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Delhon, G.

Publications and source records attributed to Delhon, G..

2 recordsLinked to original sources

Novel recombinant bovine papular stomatitis virus expressing foot and mouth disease virus-like particles elicits protective levels of neutralizing antibodies in cattle

Foot-and-mouth disease (FMD) remains a major burden in endemic regions, where inactivated vaccines are constrained by cost, short duration of immunity, cold-chain dependence, and high-containment manufacturing. Here, we engineered a recombinant bovine papular stomatitis virus (rBPSV) expressing the FMDV A24 Cruzeiro capsid precursor P1-2A together with an attenuated 3C protease (3Cpro L127P). Infection of ovine fetal turbinate (OFTu) cells resulted in robust capsid protein expression and assembly of abundant 25-30 nm icosahedral virus-like particles (VLPs). Intramuscular immunization of two BPSV-seropositive calves with rBPSV (107 TCID50 on days 0, 21 and 35) induced strong anti-FMDV humoral responses. By day 28, liquid-phase blocking ELISA (LPBE) titers exceeded laboratory defined protective threshold ([≥]1.9 log10), and homologous neutralizing titers against A24 Cruzeiro surpassed the threshold associated with protection ([≥]1.36 log10). Intra-serotypic cross-neutralization was observed against A/Argentina/2001, whereas no neutralization was detected against heterologous serotype O1 Campos. Pre-existing anti-BPSV antibodies did not prevent induction of neutralizing responses. These findings establish first proof-of-concept that BPSV can serve as a cattle-adapted vector platform for delivery of FMDV VLPs and other heterologous antigens.

immunology↗

Spillover of H5 influenza viruses to vampire bats at the marine-terrestrial interface

The highly pathogenic H5N1 avian influenza A virus (IAV) clade 2.3.4.4b has spread globally and spilled over into multiple mammalian species, raising concerns about its pandemic potential. In late 2022, clade 2.3.4.4b viruses devastated seabird and marine mammal populations along the Pacific coast of South America. Here, we report the first evidence of H5 IAV infections in wild bats globally, focusing on common vampire bats (Desmodus rotundus) in coastal areas of Peru. Longitudinal serological screening, stable isotope analysis and metabarcoding revealed repeated exposures to H5 IAVs in vampire bats which feed on coastal wildlife species heavily impacted by the 2.3.4.4b epizootic, but no evidence of infection in populations without access to marine prey. We further report bat gene flow between IAV-exposed and IAV-naive populations, and IAV infections in a vampire bat colony that fed on both marine and terrestrial livestock prey, providing insights into how future IAV epizootics might spread spatially within bats and between marine and terrestrial ecosystems if a bat reservoir were established. Immunohistochemistry demonstrated that the H5 haemagglutinin protein binds to the upper respiratory tract of vampire bats, suggesting bat tissue susceptibility to H5 IAVs. Finally, vampire bat-derived kidney, liver, and lung cells supported entry, replication, and egress of avian and mammalian 2.3.4.4b viruses, confirming cellular infectivity. These results illustrate how combining ecological inference and experimental virology can pinpoint the species origins and biological significance of viral spillover at species interfaces. Recurrent exposures from marine wildlife, tissue and cellular susceptibility to H5N1 IAVs, and connections to other IAV-susceptible terrestrial mammals establish the prerequisite conditions for vampire bats to spread IAVs between marine and terrestrial environments or to form a novel reservoir of highly pathogenic IAVs.

ecology↗