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Homology modeling and docking of AahII-Nanobody complexes reveal the epitope binding site on AahII scorpion toxin

Authors :
Özlem Tastan Bishop
Kais Ghedira
B.A. Gowri Shankar
Rahma Ben Abderrazek
Ayoub Ksouri
Balkiss Bouhaouala-Zahar
Alia Benkahla
Laboratoire de Bioinformatique, biomathématiques, biostatistiques (BIMS) (LR11IPT09)
Université de Tunis El Manar (UTM)-Institut Pasteur de Tunis
Réseau International des Instituts Pasteur (RIIP)-Réseau International des Instituts Pasteur (RIIP)
Laboratoire des Venins et Toxines, Institut Pasteur de Tunis
Institut Pasteur de Tunis
Réseau International des Instituts Pasteur (RIIP)
Laboratoire des Venins et Biomolécules Thérapeutiques - Laboratory of Venoms and Therapeutic Biomolecules (LR11IPT08)
Université de Tunis El Manar (UTM)
This work was supported in parts by the H3Africa Bioinformatics Network (H3ABioNet) and in parts by INT/Tunisia/P-06/2013 Tunisia-India bilateral project.
Thanks, are addressed to Professor Hechmi Louzir, General Director of Institut Pasteur, Dr Mohamed El Ayeb, Founder of LVT Lab and to Dr Riadh Kharrat, Director of LVMT Research Lab for their constant encouragements. The authors are grateful to Professor Rembert Pieper who helped correcting the English version.
Source :
Biochemical and Biophysical Research Communications, Biochemical and Biophysical Research Communications, Elsevier, 2018, 496 (4), pp.1025--1032. ⟨10.1016/j.bbrc.2018.01.036⟩
Publication Year :
2018
Publisher :
Elsevier BV, 2018.

Abstract

International audience; Scorpion envenoming and its treatment is a public health problem in many parts of the world due to highly toxic venom polypeptides diffusing rapidly within the body of severely envenomed victims. Recently, 38 AahII-specific Nanobody sequences (Nbs) were retrieved from which the performance of NbAahII10 nanobody candidate, to neutralize the most poisonous venom compound namely AahII acting on sodium channels, was established. Herein, structural computational approach is conducted to elucidate the Nb-AahII interactions that support the biological characteristics, using Nb multiple sequence alignment (MSA) followed by modeling and molecular docking investigations (RosettaAntibody, ZDOCK software tools). Sequence and structural analysis showed two dissimilar residues of NbAahII10 CDR1 (Tyr27 and Tyr29) and an inserted polar residue Ser30 that appear to play an important role. Indeed, CDR3 region of NbAahII10 is characterized by a specific Met104 and two negatively charged residues Asp115 and Asp117. Complex dockings reveal that NbAahII17 and NbAahII38 share one common binding site on the surface of the AahII toxin divergent from the NbAahII10 one's. At least, a couple of NbAahII10 - AahII residue interactions (Gln38 - Asn44 and Arg62, His64, respectively) are mainly involved in the toxic AahII binding site. Altogether, this study gives valuable insights in the design and development of next generation of antivenom.

Details

ISSN :
0006291X and 10902104
Volume :
496
Database :
OpenAIRE
Journal :
Biochemical and Biophysical Research Communications
Accession number :
edsair.doi.dedup.....95cb892f96b0d5735d0c74587b7dcbe1