Nanobody-based recombinant antivenom for cobra, mamba and rinkhals bites

S Shirin Ahmadi N Nick J. Burlet M Melisa Benard-Valle A Alid Guadarrama-Martínez S Samuel Kerwin I Iara A. Cardoso A Amy E. Marriott R Rebecca J. Edge E Edouard Crittenden E Edgar Neri-Castro M Monica L. Fernández-Quintero G Giang T. T. Nguyen C Carol O’Brien Y Yessica Wouters K Konstantinos Kalogeropoulos S Suthimon Thumtecho T Tasja Wainani Ebersole C Camilla Holst Dahl E Emily U. Glegg-Sørensen T Tom Jansen K Kim Boddum E Evangelia Manousaki E Esperanza Rivera-de-Torre A Andrew B. Ward J J. Preben Morth A Alejandro Alagón S Stephen P. Mackessy S Stuart Ainsworth S Stefanie K. Menzies N Nicholas R. Casewell T Timothy P. Jenkins A Anne Ljungars A Andreas H. Laustsen

Abstract

Abstract Each year, snakebite envenoming claims thousands of lives and causes severe injury to victims across sub-Saharan Africa, many of whom depend on antivenoms derived from animal plasma as their sole treatment option 1 . Traditional antivenoms are expensive, can cause adverse immunological reactions, offer limited efficacy against local tissue damage and are often ineffective against all medically relevant snake species 2 . There is thus an urgent unmet medical need for innovation in snakebite envenoming therapy. However, developing broad-spectrum treatments is highly challenging owing to the vast diversity of venomous snakes and the complex and variable composition of their venoms 3 . Here we addressed this challenge by immunizing an alpaca and a llama with the venoms of 18 different snakes, including mambas, cobras and a rinkhals, constructing phage display libraries, and identifying high-affinity broadly neutralizing nanobodies. We combined eight of these nanobodies into a defined oligoclonal mixture, resulting in an experimental polyvalent recombinant antivenom that was capable of neutralizing seven toxin families or subfamilies. This antivenom effectively prevented venom-induced lethality in vivo across 17 African elapid snake species and markedly reduced venom-induced dermonecrosis for all tested cytotoxic venoms. The recombinant antivenom performed better than a currently used plasma-derived antivenom and therefore shows considerable promise for comprehensive, continent-wide protection against snakebites by all medically relevant African elapids.

Article Details

Journal Nature
Volume / Issue Vol. 647, Issue 8090
Published November 20, 2025
Pages 716-725
ISSN 0028-0836
Publisher Nature Portfolio

Journal Info

Nature

Nature Portfolio

ISSN: 0028-0836 Health Sciences

Authors (33)

S

Shirin Ahmadi

N

Nick J. Burlet

M

Melisa Benard-Valle

A

Alid Guadarrama-Martínez

S

Samuel Kerwin

I

Iara A. Cardoso

A

Amy E. Marriott

R

Rebecca J. Edge

E

Edouard Crittenden

E

Edgar Neri-Castro

M

Monica L. Fernández-Quintero

G

Giang T. T. Nguyen

C

Carol O’Brien

Y

Yessica Wouters

K

Konstantinos Kalogeropoulos

S

Suthimon Thumtecho

T

Tasja Wainani Ebersole

C

Camilla Holst Dahl

E

Emily U. Glegg-Sørensen

T

Tom Jansen

K

Kim Boddum

E

Evangelia Manousaki

E

Esperanza Rivera-de-Torre

A

Andrew B. Ward

J

J. Preben Morth

A

Alejandro Alagón

S

Stephen P. Mackessy

S

Stuart Ainsworth

S

Stefanie K. Menzies

N

Nicholas R. Casewell

T

Timothy P. Jenkins

A

Anne Ljungars

A

Andreas H. Laustsen