Literature DB >> 21255598

A high-throughput venom-gland transcriptome for the Eastern Diamondback Rattlesnake (Crotalus adamanteus) and evidence for pervasive positive selection across toxin classes.

Darin R Rokyta1, Kenneth P Wray, Alan R Lemmon, Emily Moriarty Lemmon, S Brian Caudle.   

Abstract

Despite causing considerable human mortality and morbidity, animal toxins represent a valuable source of pharmacologically active macromolecules, a unique system for studying molecular adaptation, and a powerful framework for examining structure-function relationships in proteins. Snake venoms are particularly useful in the latter regard as they consist primarily of a moderate number of proteins and peptides that have been found to belong to just a handful of protein families. As these proteins and peptides are produced in dedicated glands, transcriptome sequencing has proven to be an effective approach to identifying the expressed toxin genes. We generated a venom-gland transcriptome for the Eastern Diamondback Rattlesnake (Crotalus adamanteus) using Roche 454 sequencing technology. In the current work, we focus on transcripts encoding toxins. We identified 40 unique toxin transcripts, 30 of which have full-length coding sequences, and 10 have only partial coding sequences. These toxins account for 24% of the total sequencing reads. We found toxins from 11 previously described families of snake-venom toxins and have discovered two putative, previously undescribed toxin classes. The most diverse and highly expressed toxin classes in the C. adamanteus venom-gland transcriptome are the serine proteinases, metalloproteinases, and C-type lectins. The serine proteinases are the most abundant class, accounting for 35% of the toxin sequencing reads. Metalloproteinases are the most diverse; 11 different forms have been identified. Using our sequences and those available in public databases, we detected positive selection in seven of the eight toxin families for which sufficient sequences were available for the analysis. We find that the vast majority of the genes that contribute directly to this vertebrate trait show evidence for a role for positive selection in their evolutionary history.
Copyright © 2011 Elsevier Ltd. All rights reserved.

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Year:  2011        PMID: 21255598     DOI: 10.1016/j.toxicon.2011.01.008

Source DB:  PubMed          Journal:  Toxicon        ISSN: 0041-0101            Impact factor:   3.033


  48 in total

1.  Evolutionary origins of a bioactive peptide buried within Preproalbumin.

Authors:  Alysha G Elliott; Christina Delay; Huanle Liu; Zaiyang Phua; K Johan Rosengren; Aurélie H Benfield; Jose L Panero; Michelle L Colgrave; Achala S Jayasena; Kerry M Dunse; Marilyn A Anderson; Edward E Schilling; Daniel Ortiz-Barrientos; David J Craik; Joshua S Mylne
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2.  Adaptive evolution of distinct prey-specific toxin genes in rear-fanged snake venom.

Authors:  Cassandra M Modahl; Seth Frietze; Stephen P Mackessy
Journal:  Proc Biol Sci       Date:  2018-08-01       Impact factor: 5.349

3.  Snake venomics of Crotalus tigris: the minimalist toxin arsenal of the deadliest Nearctic rattlesnake venom. Evolutionary Clues for generating a pan-specific antivenom against crotalid type II venoms [corrected].

Authors:  Juan J Calvete; Alicia Pérez; Bruno Lomonte; Elda E Sánchez; Libia Sanz
Journal:  J Proteome Res       Date:  2012-01-09       Impact factor: 4.466

4.  Are there unequivocal criteria to label a given protein as a toxin? Permissive versus conservative annotation processes.

Authors:  Yves Terrat; Frédéric Ducancel
Journal:  Genome Biol       Date:  2013       Impact factor: 13.583

5.  Coralsnake Venomics: Analyses of Venom Gland Transcriptomes and Proteomes of Six Brazilian Taxa.

Authors:  Steven D Aird; Nelson Jorge da Silva; Lijun Qiu; Alejandro Villar-Briones; Vera Aparecida Saddi; Mariana Pires de Campos Telles; Miguel L Grau; Alexander S Mikheyev
Journal:  Toxins (Basel)       Date:  2017-06-08       Impact factor: 4.546

6.  Contrasting modes and tempos of venom expression evolution in two snake species.

Authors:  Mark J Margres; James J McGivern; Margaret Seavy; Kenneth P Wray; Jack Facente; Darin R Rokyta
Journal:  Genetics       Date:  2014-11-11       Impact factor: 4.562

7.  Functional characterizations of venom phenotypes in the eastern diamondback rattlesnake (Crotalus adamanteus) and evidence for expression-driven divergence in toxic activities among populations.

Authors:  Mark J Margres; Robert Walls; Montamas Suntravat; Sara Lucena; Elda E Sánchez; Darin R Rokyta
Journal:  Toxicon       Date:  2016-05-11       Impact factor: 3.033

8.  Molecular models of the Mojave rattlesnake (Crotalus scutulatus scutulatus) venom metalloproteinases reveal a structural basis for differences in hemorrhagic activities.

Authors:  Ruben K Dagda; Sardar E Gasanov; Boris Zhang; William Welch; Eppie D Rael
Journal:  J Biol Phys       Date:  2014-02-13       Impact factor: 1.365

9.  cDNA cloning of a snake venom metalloproteinase from the eastern diamondback rattlesnake (Crotalus adamanteus), and the expression of its disintegrin domain with anti-platelet effects.

Authors:  Montamas Suntravat; Ying Jia; Sara E Lucena; Elda E Sánchez; John C Pérez
Journal:  Toxicon       Date:  2013-01-10       Impact factor: 3.033

10.  Identification of hyaluronidase and phospholipase B in Lachesis muta rhombeata venom.

Authors:  Gisele A Wiezel; Patty K dos Santos; Francielle A Cordeiro; Karla C F Bordon; Heloisa S Selistre-de-Araújo; Beatrix Ueberheide; Eliane C Arantes
Journal:  Toxicon       Date:  2015-08-31       Impact factor: 3.033

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