A Two-Antibody Cocktail Targets Two Of The World’s Deadliest Viruses
(Posted on Thursday, July 2, 2026)
Nipah and Hendra viruses are among the deadliest viruses known, killing between 40 and 75 percent of people infected. They are closely related members of the henipavirus family. Nipah virus is found primarily in South and Southeast Asia, while Hendra virus circulates mainly in Australia. Despite their pandemic potential, there are no approved treatments for patients.
Both viruses spread from fruit bats, their natural reservoir, into other animals before infecting people. Nipah virus has caused outbreaks linked to contaminated food, infected livestock, and person-to-person transmission. Hendra virus typically passes from bats to horses before occasionally infecting humans. Although outbreaks remain relatively rare, both viruses can cause severe pneumonia and encephalitis, placing them among the World Health Organization’s highest-priority emerging pathogens.
Why Two Antibodies?
Because Nipah and Hendra viruses are closely related and share many of the same surface proteins, the same antibodies can recognize both viruses individually. The new treatment takes a different approach by combining two antibodies, each targeting a different viral protein. One blocks the receptor binding protein, which the virus uses to attach to human cells. The other targets the fusion protein, preventing the virus from entering the cell.
Most antibody therapies rely on a single target. Although effective, a single mutation can allow the virus to escape treatment. By attacking two essential proteins instead of one, the antibody cocktail makes resistance far more difficult to develop while maintaining activity against both Nipah and Hendra viruses. The combination protected animals from lethal infection and remained effective against viral mutations that escaped individual antibodies.
The two antibodies also recognize regions of the proteins that rarely change across circulating strains of both Nipah and Hendra viruses. Targeting parts of the virus that rarely change may help preserve protection as new variants emerge.

