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Published on: May 24, 2017
Divergent Requirement for a DNA Repair Enzyme during Enterovirus Infections
Sonia Maciejewski1, Joseph H C Nguyen1, Fernando Gómez-Herreros2
1Department of Microbiology and Molecular Genetics, School of Medicine, University of California, Irvine, California, USA.
Unlabelled:
Viruses of the Enterovirus genus of picornaviruses, including poliovirus, coxsackievirus B3 (CVB3), and human rhinovirus, commandeer the functions of host cell proteins to aid in the replication of their small viral genomic RNAs during infection. One of these host proteins is a cellular DNA repair enzyme known as 5' tyrosyl-DNA phosphodiesterase 2 (TDP2). TDP2 was previously demonstrated to mediate the cleavage of a unique covalent linkage between a viral protein (VPg) and the 5' end of picornavirus RNAs. Although VPg is absent from actively translating poliovirus mRNAs, the removal of VPg is not required for the in vitro translation and replication of the RNA. However, TDP2 appears to be excluded from replication and encapsidation sites during peak times of poliovirus infection of HeLa cells, suggesting a role for TDP2 during the viral replication cycle. Using a mouse embryonic fibroblast cell line lacking TDP2, we found that TDP2 is differentially required among enteroviruses. Our single-cycle viral growth analysis shows that CVB3 replication has a greater dependency on TDP2 than does poliovirus or human rhinovirus replication. During infection, CVB3 protein accumulation is undetectable (by Western blot analysis) in the absence of TDP2, whereas poliovirus protein accumulation is reduced but still detectable. Using an infectious CVB3 RNA with a reporter, CVB3 RNA could still be replicated in the absence of TDP2 following transfection, albeit at reduced levels. Overall, these results indicate that TDP2 potentiates viral replication during enterovirus infections of cultured cells, making TDP2 a potential target for antiviral development for picornavirus infections.
Importance:
Picornaviruses are one of the most prevalent groups of viruses that infect humans and livestock worldwide. These viruses include the human pathogens belonging to the Enterovirus genus, such as poliovirus, coxsackievirus B3 (CVB3), and human rhinovirus. Diseases caused by enteroviruses pose a major problem for public health and have significant economic impact. Poliovirus can cause paralytic poliomyelitis. CVB3 can cause hand, foot, and mouth disease and myocarditis. Human rhinovirus is the causative agent of the common cold, which has a severe economic impact due to lost productivity and severe health consequences in individuals with respiratory dysfunction, such as asthma. By gaining a better understanding of the enterovirus replication cycle, antiviral drugs against enteroviruses may be developed. Here, we report that the absence of the cellular enzyme TDP2 can significantly decrease viral yields of poliovirus, CVB3, and human rhinovirus, making TDP2 a potential target for an antiviral against enterovirus infections.
Insights
The cellular enzyme tyrosyl-DNA phosphodiesterase 2 (TDP2) is crucial for enterovirus replication. Its absence significantly reduces viral yields, highlighting TDP2 as a potential antiviral target for picornavirus infections.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Enteroviruses, including poliovirus, coxsackievirus B3 (CVB3), and human rhinovirus, are significant human pathogens causing diseases with major public health and economic impacts.
- These viruses hijack host cell machinery for replication, necessitating a deep understanding of host-pathogen interactions to develop effective antiviral strategies.
- The cellular enzyme 5' tyrosyl-DNA phosphodiesterase 2 (TDP2) plays a role in processing viral RNA, specifically by cleaving the protein VPg from the 5' end of picornavirus RNAs.
Purpose of the Study:
- To investigate the role of the host DNA repair enzyme TDP2 in the replication cycle of various enteroviruses.
- To determine if TDP2 is essential for the replication of poliovirus, CVB3, and human rhinovirus.
- To evaluate TDP2 as a potential therapeutic target for antiviral drug development against picornavirus infections.
Main Methods:
- Utilized a mouse embryonic fibroblast cell line genetically engineered to lack TDP2.
- Performed single-cycle viral growth analyses to compare replication efficiencies of different enteroviruses in the absence of TDP2.
- Assessed viral protein accumulation using Western blot analysis.
- Employed an infectious CVB3 RNA reporter system to quantify viral RNA replication.
Main Results:
- TDP2 is differentially required for enterovirus replication, with CVB3 showing a higher dependency than poliovirus or human rhinovirus.
- In TDP2-deficient cells, CVB3 protein accumulation was undetectable, while poliovirus protein accumulation was significantly reduced but still detectable.
- CVB3 RNA replication, though reduced, still occurred in TDP2-deficient cells following transfection, indicating partial redundancy or alternative pathways.
- TDP2 appears to potentiate viral replication during enterovirus infections in cultured cells.
Conclusions:
- The cellular enzyme TDP2 significantly enhances the replication of enteroviruses, particularly CVB3.
- The differential requirement for TDP2 among enteroviruses suggests distinct replication strategies or dependencies.
- TDP2 represents a promising and potentially druggable target for developing novel antiviral therapies against a broad range of picornavirus infections.
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