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1.
Biochimie ; 225: 81-88, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38762000

ABSTRACT

The genus Mixcoatlus is composed of three species: Mixcoatlus barbouri, M. browni, and M. melanurus, of which the venom composition of M. melanurus, the most common species of the three, has only recently been described. However, very little is known about the natural history of M. barbouri and M. browni, and the venom composition of these two species has remained thus far unexplored. In this study we characterize the proteomic profiles and the main biochemical and toxic activities of these two venoms. Proteomic data obtained by shotgun analysis of whole venom identified 12 protein families for M. barbouri, and 13 for M. browni. The latter venom was further characterized by using a quantitative 'venomics' protocol, which revealed that it is mainly composed of 51.1 % phospholipases A2 (PLA2), 25.5 % snake venom serine proteases (SVSP), 4.6 % l-amino oxidases (LAO), and 3.6 % snake venom metalloproteases (SVMP), with lower percentages other six protein families. Both venoms contained homologs of the basic and acidic subunits of crotoxin. However, due to limitations in M. barbouri venom availability, we could only characterize the crotoxin-like protein of M. browni venom, which we have named Mixcoatlutoxin. It exhibited a lethal potency in mice like that described for classical rattlesnake crotoxins. These findings expand knowledge on the distribution of crotoxin-like heterodimeric proteins in viper snake species. Further investigation of the bioactivities of the venom of M. barbouri, on the other hand, remains necessary.

2.
Biochimie ; 202: 226-236, 2022 Nov.
Article in English | MEDLINE | ID: mdl-36057372

ABSTRACT

The most enigmatic group of rattlesnakes is the long-tailed rattlesnake group, consisting of three species: Crotalus ericsmithi, Crotalus lannomi and Crotalus stejnegeri. These species have been the least studied rattlesnakes in all aspects, and no study on the characterization of their venoms has been carried out to date. Our main objective was to investigate the proteomic composition, as well as some of the biochemical and toxic activities of these venoms, and their neutralization by commercial antivenom. The venom proteome of C. ericsmithi mainly contains metalloproteinases (SVMP; 49.3%), phospholipases A2 (PLA2; 26.2%), disintegrins (Dis; 12.6%), and snake venom serine proteases (SVSP; 6.8%), while C. lannomi venom mainly consists of SVMP (47.1%), PLA2 (19.3%), Dis (18.9%), SVSP (6%) and l-amino acid oxidase (LAAO; 2.6%). For these venoms high lethality was recorded in mice, the most potent being that of C. lannomi (LD50 of 0.99 µg/g body weight), followed by C. ericsmithi (1.30 µg/g) and finally C. stejnegeri (1.79 µg/g). The antivenoms Antivipmyn® from SILANES and Fabotherapic polyvalent antiviperin® from BIRMEX neutralized the lethal activity of the three venoms. Although this group of snakes is phylogenetically related to the C. viridis group, no neurotoxic components (crotoxin or crotoxin-like proteins) common in rattlesnakes were found in their venoms. This study expands current knowledge on the venoms of understudied snake species of the Mexican herpetofauna.


Subject(s)
Crotalus , Crotoxin , Animals , Mice , Venoms , Proteomics , Proteome
3.
Biochimie ; 201: 55-62, 2022 Oct.
Article in English | MEDLINE | ID: mdl-35781049

ABSTRACT

Alpha-latrotoxin (ɑLTx) is the component responsible for causing the pathophysiology in patients bitten by spiders from the genus Latrodectus, commonly known as black widow spiders. The current antivenom used to treat these envenomations in Mexico is produced using the venom of thousands of spiders, obtained through electrical stimulation. This work aimed to produce this protein as well as two of its fragments in a bacterial model, to evaluate their use as immunogens to produce neutralizing hyperimmune sera, in rabbits. ɑLTx is a 130 kDa protein which has not yet been obtained in a soluble active form using bacterial models. In the present work, ɑLTx and two of its fragments, ankyrin domain and amino terminal domain (LTxAnk and LTxNT) were produced in bacteria and solubilized from inclusion bodies using N-lauroyl sarcosine. These three proteins were used for hyperimmunization in order to evaluate their potential as immunogens for the production of neutralizing hyperimmune sera against the complete venom of Latrodectus mactans. The hyperimmune sera obtained using the complete ɑLTx as well as the LTxNT, was capable of preventing death of mice envenomated with 3 LD50s of venom, both in preincubation and rescue experiments. Conversely, the serum obtained using the LTxAnk fragment, generated only partial protection and a delay in the time of death, even with a maximum dose of 450 µL. We therefore conclude that the produced proteins show great potential for their use as immunogens and should be further tested in large animals, such as horses.


Subject(s)
Black Widow Spider , Spider Venoms , Animals , Ankyrins , Antivenins/pharmacology , Antivenins/therapeutic use , Horses , Mice , Rabbits
4.
Biochimie ; 192: 111-124, 2022 Jan.
Article in English | MEDLINE | ID: mdl-34656669

ABSTRACT

Intraspecific variation in snake venoms has been widely documented worldwide. However, there are few studies on this subject in Mexico. Venom characterization studies provide important data used to predict clinical syndromes, to evaluate the efficacy of antivenoms and, in some cases, to improve immunogenic mixtures in the production of antivenoms. In the present work, we evaluated the intraspecific venom variation of Crotalus basiliscus, a rattlesnake of medical importance and whose venom is used in the immunization of horses to produce one of the Mexican antivenoms. Our results demonstrate that there is variation in biological and biochemical activities among adult venoms and that there is an ontogenetic change from juvenile to adult venoms. Juvenile venoms were more lethal and had higher percentages of crotamine and crotoxin, while adult venoms had higher percentages of snake venom metalloproteases (SVMPs). Additionally, we documented crotoxin-like PLA2 variation in which specimens from Zacatecas, Sinaloa and Michoacán (except 1) lacked the neurotoxin, while the rest of the venoms had it. Finally, we evaluated the efficacy of three lots of Birmex antivenom and all three were able to neutralize the lethality of four representative venoms but were not able to neutralize crotamine. We also observed significant differences in the LD50 values neutralized per vial among the different lots. Based on these results, we recommend including venoms containing crotamine in the production of antivenom for a better immunogenic mixture and to improve the homogeneity of lots.


Subject(s)
Antivenins/chemistry , Crotalus , Crotoxin/chemistry , Animals , Humans , Mexico , Mice , Species Specificity
5.
Mol Immunol ; 137: 247-255, 2021 09.
Article in English | MEDLINE | ID: mdl-34298407

ABSTRACT

Phage display and directed evolution have made it possible to generate recombinant antibodies in the format of single chain variable fragments (scFvs) capable of neutralizing different toxins and venoms of Mexican scorpions. Despite having managed to neutralize a significant number of venoms, some others have not yet been completely neutralized, due to the diversity of the toxic components present in them. An example is the venom of the scorpion Centruroides limpidus, which contains three toxins of medical importance, called Cll1, Cll2 and Cl13. The first two are neutralized by scFv 10FG2, while Cl13, due to its sequence divergence, was not even recognized. For this reason, the aim of the present work was the generation of a new scFv capable of neutralizing Cl13 toxin and thereby helping to neutralize the whole venom of this scorpion. By hybridoma technology, a monoclonal antibody (mAb B7) was generated, which was able to recognize and partially neutralize Cl13 toxin. From mAb B7, its scFv format was obtained, named scFv B7 and subjected to three cycles of directed evolution. At the end of these processes, scFv 11F which neutralized Cl13 toxin was obtained. This scFv, administered in conjunction with scFv 10FG2, allowed to fully neutralize the whole venom of Centruroides limpidus scorpion.


Subject(s)
Antibodies, Monoclonal/immunology , Recombinant Proteins/immunology , Scorpion Stings/immunology , Scorpion Venoms/immunology , Scorpions/immunology , Single-Chain Antibodies/immunology , Amino Acid Sequence , Animals , Cell Surface Display Techniques/methods , Female , Mexico , Mice , Mice, Inbred BALB C , Neutralization Tests/methods , Sequence Alignment
6.
Toxicon ; 197: 70-78, 2021 Jul 15.
Article in English | MEDLINE | ID: mdl-33894246

ABSTRACT

Crotamine is a paralyzing toxin (MW: ~5 kDa) found in different proportions in some rattlesnake venoms (up to 62%). Mexican pit viper antivenoms have shown low immunoreactivity against crotamine, which is an urgent quality to be improved. The objective of this work was to evaluate the ability of a novel recombinant fusion protein composed of sphingomyelinase D and crotamine, and two whole venoms from Crotalus molossus nigrescens and C. oreganus helleri to produce neutralizing antibodies against crotamine. These immunogens were separately used for immunization procedures in rabbits. Then, we generated three experimental antivenoms to test their cross-reactivity via western-blot against crotamine from 7 species (C. m. nigrescens, C. o. helleri, C. durissus terrificus, C. scutulatus salvini, C. basiliscus, C. culminatus and C. tzabcan). We also performed pre-incubation neutralization experiments in mice to measure the neutralizing potency of each antivenom against crotamine induced hind limb paralysis. Our antivenoms showed broad recognition across crotamine from most of the tested species. Also, neutralization against crotamine paralysis symptom was successfully achieved by our three antivenoms, albeit with different efficiencies. Our results highlight the use of crotamine enriched venoms and our novel recombinant fusion protein as promising immunogens to improve the neutralizing potency against crotamine for the improvement of Mexican antivenoms.


Subject(s)
Crotalid Venoms , Animals , Antivenins/pharmacology , Crotalus , Mexico , Mice , Neutralization Tests , Rabbits , Recombinant Fusion Proteins
7.
Biochimie ; 182: 206-216, 2021 Mar.
Article in English | MEDLINE | ID: mdl-33485932

ABSTRACT

The elapid genus, Micruroides, is considered the sister clade of all New World coral snakes (Genus Micrurus), is monotypic, and is represented by Sonoran Coral Snakes, Micruroides euryxanthus. Coral snakes of the genus Micrurus have been reported to have venoms that are predominantly composed of phospholipases A2 (PLA2) or three finger toxins (3FTx), but the venoms of the genus Micruroides are almost completely unstudied. Here, we present the first description of the venom of M. euryxanthus including identification of some proteins as well as transcriptomic, and biological activity assays. The most abundant components within M. euryxanthus venom are 3FTxs (62.3%) and there was relatively low proportion of PLA2s (14.2%). The venom phenotype supports the hypothesis that the common ancestor of Micrurus and Micruroides had a 3FTx-dominated venom. Within the venom, there were two nearly identical α-neurotoxins (α-Ntx), one of which was designated Eurytoxin, that account for approximately 60% of the venom's lethality to mice. Eurytoxin was cloned, expressed in a soluble and active form, and used to produce rabbit hyperimmune serum. This allowed the analysis of its immunochemical properties, showing them to be different from the recombinant αNTx D.H., present in the venoms of some species of Micrurus. Finally, we observed that the commercial antivenom produced in Mexico for coral snake envenomation is unable to neutralize the lethality from M. euryxanthus venom. This work allowed the classification of Micruroides venom into the 3FTx-predominant group and identified the main components responsible for toxicity to mice.


Subject(s)
Coral Snakes , Elapid Venoms , Phospholipases A2 , Reptilian Proteins , Animals , Coral Snakes/genetics , Coral Snakes/metabolism , Elapid Venoms/biosynthesis , Elapid Venoms/genetics , Phospholipases A2/biosynthesis , Phospholipases A2/genetics , Reptilian Proteins/biosynthesis , Reptilian Proteins/genetics , Species Specificity
8.
J Proteomics ; 225: 103865, 2020 08 15.
Article in English | MEDLINE | ID: mdl-32525083

ABSTRACT

We report a structural and functional venomics characterization of the black-tailed horned pitviper, Mixcoatlus melanurus. The venom phenotype of this small and elusive pitviper endemic to México comprise peptides and proteins of 16 toxin families whose relative abundance mirror those of neurotoxic (type II) venoms described for some species within genera distributed in Central Asia (Gloydius) and the Americas (Sistrurus, Crotalus, Ophryacus, and Bothriechis). A novel ß-neurotoxic heterodimeric PLA2, termed Melanurutoxin was characterized. With a relative abundance of 14.8% of the total M. melanurus venom proteome and a median lethal dose of 0.31 µg/g mouse body weight, Melanurutoxin accounted for 37.8% of the lethality of the whole venom (0.82 µg/g). The low percentage (1.1%) of snake venom metalloproteinases (PIII-SVMPs) and the high content of Melanurutoxin and bradykinin-potentiating peptides (BPP, 16%) found in the type-II venom proteome of M. melanurus correlate with the severe hypotension and neurotoxicity leading to neuromuscular blockade, flaccid paralysis and respiratory arrest observed in ex vivo neuromuscular junction experiments and in vivo experimental murine envenoming. Mexican antivenoms manufactured by Birmex and Bioclon showed low neutralization potency per vial (95 LD50s, Birmex; 114 LD50s, Antivipmyn®), and failed to reverse completely the paralysis and the hypotensive effect induced by the black-tailed horned pitviper, Mixcoatlus melanurus. We suggest that the impaired ability of these antivenoms to neutralize the neurotoxicity of M. melanurus venom may be attributed to the use of immunization mixtures that include venom of taxa, C. basiliscus (Birmex) and C. simus (Antivipmyn®), that contain only small amounts of Melanurutoxin-like ß-neurotoxic heterodimeric PLA2s. BIOLOGICAL SIGNIFICANCE: This study represents the first proteomics and funcional investigations conducted on the venom of the black-tailed horned, Mixcoatlus melanurus, a pitviper species endemic to México. The venom's features unveiled through combination of bottom-up venomics and ex vivo and in vivo functional assays provided complementary evidence pointing to severe hypotension and neurotoxicity leading to neuromuscular blockade, flaccid paralysis and respiratory arrest as the predominant mechanism of murine prey immobilization and death caused by M. melanurus. A novel ß-neurotoxic heterodimeric PLA2, coined Melanurutoxin, was identified as a major contributor to the lethality of the whole venom. Our study also showed the inefficacy of two commercial Mexican antivenoms to reverse competely the paralytic and hypotensive effects induced by M. melanurus venom in the murine model. We hypothesize that the impaired ability of these antivenoms to neutralize the neurotoxicity of M. melanurus venom should be ascribed to the use as immunogens of venoms that contain only small amounts of Melanurutoxin-like ß-neurotoxic heterodimeric PLA2s.


Subject(s)
Crotalinae , Crotoxin , Animals , Antivenins , Crotalus , Mexico , Mice
9.
Toxicon X ; 2: 100007, 2019 Apr.
Article in English | MEDLINE | ID: mdl-32550564

ABSTRACT

Snake venom may vary in composition and toxicity across the geographic distribution of a species. In the case of the three species of the Neotropical rattlesnakes Crotalus simus, C. culminatus and C. tzabcan recent research has revealed that their venoms can contain a neurotoxic component (crotoxin homologs), but is not always the case. In the present work, we detected and quantified crotoxin homologs in venom samples from three species distributed across Mexico, to describe variation at the individual and subspecific levels, using slot blot and ELISA immunoassays. We found that all C. simus individuals analyzed had substantial percentages of crotoxin homologs in their venoms (7.6-44.3%). In contrast, C. culminatus lacked them completely and six of ten individuals of the species C. tzabcan had low percentages (3.0-7.7%). We also found a direct relationship between the lethality of a venom and the percentage of crotoxin homologs it contained, indicating that the quantity of this component influences venom lethality in the rattlesnake C. simus.

10.
Biochimie ; 147: 114-121, 2018 Apr.
Article in English | MEDLINE | ID: mdl-29391193

ABSTRACT

The three-finger toxins (3FTxs) represent an extremely diverse protein family in elapid venoms, where the short chain α-neurotoxins are the most relevant toxin group from the clinical point of view. Essentially, the 3FTxs variability and the low proportions of α-neurotoxins in the venoms of North American coral snakes make it difficult to obtain effective elapid antivenoms against the envenomation symptoms caused mainly by these α-neurotoxins. In this work, thirty 3FTx transcript sequences were obtained from the venom glands of four coral snake species from Mexico (M. diastema, M. laticollaris, M. browni and M. tener). The transcripts were mined using a forward oligonucleotide based on the highly conserved signal peptide from the 3FTxs, and four of these transcripts, named MlatA1, B.D, B.E and D.H, encoded for short-chain α-neurotoxins. Additionally, one isoform of the D.H α-neurotoxin transcript was identified in the venom of M. diastema. The mature α-neurotoxin coded in the D.H transcript was heterologously expressed, and it was found soluble (4.2 mg/l) in the cytoplasm of a bacterial system. The recombinant D.H (rD.H) had an IC50 value of 31.5 ±â€¯4.4 nM on nicotinic acetylcholine receptors of the muscular type expressed in rhabdomyosarcoma cells (TE671). The rDH also had an LD50 of 0.15 mg/kg mice, and it was evaluated as a potential immunogen in New Zealand rabbits. The protective capacity of rabbit sera was tested against two native coral snake α-neurotoxins, and against rD.H. One of the anti-rD.H rabbit sera was able to neutralize the lethality of all three neurotoxins when tested in groups of CD1 mice. This work contributes to the increasing understanding of the high diversity of 3FTxs, and shows that recombinant coral snake α-neurotoxins are promising supplements for hyperimmunization protocols for coral snake antivenom production.


Subject(s)
Coral Snakes/genetics , Elapid Venoms/genetics , Neurotoxins/chemistry , Neurotoxins/genetics , Sequence Analysis , Amino Acid Sequence , Animals , Antibodies, Neutralizing/immunology , Cloning, Molecular , Gene Expression , Neurotoxins/immunology
11.
Toxins (Basel) ; 10(1)2018 01 08.
Article in English | MEDLINE | ID: mdl-29316683

ABSTRACT

Rattlesnake venoms may be classified according to the presence/absence and relative abundance of the neurotoxic phospholipases A 2 s (PLA 2 s), such as Mojave toxin, and snake venom metalloproteinases (SVMPs). In Mexico, studies to determine venom variation in Mojave Rattlesnakes (Crotalus scutulatus scutulatus) are limited and little is known about the biological and proteolytic activities in this species. Tissue (34) and venom (29) samples were obtained from C. s. scutulatus from different locations within their distribution in Mexico. Mojave toxin detection was carried out at the genomic (by PCR) and protein (by ELISA) levels for all tissue and venom samples. Biological activity was tested on representative venoms by measuring LD 50 and hemorrhagic activity. To determine the approximate amount of SVMPs, 15 venoms were separated by RP-HPLC and variation in protein profile and proteolytic activity was evaluated by SDS-PAGE (n = 28) and Hide Powder Azure proteolytic analysis (n = 27). Three types of venom were identified in Mexico which is comparable to the intraspecific venom diversity observed in the Sonoran Desert of Arizona, USA: Venom Type A (∼Type II), with Mojave toxin, highly toxic, lacking hemorrhagic activity, and with scarce proteolytic activity; Type B (∼Type I), without Mojave toxin, less toxic than Type A, highly hemorrhagic and proteolytic; and Type A + B, containing Mojave toxin, as toxic as venom Type A, variable in hemorrhagic activity and with intermediate proteolytic activity. We also detected a positive correlation between SVMP abundance and hemorrhagic and proteolytic activities. Although more sampling is necessary, our results suggest that venoms containing Mojave toxin and venom lacking this toxin are distributed in the northwest and southeast portions of the distribution in Mexico, respectively, while an intergradation in the middle of both zones is present.


Subject(s)
Crotalid Venoms , Animals , Crotalid Venoms/analysis , Crotalid Venoms/genetics , Crotalid Venoms/toxicity , Crotalus , Female , Hemorrhage , Lethal Dose 50 , Male , Metalloproteases/analysis , Mexico , Mice, Inbred ICR , Proteolysis , Reptilian Proteins/analysis
12.
Res Vet Sci ; 111: 55-62, 2017 Apr.
Article in English | MEDLINE | ID: mdl-27987414

ABSTRACT

It is widely known that targeting a variety of antigens to the DEC-205 receptor on dendritic cells (DCs) significantly potentiate immunity. This communication reports the development of a new murine monoclonal antibody (mAb) against the chicken DEC-205, using as immunogen the carbohydrate recognition domain-2 (CRD-2) heterologously expressed. This mAb recognizes a protein band of 250kDa by immunoprecipitation analysis and shows strong cross-reactivity with human and pig DEC-205. Furthermore, the hemagglutinin (HA) of avian influenza H5N2 virus was cloned and expressed using insect cell-baculovirus expression system. We chemically conjugated the anti-chicken DEC-205 antibody with the highly purified HA to direct the antigen to the dendritic cells and evaluate the immune response elicited in vivo by this conjugate. A single dose of chemical conjugate was sufficient to elicit a strong immune response in chickens as early as fourteen days after priming. In addition, the conjugate induced an earlier and higher response compared to unconjugated HA. These results suggest that the strategy described here has potential to be used in the future design and development of successful vaccines against different chicken infectious diseases with direct impact in biotechnology and veterinary fields.


Subject(s)
Antibodies, Monoclonal/immunology , Antigens, CD/immunology , Dendritic Cells/metabolism , Influenza Vaccines/immunology , Influenza in Birds/prevention & control , Lectins, C-Type/immunology , Minor Histocompatibility Antigens/immunology , Receptors, Cell Surface/immunology , Animals , Chickens/immunology , Hemagglutinins , Humans , Influenza A Virus, H5N1 Subtype/immunology , Influenza A Virus, H5N2 Subtype/immunology , Influenza in Birds/metabolism , Swine
13.
Vet Immunol Immunopathol ; 164(3-4): 220-6, 2015 Apr 15.
Article in English | MEDLINE | ID: mdl-25727181

ABSTRACT

The αX I-domain of the horse integrin CD11c was successfully expressed in Escherichia coli, purified, biochemically characterized and used as immunogen to generate murine monoclonal antibodies against horse CD11c, which are not yet commercially available. One monoclonal antibody mAb-1C4 against the αX I-domain, is an IgG2a able to interact with the recombinant I-domain, showing an EC50=2.4ng according to ELISA assays. By western blot with horse PBMCs lysates the mAb-1C4 recognized a protein of 150kDa which corresponds well with the CD11c molecule. Using immunohistochemistry in horse lymph node tissue sections, mAb-1C4 marked cells in situ, some with apparent dendritic morphology. Thus the mAb generated to a recombinant epitope from horse CD11c identified the molecule in intact cells within horse lymphoid tissue. By the labelling intensity, the histological location (paracortical and interfollicular areas) and the apparent morphology of the marked cells, we can say that these are putative horse dendritic cells (DCs). The development of a mAb to horse CD11c provides a new tool to better study the horse DC biology and opens other biotechnological avenues, such as DC targeting-based vaccines.


Subject(s)
Antibodies, Monoclonal/immunology , CD11c Antigen/immunology , CD18 Antigens/immunology , Horses/immunology , Animals , Antibodies, Monoclonal/biosynthesis , CD11c Antigen/chemistry , Humans , Lymph Nodes/immunology , Mice
14.
Toxins (Basel) ; 6(1): 359-70, 2014 Jan 17.
Article in English | MEDLINE | ID: mdl-24445448

ABSTRACT

In this work, we have examined the neuromuscular activity of Micrurus laticollaris (Mexican coral snake) venom (MLV) in vertebrate isolated nerve-muscle preparations. In chick biventer cervicis preparations, the MLV induced an irreversible concentration- and time-dependent (1-30 µg/mL) neuromuscular blockade, with 50% blockade occurring between 8 and 30 min. Muscle contractures evoked by exogenous acetylcholine were completely abolished by MLV, whereas those of KCl were also significantly altered (86% ± 11%, 53% ± 11%, 89% ± 5% and 89% ± 7% for one, three, 10 and 30 µg of venom/mL, respectively; n = 4; p < 0.05). In mouse phrenic nerve-diaphragm preparations, MLV (1-10 µg/mL) promoted a slight increase in the amplitude of twitch-tension (3 µg/mL), followed by neuromuscular blockade (n = 4); the highest concentration caused complete inhibition of the twitches (time for 50% blockade = 26 ± 3 min), without exhibiting a previous neuromuscular facilitation. The venom (3 µg/mL) induced a biphasic modulation in the frequency of miniature end-plate potentials (MEPPs)/min, causing a significant increase after 15 min, followed by a decrease after 60 min (from 17 ± 1.4 (basal) to 28 ± 2.5 (t15) and 12 ± 2 (t60)). The membrane resting potential of mouse diaphragm preparations pre-exposed or not to d-tubocurarine (5 µg/mL) was also significantly less negative with MLV (10 µg/mL). Together, these results indicate that M. laticollaris venom induces neuromuscular blockade by a combination of pre- and post-synaptic activities.


Subject(s)
Elapid Venoms/pharmacology , Neuromuscular Junction/drug effects , Animals , Chickens , Elapidae , In Vitro Techniques , Male , Membrane Potentials/drug effects , Mice , Muscle, Skeletal/drug effects , Neuromuscular Junction/metabolism , Phrenic Nerve/drug effects , Receptors, Nicotinic/drug effects , Receptors, Nicotinic/metabolism , Synaptic Transmission/drug effects
15.
Toxicon ; 66: 64-74, 2013 May.
Article in English | MEDLINE | ID: mdl-23438486

ABSTRACT

A new member of short chain α-neurotoxic protein family from venom of the Mexican coral snake, Micrurus laticollaris, was characterized. This protein, named MlatA1, possesses 61 amino acids with 8 conserved cysteine residues, sharing 30-91% sequence identity with other fully sequenced Micrurus toxins. MlatA1 (LD50i.v. = 0.064 mg/kg) antagonizes with both fetal and adult nicotinic acetylcholine receptor (nAChR) as well as α-7 neuronal nAChR in a dose-dependent way. Specific rabbit anti-Mlat serum (titer higher than 18,000) does not show any protective ability against this toxin, nevertheless it was able to recognize protein bands in six out of twelve Micrurus venoms showing the existence of two distinct antigenic groups for α-neurotoxins in North American coral snakes species. The MlatA1 gene was cloned and used to produce recombinant toxin (rMlatA1) that was recognized by rabbit anti-native toxin but was depleted of toxic activity.


Subject(s)
Elapid Venoms/genetics , Elapidae/physiology , Receptors, Nicotinic/drug effects , Amino Acid Sequence , Animals , Chemical Fractionation , Chromatography, High Pressure Liquid , Cloning, Molecular , Elapid Venoms/chemistry , Elapid Venoms/isolation & purification , Elapid Venoms/metabolism , Elapid Venoms/toxicity , Female , Mice , Molecular Sequence Data , Oocytes/drug effects , Oocytes/physiology , Patch-Clamp Techniques , Rabbits , Receptors, Nicotinic/metabolism , Recombinant Fusion Proteins , Spectrometry, Mass, Electrospray Ionization , Xenopus laevis
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