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Profiling cytotoxicity of nanofractionated elapid snake venoms in human cell lines representing different tissues
Haifeng Xu1,2, Mátyás A Bittenbinder1,2,3, Julien Slagboom1,2
1Amsterdam Institute of Molecular and Life Sciences, Department of Chemistry and Pharmaceutical Sciences, Faculty of Science, Vrije Universiteit Amsterdam, De Boelelaan 1085, Amsterdam, 1081HV, The Netherlands.
Abstract:
Elapid snakebites cause severe toxicity, predominantly neurotoxicity and general cytotoxicity. However, the specific cellular impacts of individual venom toxins remain largely underexplored. This study developed a high-throughput platform for profiling cytotoxicity from elapid venoms, focusing on nanofractionation analytics to enhance selectivity and toxin identification. Elapid Venoms were tested on four human cell lines, representing kidney (RPTEC/TERT1), liver (HepaRG), endothelial (iPSC-EC), and skin (HaCaT) tissues. Cytotoxic effects were assessed through cell coverage, viability, and metabolic assays in both crude and nanofractionated venom samples. Nanofractionation revealed selective cytotoxicity in venom components, notably phospholipases A2 (PLA2s) and three-finger toxins (3FTxs), which impaired membrane integrity and cellular metabolism. Crude B. multicinctus venom displayed specific cytotoxicity toward liver and skin cells but not kidney or endothelial cells. Cytotoxicity of nanofractionated B. multicinctus venom was lost, likely due to denaturing conditions of the reversed-phase separation. Fractionation after size exclusion chromatography (SEC) for post-column bioassaying to avoid toxin denaturation yielded bioactive fractions, with 3FTxs, PLA2s, and Kunitz-type serine protease (KUNs) likely responsible for the observed cell permeability disruption, extracellular matrix (ECM) degradation, and metabolic loss. This integrated analytical workflow, combining nanofractionation with high-throughput cytotoxicity assays and venomics, enabled rapid identification of venom components with cell type-specific toxicity. Our findings contribute to understanding elapid venom toxicity and can aid in developing targeted snakebite treatments focusing on cytotoxicity responsible for tissue-specific damage.
Insights
This study developed a high-throughput platform to profile elapid snake venom cytotoxicity, identifying specific toxins like phospholipases A2 and three-finger toxins that damage cells and aid in developing targeted snakebite treatments.
Area of Science:
- Toxicology
- Molecular Biology
- Biochemistry
Background:
- Elapid snakebites cause severe neurotoxicity and cytotoxicity.
- The specific cellular impacts of individual venom toxins are not well understood.
Purpose of the Study:
- To develop a high-throughput platform for profiling cytotoxicity from elapid venoms.
- To identify specific venom components responsible for cell type-specific toxicity.
Main Methods:
- Utilized nanofractionation analytics for enhanced selectivity and toxin identification.
- Tested elapid venoms on human kidney, liver, endothelial, and skin cell lines.
- Assessed cytotoxic effects using cell coverage, viability, and metabolic assays.
Main Results:
- Nanofractionation identified selective cytotoxicity from phospholipases A2 (PLA2s) and three-finger toxins (3FTxs).
- Crude *B. multicinctus* venom showed specific cytotoxicity towards liver and skin cells.
- Size exclusion chromatography (SEC) followed by bioassaying identified PLA2s, 3FTxs, and Kunitz-type serine proteases (KUNs) as key toxins.
Conclusions:
- An integrated analytical workflow combining nanofractionation, high-throughput assays, and venomics enables rapid identification of venom components with cell type-specific toxicity.
- Findings contribute to understanding elapid venom toxicity and developing targeted snakebite treatments for tissue-specific damage.
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