to a basic protein fraction, Cb (pI greater than 9.5) separable by DEAE-cellulose chromatography. Two proteins with molecular sizes close to 16,000 daltons were isolated from this fraction by preparative acidic gel electrophoresis in the presence of Triton X-100. One of the proteins (CbII) is lethal to mice (LD50 = 1 mg/kg) and shows phospholipase A activity as well as direct hemolytic activity. The other protein (CbI) does not reveal any known biological activity. However, upon recombination of the two a synergistic lethal activity is evident (the LD50 of the mixture = 0.25 mg/kg). It is suggested that CbI may be a specifier which potentiates the toxicity of the phospholipase A at the target site.

Animals↗

Asynchrony in the synthesis of secretory proteins in the venom gland of the snake Vipera palaestinae.

1. Venom of Vipera palastinae was subjected to isoelectrofocusing on polyacrylamide gel. The protein separation profiles were similar for different venom samples; more than 25 protein bands with a wide range of pI values could be demonstrated by this technique. 2. Labelled venom was obtained 8h after an intracardial injection of [3H]leucine. The relative radioactivities of four out of 12 main protein bands were significantly different in the venom synthesized during the 2nd day of the venom regeneration cycle as compared with the venom of the 4th day. The comparison was made in venom samples obtained from the two glands of the same snake at two different secretory stages. 3. It is concluded that the asynchronous synthesis of exportable proteins after the initiation of a new venom regeneration cycle is responsible for the non-parallel secretion of some venom proteins by the venom gland of Vipera palaestinae during the first few days after milking.

Animals↗

Intracellular transport of proteins in active and resting secretory cells of the venom gland of Vipera palaestinae.

The intracellular transport of venom proteins has been studied in active and resting venom glands of the snake Vipera palaestinae by electron microscope radioautography after an intra-arterial injection of [3H]leucine. In the active gland, most of the label is initially (10 min) found over the RER. By 30 min, the relative grain density of the Golgi complex reaches its maximum, with concomitant increase in the labeling of the condensing vacuoles. Later on, a steep increase in radioactivity of the secretory granules is observed. At 3 h, these granules, which comprise about 2% of the cell volume, contain 22% of the total grains. At the following hour, their labeling declines and at the same time the radioactivity of the secreted venom is increased. It is concluded that, in the active cell, venom proteins are transported via the Golgi apparatus into membrane-bounded granules which are the immediate source of the secreted venom. An alternative pathway, which involves the RER cisternae as a storage compartment, seems unlikely, since incorporated label does not accumulate in this compartment after prolonged postpulse intervals. The route of intracellular transport of proteins in the resting glands is similar to that of the active ones, but the rate of synthesis and transport is much slower. The present results and earlier data, thus, show that the increase in the rate of secretion after initiation of a new venom regeneration cycle is the result of accelerated rates of both synthesis and transport.

Animals↗

Accumulation of some secretory enzymes in venom glands of Vipera palaestinae.

Secretion of venom in the venom glands of Vipera palaestinae was studied by measuring the protein content and enzymatic activities of L-amino acid oxidase (LAO), phosphodiesterase (PDE), and benzoylarginine ethyl esterase (BAEE). These were tested in the accumulating venom and gland homogenates at 0, 2, 3, 4,6, and 15 days after an intitial emptying of the venom glands by milking. Changes in the total activities of the enzymes and in the protein concentration were found in the venom samples, but not in the homogenates, at the different intervals after milking. In the venom the total activities of LAO, PDE, and BAEE were higher the longer the time intervals from the initial milking. When the data were fit by a straight line, the fluctuations from the line were of opposite signs for LAO and PDE at the 3- and the 4-day intervals. There were no significant correlations between the specific activities or between the changes in the specific activities of any two of the enzymes at any time interval. It is concluded that each of the enzymes is secreted at a rate independent of the other two; this pattern of secretion can best be described as nonparallel.

Amino Acid Oxidoreductases↗

Regulation of protein synthesis in the venom gland of viperid snakes.

Morphological changes in the venom gland of V. ammodytes were studied after the removal of the venom from the gland lumina (milking) It was found that the height of the secretory cells was changed during the secretory cycle. The patterns of the rough endoplasmic reticulum and of the Golgi complex were changed as well Milking induced an increased incorporation of [(14)C]amino acids into total and venom proteins In V ammodytes, during the first day after milking, 25% of the total counts in protein were precipitable by anti-venom serum, while at 8 days, 80% of the proteins synthesized were venom proteins At this stage, the incorporation was 10- and 20-fold that of unmilked glands for total and venom proteins, respectively. Venom was accumulated (secreted) in the gland lumina of V. ammodytes at a relatively high rate up to 2 wk after milking and leveled off afterwards. Intact glands and gland slices of V ammodytes and V palaestinae, taken from snakes a few days after milking, incorporated [(14)C]amino acids into proteins in vitro at a rate higher than that of unmilked glands. The activity of two exportable enzymes (phosphodiesterase and benzoyl arginyl ethyl esterase) was assayed in gland homogenates of V. ammodytes. It was found that 2-3 wk after milking, the intracellular level of these enzymes was up to 2-fold that of unmilked glands.

Amino Acids↗