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Published on: September 13, 2018
Characterization of a Unique Novel LORF3 Protein of Duck Plague Virus and Its Potential Pathogenesis
Bingjie Shen1,2,3, Peilin Ruan1,2,3, Anchun Cheng1,2,3
1Institute of Preventive Veterinary Medicine, Sichuan Agricultural University, Chengdu City, Sichuan, China.
Abstract:
Duck plague virus (DPV) is a high-morbidity fowl alphaherpesvirus that causes septicemic lesions in various organs. Most DPV genes are conserved among herpesviruses, while a few are specific to fowl herpesviruses, including the LORF3 gene, for which there is currently no literature describing its biological properties and functions. This study first addressed whether the LORF3 protein is expressed by making specific polyclonal antibodies. We could demonstrate that DPV LORF3 is an early gene and encodes a protein involved in virion assembly, mainly localized in the nucleus of DPV-infected DEF cells. To investigate the role of this novel LORF3 protein in DPV pathogenesis, we generated a recombinant virus that lacks expression of the LORF3 protein. Our data revealed that the LORF3 protein is not essential for viral replication but contributes to DPV replication in vitro and in vivo and promotes duck plague disease morbidity and mortality. Interestingly, deletion of the LORF3 protein abolished thymus atrophy in DPV-vaccinated ducks. In conclusion, this study revealed the expression of avian herpesviruses-specific genes and unraveled the role of the early protein LORF3 in the pathogenesis of DPV. IMPORTANCE DPV is a highly lethal alphaherpesvirus that causes duck plague in birds of the order Anseriformes. The virus has caused huge economic losses to the poultry industry due to high morbidity and mortality and the cost of vaccination. DPV encodes 78 open reading frames (ORFs), and these genes are involved in various processes of the viral life cycle. Functional characterization of DPV genes is important for understanding the complex viral life cycle and DPV pathogenesis. Here, we identified a novel protein encoded by LORF3, and our data suggest that the LORF3 protein is involved in the occurrence and development of duck plague.
Insights
This study identifies a novel duck plague virus (DPV) protein, LORF3, involved in viral pathogenesis and disease severity. Deleting this early gene reduces DPV replication and prevents thymus atrophy in vaccinated ducks.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Duck plague virus (DPV) is a lethal alphaherpesvirus causing significant economic losses in the poultry industry.
- DPV possesses unique genes, including LORF3, with largely unknown functions.
- Understanding DPV gene functions is crucial for controlling the disease.
Purpose of the Study:
- To investigate the expression and function of the novel DPV LORF3 protein.
- To determine the role of LORF3 in DPV replication and pathogenesis.
- To assess the impact of LORF3 deletion on DPV-induced disease and immune response.
Main Methods:
- Generation of specific polyclonal antibodies to detect LORF3 protein expression.
- Construction and characterization of a recombinant DPV lacking LORF3 expression.
- In vitro and in vivo assays to evaluate viral replication and pathogenicity.
- Assessment of thymus atrophy in DPV-vaccinated ducks with and without LORF3.
Main Results:
- The DPV LORF3 gene is an early gene encoding a nuclear protein involved in virion assembly.
- Lorf3 is not essential for viral replication but contributes to DPV replication and pathogenesis.
- Deletion of LORF3 reduces DPV-induced morbidity and mortality.
- Lorf3 deletion abrogated thymus atrophy in DPV-vaccinated ducks.
Conclusions:
- The study reveals the expression and function of the avian herpesvirus-specific LORF3 protein.
- LORF3 plays a significant role in DPV pathogenesis, contributing to disease severity.
- Targeting LORF3 could be a potential strategy for controlling duck plague.

