Completed Infection & Immunity Heart, Stroke & Blood

Novel platforms to develop polyspecifically-effective, safe, affordable and thermostable monoclonal camelid VHH nanobodies to treat snake venom-induced necrosis in India and sub-Saharan Africa

In plain English

AI plain-English summary

Every year, 400,000 snakebite victims in tropical regions lose tissue to necrosis because no medicine exists to stop it—only surgery or amputation. This matters because venom-induced necrosis destroys skin and muscle, leaving victims with permanent disability, lost income, and overwhelming strain on already-poor health facilities. Current treatments cannot prevent the tissue death that sets in within hours of a bite. The researchers propose a fundamentally new approach: using recombinant, humanised camelid VHH nanobodies—tiny antibody fragments from camels—to neutralise the specific toxins that trigger necrosis. They will select the best candidates from immunised camels and a synthetic library, then test them in human skin and mouse models. If successful, this could replace amputation with a cheap, heat-stable injection that can be stored without refrigeration and distributed at community clinics across Africa and India. The therapy is designed for large-scale E. coli production, keeping costs low. The vast patient population across two continents creates an economy-of-scale incentive for manufacturing partners. This is not fundamental science—it is a direct, translational push toward a first-in-class drug for a neglected tropical disease that currently has none.

View original technical description
400,000 tropical snakebite victims require, every year, life-saving surgical debridement/amputation because there is no medicine to treat the disabling, income-depleting effects of snake venom-induced necrosis. A new therapy is urgently needed to prevent the severe health and socioeconomic consequences upon already-impoverished victims and health facilities. Our evidence-underpinned hypothesis is that rationally-selected recombinant, humanised camelid VHH targeting necrosis-inducing venom toxins (NITs) will possess the efficacy, rapid in-tissue distribution, safety, thermostability, affordability and large scale production characteristics appropriate for future development of a community-dispensed therapy – a paradigm shift in the clinical management of venom-induced necrosis to reduce morbidity. To achieve this for Africa and India, our partners bring new approaches, platforms and all required resources to select candidate recombinant NIT-specific monoclonal VHH from (i) B cells of NIT-immunised camels and (ii) a synthetic VHH library - complementary approaches maximising likely success. Deploying sequential in vitro, ex vivo human skin and mouse in vivo assays of venom-induced necrosis enables down-selection of the most efficacious, thermostable recombinant VHH. ‘Humanising’ the latter donates the key safety criterion. E.coli expression enables inexpensive and large-scale production of humanised VHH. These therapy-characteristics and the vast panAfrica/India need, provide economy-of-scale production incentives for future manufacturing partners.

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Researchers

Christiane Helene Berger-Schaffitzel (EPMC Awardee)Devin Sok (EPMC Awardee)George Oluoch (EPMC Awardee)Imre Berger (EPMC Awardee)Kartik Sunagar (EPMC Awardee)Nicholas Casewell (EPMC Awardee)Robert Harrison (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Progressing existing snake venom toxin-specific antibodies into humanised, thermostable monoclonal therapies for preclinical manufacture and clinical trials in Africa and India
Novel immuno-proteomic strategies to develop a polyspecific, non-cold chain liquid snake antivenom with unparalleled sub-Saharan African efficacy
Recombinant snakebite antivenom for sub-Saharan Africa
Rational design of rapidly translatable, highly antigenic and novel recombinant immunogens to address deficiencies of current snakebite treatments
Development of a novel therapeutic to treat snakebite induced necrosis in sub-Saharan Africa

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.