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In Vitro Transcribed RNA-based Luciferase Reporter Assay to Study Translation Regulation in Poxvirus-infected Cells
Published on: May 1, 2019
The linker domain of poly(rC) binding protein 2 is a major determinant in poliovirus cap-independent translation
Polen Sean1, Joseph H C Nguyen, Bert L Semler
1Department of Microbiology and Molecular Genetics, School of Medicine, University of California, Irvine, CA 92697, USA.
Abstract:
Poliovirus, a member of the enterovirus genus in the family Picornaviridae, is the causative agent of poliomyelitis. Translation of the viral genome is mediated through an internal ribosomal entry site (IRES) encoded within the 5' noncoding region (5' NCR). IRES elements are highly structured RNA sequences that facilitate the recruitment of ribosomes for translation. Previous studies have shown that binding of a cellular protein, poly(rC) binding protein 2 (PCBP2), to a major stem-loop structure in the genomic 5' NCR is necessary for the translation of picornaviruses containing type I IRES elements, including poliovirus, coxsackievirus, and human rhinovirus. PCBP1, an isoform that shares approximately 90% amino acid identity to PCBP2, cannot efficiently stimulate poliovirus IRES-mediated translation, most likely due to its reduced binding affinity to stem-loop IV within the poliovirus IRES. The primary differences between PCBP1 and PCBP2 are found in the so-called linker domain between the second and third K-homology (KH) domains of these proteins. We hypothesize that the linker region of PCBP2 augments binding to poliovirus stem-loop IV RNA. To test this hypothesis, we generated six PCBP1/PCBP2 chimeric proteins. The recombinant PCBP1/PCBP2 chimeric proteins were able to interact with poliovirus stem-loop I RNA and participate in protein-protein interactions. We demonstrated that the PCBP1/PCBP2 chimeric proteins with the PCBP2 linker, but not with the PCBP1 linker, were able to interact with poliovirus stem-loop IV RNA, and could subsequently stimulate poliovirus IRES-mediated translation. In addition, using a monoclonal anti-PCBP2 antibody (directed against the PCBP2 linker domain) in mobility shift assays, we showed that the PCBP2 linker domain modulates binding to poliovirus stem-loop IV RNA via a mechanism that is not inhibited by the antibody.
Insights
The linker region of poly(rC) binding protein 2 (PCBP2) is crucial for poliovirus translation. This finding explains why PCBP2 efficiently stimulates poliovirus internal ribosomal entry site (IRES)-mediated translation, unlike its counterpart PCBP1.
Area of Science:
- Virology
- Molecular Biology
- RNA Biology
Background:
- Poliovirus translation relies on an internal ribosomal entry site (IRES) in its 5' noncoding region (5' NCR).
- Poly(rC) binding protein 2 (PCBP2) is essential for poliovirus IRES-mediated translation, while its isoform, PCBP1, is not.
- Differences in the linker domain between the K-homology (KH) domains of PCBP1 and PCBP2 are suspected to cause this functional disparity.
Purpose of the Study:
- To investigate the role of the linker domain in PCBP2's ability to bind poliovirus stem-loop IV RNA.
- To determine if the PCBP2 linker domain is responsible for stimulating poliovirus IRES-mediated translation.
Main Methods:
- Construction and analysis of PCBP1/PCBP2 chimeric proteins.
- RNA binding assays using poliovirus stem-loop IV RNA.
- Mobility shift assays with a monoclonal anti-PCBP2 antibody.
Main Results:
- PCBP1/PCBP2 chimeric proteins containing the PCBP2 linker domain effectively bound to poliovirus stem-loop IV RNA.
- Chimeric proteins with the PCBP2 linker domain stimulated poliovirus IRES-mediated translation.
- The PCBP2 linker domain's interaction with stem-loop IV RNA was confirmed and shown to be modulated by the linker itself.
Conclusions:
- The linker domain of PCBP2 is critical for its enhanced binding to poliovirus stem-loop IV RNA.
- This specific interaction mediated by the PCBP2 linker domain is essential for efficient poliovirus IRES-mediated translation.
- The PCBP2 linker domain plays a key role in regulating viral RNA translation through specific protein-RNA interactions.
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