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Hurka, S.

Publications and source records attributed to Hurka, S..

4 recordsLinked to original sources

Ontogenetic variation in composition and bioactivity of common adder (Vipera berus) venom revealed by genome-guided proteomics and in vitro functional assays

1Ontogenetic shifts in diet are well documented in snakes and are increasingly linked to age-related venom variation. The common adder, Vipera berus, exhibits a dietary transition from predominantly ectothermic prey in its early life to increasingly incorporating endothermic prey as an adult. Here, we investigate whether this dietary shift is reflected in age-related changes in the venom composition and bioactivity of V. berus. Venoms from captive-bred V. berus from Germany were obtained and pooled across five age groups, from neonates to adults. Venom profiles were assessed by SDS-PAGE and genome-guided shotgun proteomics, with quantification based on normalized spectral abundance factors (NSAF) using a toxin-gene catalogue generated from a novel V. berus genome assembly. In parallel, we assayed general protease and PLA2 activities, as well as FXa-, thrombin-, and plasmin-like activities, and cytotoxicity toward mammalian cell lines. We identified two distinct age-related venom phenotypes (ontotypes): an svMP/CTL-rich ontotype A ([≤]1 year) and an svSP/PLA2-rich ontotype B ([≥]2 years). Functionally, protease activity decreased with age, whereas thrombin-like, plasmin-like and PLA2 activities, and cytotoxicity, increased. Our findings indicate an ontogenetic shift in composition and activities of V. berus venom that parallels dietary transitions and potentially reflect adaptation to differing prey physiologies.

biochemistry↗

Transcriptomic assessment of the Black Judaicus scorpion (Hottentotta judaicus) toxin arsenal and its potential bioeconomic value

Scorpion venoms are likewise a medical burden as well as a source of novel bioresources. Despite their important dual role, the venoms of most scorpion species remain under- or unstudied. Among these is the venom of the Black Judaicus scorpion, Hottentotta judaicus (Simon, 1872), a common yet neglected species native to the Middle East. Here, we employ venom gland transcriptomics to investigate its toxin-encoding precursor profile to gain insight into its toxin repertoire. The venom was found to be composed primarily of various short scorpion toxins, long scorpion toxins from the 3 C-C as well as the 4 C-C type, and enzymatic components. Minor components include, defensins and putative antimicrobial peptides. Several identified toxins show similarity to known neurotoxins from lethal buthids or to toxins with translational value in biomedicine, agriculture, and industrial production, thus rendering H. judaicus both, a potential health concern and source of novel bioresources. Our work provides an extended perspective on the venom profile of this species and represents a basis for future follow-up studies.

zoology↗

A genome-guided atlas to the composition, activity, and β-bungarotoxin dimerization in many-banded krait venom inferred by functional venomics

1Snakebite is a neglected tropical disease claiming [~]140,000 lives every year. One of the most medically relevant snakes of Asia is the many-banded krait (Bungarus multicinctus). Approximately 8% of the global human population is at risk of being envenomated by this species, able to cause fatal neurotoxicity. Here, we present a proteogenomic and functional assessment of the B. multicinctus venom via genome-guided bottom-up and top-down proteomics, combined with traditional protein profiling and bioassays. We report its venom profile alongside the primary structures of its toxins, revealing a relatively simple venom containing 55 components from 16 protein families. It is largely composed by three-finger toxins and phospholipase A2, besides acetylcholinesterase and snake venom metalloprotease. Top-down data unveiled the diversity of the highly lethal {beta}-bungarotoxins and allowed us to infer the complex dimerization patterning of these multi-domain neurotoxins. Our functional analysis revealed that B. multicinctus venom exerts potent phospholipase A2 and acetylcholinesterase activities, but protease activity as well as effects on cell viability and release of second messengers were virtually absent. This suggests, that B. multicinctus venom causes its devastating neurotoxic symptoms due to a heavy reliance on phospholipase A2 and acetylcholinesterase, but without impairing viability of neurons nor via interference of second messenger release. Antibacterial and antiviral screens further revealed activity against some pathogenic microbes that warrant further translational investigations. A comparison to previously published venom proteomes of B. multicinctus and its congeners suggests, that intraspecific venom variation occurs more widely in kraits than previously acknowledged and deserves higher attention. Overall, our investigation provides pivotal new insights into the biochemistry and pathophysiology of one of earths most lethal snakes and represents an important resource to inform future proteogenomic and functional studies in krait venom and beyond.

molecular biology↗

Convergent evolutionary adaption of spider venom from predation to defense

Most spiders deploy paralytic venom for prey capture, but adults of the yellow-sac spider (Cheiracanthium punctorium) instead produce a predominantly defensive venom to safeguard their offspring. Here, we characterized the molecular repertoire of C. punctorium venom to shed light on its evolutionary history. Unlike venom in other spiders, C. punctorium venom mostly comprises neurotoxic double-domain neurotoxin 19 family (CSTX) peptides and enzymes, such as phospholipase A2 (PLA2). Comparative venomics in four spiders representing two infraorders showed that CSTXs arose following the mygalomorph- araneomorph split [~]300 mya by means of ancestral gene duplication and functional specialization. A gene fusion event then merged CSTXs from two distinct clades to form the double-domain toxin. PLA2 proteins were convergently recruited to C. punctorium to fulfil a defensive function and are strikingly similar to proalgesic PLA2 proteins in bee venom. These complex, multimodal molecular innovations in venom systems highlight natures tendency to use the same molecular solutions for similar ecological challenges across diverse animal lineages.

zoology↗