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Lüddecke, T.

Publications and source records attributed to Lüddecke, T..

2 recordsLinked to original sources

Low extent of sex-based venom variation in Earth's most widespread viper, the common adder (Vipera berus)

Snake venom is an ecologically critical functional trait, primarily applied for foraging and accordingly shaped by selective pressures. Recent insights underpinned the high variability of snake venoms down to the intraspecific level, with regional, ontogenetic, and seasonal variation being mostly investigated. In contrast, sex-based venom variation has received considerably less attention so far, and its influence on venom compositions in vipers is virtually unknown. The common adder (Vipera berus) is a promising model species to explore this subject because of a described sexual dimorphism and its wide distribution, which promises a noteworthy degree of adaptability and venom plasticity. Here, we tested for sex-based venom variation in Central European V. berus by comparing venom profiles and bioactivity. Proteomics, paired with SDS-PAGE and RP-HPLC, revealed highly similar venom profiles. Likewise, phospholipases A2 and proteases bioactivity profiling, and bioassays targeting the coagulation cascade and mammalian cell lines revealed similar activity spectra. Hence, our analysis does not show a noteworthy extent of sex-based intraspecific venom variation in V. berus. We further discuss our data in light of the species venom profile at larger geographic scales, its clinical relevance, and the need for more standardized approaches when investigating venom variability. Our work provides novel insights into the venom biology of Earths most widespread viper, and serves as a foundation upon which future works can build.

biochemistry↗

Beyond venomous fangs: Uloboridae spiders have lost their venom apparatus but not their toxins

Venom, one of natures most potent secretions, has played a crucial role in the evolutionary success of many animal groups, including spiders. However, Uloboridae spiders appear to lack venom and capture their prey, unlike venomous spiders, by extensive silk-wrapping and regurgitation of digestive fluids onto the entire prey. A prevailing hypothesis posits that toxins may have been reallocated from the venom to alternative secretions, like silk or digestive fluids. Yet, whether uloborids have retained venom toxins and the mechanisms underlying prey immobilisation remain unresolved. Here, we employed a multi-disciplinary approach to assess the absence of venom glands in Uluborus plumipes, toxin gene expression and toxicity of digestive proteins. Our findings confirm that U. plumipes lacks a venom apparatus, while neurotoxin-like transcripts were highly expressed in the digestive system. Midgut gland extract had comparable toxicity levels to that of the venomous Parasteatoda tepidariorum. However, no inhibitory effects on sodium nor potassium channels were observed, indicating a different toxic mechanism. These findings support the hypothesis that Uloboridae spiders have lost their venom apparatus while retaining toxin-like genes. The potent toxicity of their digestive fluids, a trait conserved across spiders, likely compensate for the absence of venom, ensuring effective prey immobilisation and digestion.

evolutionary biology↗