Next-Generation Sequencing for Venomics: Application of Multi-Enzymatic Limited Digestion for Inventorying the Snake Venom Arsenal

peer-reviewed · Toxins · 2023

peer-reviewed · Toxins · 2023. Fernanda Gobbi Amorim et al. To improve the characterization of snake venom protein profiles, we report the application of a new…
Date 2023-05-25
Type peer-reviewed
Venue Toxins
Publisher MDPI AG
Contribution downstream-application
DOI 10.3390/toxins15060357
Citations (OpenAlex) 13
Venue 2-year citedness 4.56

Abstract

To improve the characterization of snake venom protein profiles, we report the application of a new generation of proteomic methodology to deeply characterize complex protein mixtures. The new approach, combining a synergic multi-enzymatic and a time-limited digestion (MELD), is a versatile and straightforward protocol previously developed by our group. The higher number of overlapping peptides generated during MELD increases the quality of downstream peptide sequencing and of protein identification. In this context, this work aims at applying the MELD strategy to a venomics purpose for the first time, and especially for the characterization of snake venoms. We used four venoms as the test models for this proof of concept: two Elapidae (Dendroaspis polylepis and Naja naja) and two Viperidae (Bitis arietans and Echis ocellatus). Each venom was reduced and alkylated before being submitted to two different protocols: the classical bottom-up proteomics strategy including a digestion step with trypsin only, or MELD, which combines the activities of trypsin, Glu-C and chymotrypsin with a limited digestion approach. The resulting samples were then injected on an M-Class chromatographic system, and hyphenated to a Q-Exactive Mass Spectrometer. Toxins and protein identification were performed by Peaks Studio X+. The results show that MELD considerably improves the number of sequenced (de novo) peptides and identified peptides from protein databases, leading to the unambiguous identification of a greater number of toxins and proteins. For each venom, MELD was successful, not only in terms of the identification of the major toxins (increasing of sequence coverage), but also concerning the less abundant cellular components (identification of new groups of proteins). In light of these results, MELD represents a credible methodology to be applied as the next generation of proteomics approaches dedicated to venomic analysis. It may open new perspectives for the sequencing and inventorying of the venom arsenal and should expand global knowledge about venom composition.

Authors

  1. Fernanda Gobbi Amorim · University of Liège
  2. Damien Redureau · University of Liège
  3. Thomas Crasset · University of Liège
  4. Lou Freuville · University of Liège
  5. Dominique Baiwir · University of Liège
  6. Gabriel Mazzucchelli · University of Liège
  7. Stefanie K. Menzies · Liverpool School of Tropical Medicine
  8. Nicholas R. Casewell · Liverpool School of Tropical Medicine
  9. Loïc Quinton · Centre National de la Recherche Scientifique, Commissariat à l’Énergie Atomique et aux Énergies Alternatives, Universidad Autónoma del Estado de Morelos, University of Liège, École Polytechnique

Methods and tools

  • MELD snake venomics: Applies multi-enzymatic limited digestion to four snake venoms, increasing de novo sequenced peptides and toxin coverage in PEAKS.

Methods it uses

  • PEAKS: Commercial DP-based de novo

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