Completed Infection & Immunity Genetics & Molecular Biology

Developing the next generation of anti-venoms to improve management of cobra poisonings in low and middle incoming countries

In plain English

AI plain-English summary

Cobra venom kills thousands of people each year in low- and middle-income countries, and current antivenoms often fail because the toxins are weakly immunogenic and spread too quickly for antibodies to catch them. This project replaces conventional antivenom with synthetic nanobodies—tiny antibody fragments from camels—that can latch onto cobra neurotoxins even after they have bound to nerve receptors, and physically wrench them off. The problem is that existing antivenoms are made by injecting horses with whole venom, which produces antibodies that are too large to reach fast-moving toxins in time. Nanobodies are one-tenth the size, can be engineered to target specific lethal toxins, and have already shown strong responses in immunised dromedaries against three cobra species. The team will now select the best combinations of nanobodies for maximum cross-species neutralisation, then test them in mice and sheep under Good Manufacturing Practice standards. If successful, this would produce a cheaper, more effective antivenom that could be stored at room temperature and deployed in rural clinics where cobra bites are common. It would also establish a platform for designing nanobody-based antivenoms against other snake toxins.

View original technical description
We propose a different approach to antivenoms, based on recombinant nanobodies (Nbs), targeting the lethal cobra toxins, to reduce morbidity and mortality. Nbs have a high affinity for selected epitopes, allowing rapid recognition of antigens even if bound to cholinergic receptors, combined with a capacity to dislocate neurotoxin from the receptor. This COBRA-NGaV project brings together research teams with extensive experience in venomics and antivenomics to provide the proof-of-concept (PoC) for cobra toxin-specific Nb candidates as a novel generation of antivenoms and to address the dual obstacle to neutralise cobra toxins: weak immunogenicity and fast diffusion. Preliminary results have been obtained so far: i) strong and specific responses were elicited in dromedaries immunised against the toxic fractions of N. legionis, N. haje and N. oxiana; ii) phage display screenings were adopted to rescue strong Nb binders specific towards relevant N. l., N. h. and N. o. toxins; iii) several clusters of Nb sequences specifically binding cobra toxins have been identified. Herein, Nb selections and combinations for optimal synergic effects and best cross-species performances will be generated. Best-in-class candidates will be tested in a pre-clinical study in mice and sheep according to GMP rules. Cost effectiveness will be established.

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Researchers

Balkiss Bouhaouala-Zahar (EPMC Awardee)Delavar Shahbazzadeh (EPMC Awardee)Mohamed HAMMADI (EPMC Awardee)Pierre Lafaye (EPMC Awardee)Salma Djilani (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Utilising snake endogenous toxin inhibitors for the development of improved antivenom treatments
Advancing Antivenom Therapy with ADDovenom: Targeting Neurotoxins in Mamba Snake Envenoming Using ADDobodies and ADDomers
ADDovenom: Novel Snakebite Therapy Platform of Unparalleled Efficacy, Safety and Affordability
Progressing existing snake venom toxin-specific antibodies into humanised, thermostable monoclonal therapies for preclinical manufacture and clinical trials in Africa and India
Rational design of rapidly translatable, highly antigenic and novel recombinant immunogens to address deficiencies of current snakebite treatments

Original classification

Snakebite Grant – Next Generation Treatments

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.