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Evolution Stings: the Origin and Diversification of Scorpion Toxin Peptide Scaffolds

Overview
Journal Toxins (Basel)
Publisher MDPI
Specialty Toxicology
Date 2013 Dec 20
PMID 24351712
Citations 38
Authors
Affiliations
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Abstract

The episodic nature of natural selection and the accumulation of extreme sequence divergence in venom-encoding genes over long periods of evolutionary time can obscure the signature of positive Darwinian selection. Recognition of the true biocomplexity is further hampered by the limited taxon selection, with easy to obtain or medically important species typically being the subject of intense venom research, relative to the actual taxonomical diversity in nature. This holds true for scorpions, which are one of the most ancient terrestrial venomous animal lineages. The family Buthidae that includes all the medically significant species has been intensely investigated around the globe, while almost completely ignoring the remaining non-buthid families. Australian scorpion lineages, for instance, have been completely neglected, with only a single scorpion species (Urodacus yaschenkoi) having its venom transcriptome sequenced. Hence, the lack of venom composition and toxin sequence information from an entire continent's worth of scorpions has impeded our understanding of the molecular evolution of scorpion venom. The molecular origin, phylogenetic relationships and evolutionary histories of most scorpion toxin scaffolds remain enigmatic. In this study, we have sequenced venom gland transcriptomes of a wide taxonomical diversity of scorpions from Australia, including buthid and non-buthid representatives. Using state-of-art molecular evolutionary analyses, we show that a majority of CSα/β toxin scaffolds have experienced episodic influence of positive selection, while most non-CSα/β linear toxins evolve under the extreme influence of negative selection. For the first time, we have unraveled the molecular origin of the major scorpion toxin scaffolds, such as scorpion venom single von Willebrand factor C-domain peptides (SV-SVC), inhibitor cystine knot (ICK), disulphide-directed beta-hairpin (DDH), bradykinin potentiating peptides (BPP), linear non-disulphide bridged peptides and antimicrobial peptides (AMP). We have thus demonstrated that even neglected lineages of scorpions are a rich pool of novel biochemical components, which have evolved over millions of years to target specific ion channels in prey animals, and as a result, possess tremendous implications in therapeutics.

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References
1.
Kelley L, Sternberg M . Protein structure prediction on the Web: a case study using the Phyre server. Nat Protoc. 2009; 4(3):363-71. DOI: 10.1038/nprot.2009.2. View

2.
Mosbah A, Kharrat R, Fajloun Z, Renisio J, Blanc E, Sabatier J . A new fold in the scorpion toxin family, associated with an activity on a ryanodine-sensitive calcium channel. Proteins. 2000; 40(3):436-42. DOI: 10.1002/1097-0134(20000815)40:3<436::aid-prot90>3.0.co;2-9. View

3.
Nabhani T, Zhu X, Simeoni I, Sorrentino V, Valdivia H, Garcia J . Imperatoxin a enhances Ca(2+) release in developing skeletal muscle containing ryanodine receptor type 3. Biophys J. 2002; 82(3):1319-28. PMC: 1301934. DOI: 10.1016/S0006-3495(02)75487-8. View

4.
Smith J, Hill J, Little M, Nicholson G, King G, Alewood P . Unique scorpion toxin with a putative ancestral fold provides insight into evolution of the inhibitor cystine knot motif. Proc Natl Acad Sci U S A. 2011; 108(26):10478-83. PMC: 3127888. DOI: 10.1073/pnas.1103501108. View

5.
Moerman L, Bosteels S, Noppe W, Willems J, Clynen E, Schoofs L . Antibacterial and antifungal properties of alpha-helical, cationic peptides in the venom of scorpions from southern Africa. Eur J Biochem. 2002; 269(19):4799-810. DOI: 10.1046/j.1432-1033.2002.03177.x. View