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CRISPR/Cas9 screening identifies host factors and conserved networks for multiple livestock and poultry virusesNew screening identifies common pathways for several livestock viral diseases

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Key Takeaway
Note that CRISPR/Cas9 screening identifies shared host pathways like interferon signaling as targets for broad-spectrum antivirals.

This systematic review synthesizes evidence from CRISPR/Cas9 functional screening to identify host factors influencing the life cycles of several livestock and poultry viruses, including Foot-and-mouth disease, Swine enteric coronavirus, African swine fever, Porcine reproductive and respiratory syndrome virus, and Avian leukosis virus. The scope focuses on identifying specific mechanisms of viral entry, replication, and egress.

The review identifies critical host dependency and restriction factors across these pathogens. Specifically, the synthesis highlights conserved cross-viral dependency networks involving sialic acid biosynthesis, endosomal-lysosomal trafficking, double-membrane vesicle (DMV) formation, and interferon signaling pathways. These shared pathways suggest common vulnerabilities in viral replication across different species.

While the review identifies potential targets for broad-spectrum antivirals and highlights opportunities for creating disease-resistant livestock through genome editing, it does not provide evidence of efficacy or safety for these specific applications. The findings are currently foundational for identifying targets rather than confirming clinical outcomes.

How this fits prior evidence

This systematic review addresses gaps in understanding shared viral mechanisms across diverse pathogens like Foot-and-mouth disease and African swine fever. It builds upon prior coverage regarding the distinct transmission drivers of African swine fever and PRRS, as well as the limitations of NSP serology for foot-and-mouth disease. While previous reports focused on epidemiology and diagnostic limitations, this review focuses on identifying conserved host dependency networks to inform potential broad-spectrum antiviral development.

Farmers and livestock owners face constant threats from various viruses, including foot-and-mouth disease and swine flu. These diseases can devastate herds and impact food security. Recent research is looking for ways to stop these infections by targeting the host's own biology rather than just attacking the virus directly.

Researchers used a tool called CRISPR/Cas9 functional screening to study how different viruses behave inside cells. They found that several different viruses, including those causing African swine fever and avian leukosis, actually rely on the same internal pathways to enter cells, replicate, and exit. These shared pathways include things like sialic acid production and interferon signaling.

While this research is still in the early stages, it points toward a new way to fight disease. By identifying these common targets, scientists hope to develop broad-spectrum antivirals that work against many different viruses at once. There is also potential for using genome editing to create livestock that are naturally more resistant to these infections.

What this means for you:
Identifying shared biological pathways could lead to broader treatments and more resilient livestock.

Common questions

What specific diseases were studied in this research?

The study looked at several different conditions affecting livestock and poultry. These included foot-and-mouth disease, swine enteric coronavirus, African swine fever, porcine reproductive and respiratory syndrome virus, and avian leukosis virus.

How does this research help treat animal diseases?

By identifying common pathways that different viruses use to survive, researchers can work toward creating broad-spectrum antivirals. These would target the host's biology rather than just one specific virus. It also opens doors for creating disease-resistant livestock through genome editing.

What specific biological processes were found to be shared by these viruses?

The screening identified several shared networks that different viruses depend on. These include sialic acid biosynthesis, endosomal-lysosomal trafficking, double-membrane vesicle formation, and interferon signaling pathways.

Study Details

Study typeSystematic review
EvidenceLevel 1
PublishedJul 2026
View Original Abstract ↓
Viral infectious diseases in livestock and poultry cause substantial economic losses worldwide and pose persistent zoonotic threats to public health. Elucidating virus-host interactions is essential for understanding viral pathogenesis and developing effective control strategies. In recent years, genome-wide CRISPR/Cas9 functional screening has emerged as a powerful and unbiased high-throughput approach for identifying host dependency and restriction factors. Enabled by the development of species-specific sgRNA libraries, this technology has significantly advanced research in veterinary virology. In this review, we systematically summarize recent progress in CRISPR/Cas9-based screening studies of major livestock and poultry viruses, including foot-and-mouth disease virus (FMDV), swine enteric coronaviruses, African swine fever virus (ASFV), porcine reproductive and respiratory syndrome virus (PRRSV), avian leukosis virus (ALV), and other zoonotic pathogens. We highlight key host factors involved in viral entry, replication, and egress, and integrate these findings to delineate conserved cross-viral dependency networks, such as sialic acid biosynthesis, endosomal–lysosomal trafficking, double-membrane vesicle (DMV) formation, and interferon signaling pathways. Furthermore, we discuss the translational potential of these genomic discoveries for practical agricultural applications, particularly in the development of host-targeted broad-spectrum antivirals and the generation of disease-resistant livestock (e.g., receptor-edited pigs and chickens) through precise genome editing. Finally, we outline future perspectives, including the integration of single-cell transcriptomics and in vivo validation, thereby providing a comprehensive framework for advancing disease control and sustainable breeding in animal agriculture.
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