Completed Infection & Immunity Cells, Biochemistry & Physiology

Generation of venom-neutralising recombinant chimeric antibodies

In plain English

AI plain-English summary

Snakebite victims still receive the same basic treatment as they did a century ago: antibodies harvested from the blood of immunised horses or sheep. This project will replace that crude animal serum with precisely engineered human-like antibodies made in a lab. The problem is that current antivenoms are inconsistent, contain many redundant antibodies, and often trigger severe allergic reactions because the immune system recognises them as foreign animal proteins. The researchers will first immunise horses and llamas with venom from four sub-Saharan African snakes, then use phage display technology to capture and sequence the full repertoire of monoclonal antibodies each animal produces. They will identify which antibodies bind to which venom toxins using affinity capture-mass spectrometry, then fuse the best animal-derived binding regions with human antibody constant domains to create chimeric antibodies that the human immune system will tolerate. If successful, this approach could produce a precisely defined, reproducible cocktail of a few dozen human-like antibodies that neutralise venom more effectively and safely than current polyclonal antivenoms. The same platform could then be adapted to treat snakebites from other species worldwide.

View original technical description
The main therapeutic intervention for snakebite envenomation relies on the century-old approach of injecting victims with animal-derived polyclonal antiserum. Animal immunisation generates high affinity antibodies and undoubtedly saves lives but the use of immune antiserum has a number of limitations around consistency, redundancy and immunogenicity. Recombinant antibody technology will allow the capture, sequencing and characterisation of the monoclonal antibody repertoire arising from immunisation. Furthermore, the resulting high affinity antibodies will be made more human-like by fusing animal-derived variable domains with human constant domains (chimeric antibodies). This project will generate phage display libraries from horses and llamas immunised with venoms of 4 sub-saharan African snakes represented in the co-applicants antivenom EchiTab-Plus_ICP. We will generate antibody panels by phage selection, screening and sequencing. This resolution of the immune repertoire to a complex venom into its monoclonal components essentially transforms the problem into one of deconvolution. Affinity capture-mass spectrometry will be used to identify the target of thousands of individual antibodies based on their distinct mass-defined target. Following triage based on binding profiles, antibodies to individual targets will be expressed as chimeric antibodies and validated using in vitro and in vivo animal models of envenomation towards generation of life-saving, chimeric antibody cocktails.

View the original record at the funder ↗

Researchers

Andrés Sánchez Brenes (EPMC Awardee)John McCafferty (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
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
Utilising snake endogenous toxin inhibitors for the development of improved antivenom treatments
Antibody development for geographically diverse hemotoxic snakebite envenoming

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.