Related Experiment Video
Updated: Feb 3, 2026

Optical Tweezers to Study RNA-Protein Interactions in Translation Regulation
Published on: February 12, 2022
Minute Virus of Canines NP1 Protein Interacts with the Cellular Factor CPSF6 To Regulate Viral Alternative RNA
Yanming Dong1, Olufemi O Fasina1, David J Pintel2
1Department of Molecular Microbiology and Immunology, University of Missouri School of Medicine, Bond Life Sciences Center, Columbia, Missouri, USA.
Abstract:
The NP1 protein of minute virus of canines (MVC) governs production of the viral capsid proteins via its role in pre-mRNA processing. NP1 suppresses polyadenylation and cleavage at its internal site, termed the proximal polyadenylation (pA)p site, to allow accumulation of RNAs that extend into the capsid gene, and it enhances splicing of the upstream adjacent third intron, which is necessary to properly enter the capsid protein open reading frame. We find the (pA)p region to be complex. It contains redundant classical cis-acting signals necessary for the cleavage and polyadenylation reaction and splicing of the adjacent upstream third intron, as well as regions outside the classical motifs that are necessary for responding to NP1. NP1, but not processing mutants of NP1, bound to MVC RNA directly. The cellular RNA processing factor CPSF6 interacted with NP1 in transfected cells and participated with NP1 to modulate its effects. These experiments further characterize the role of NP1 in parvovirus gene expression.IMPORTANCE The Parvovirinae are small nonenveloped icosahedral viruses that are important pathogens in many animal species, including humans. Unlike other parvoviruses, the bocavirus genus controls expression of its capsid proteins via alternative RNA processing, by both suppressing polyadenylation at an internal site, termed the proximal polyadenylation (pA)p site, and by facilitating splicing of an upstream adjacent intron. This regulation is mediated by a small genus-specific protein, NP1. Understanding the cis-acting targets of NP1, as well as the cellular factors with which it interacts, is necessary to more clearly understand this unique mode of parvovirus gene expression.
Insights
Minute virus of canines NP1 protein regulates capsid production by controlling RNA processing. It suppresses polyadenylation and enhances splicing, a unique mechanism in parvovirus gene expression.
Area of Science:
- Molecular Biology
- Virology
- RNA Processing
Background:
- Parvoviridae are small, nonenveloped viruses causing disease in animals and humans.
- Bocavirus genus uniquely regulates capsid protein expression through alternative RNA processing.
- NP1 protein is central to this regulation, mediating polyadenylation suppression and intron splicing.
Purpose of the Study:
- To characterize the NP1 protein's role in minute virus of canines (MVC) gene expression.
- To identify the cis-acting elements targeted by NP1.
- To understand the interaction of NP1 with cellular factors.
Main Methods:
- Analysis of the proximal polyadenylation (pA)p site.
- RNA binding assays with NP1 protein.
- Co-immunoprecipitation to detect protein interactions.
Main Results:
- The (pA)p region contains complex cis-acting signals responsive to NP1.
- NP1 directly binds to MVC RNA.
- The cellular factor CPSF6 interacts with NP1 and modulates its function.
Conclusions:
- NP1 directly regulates viral RNA processing by binding viral RNA.
- NP1 interacts with CPSF6 to control polyadenylation and splicing.
- This study elucidates a unique parvovirus gene expression strategy.
Related Concept Videos
Alternative RNA Splicing
There are five types of alternative RNA splicing that vary in the ways the pre-mRNA segments are removed or retained in the mature mRNA. The first...
Alternative RNA Splicing
Chromatin Structure Regulates pre-mRNA Processing
The chromatin structure, especially...
RNA Polymerase II Accessory Proteins
Regulated Protein Degradation
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
Transcription Factors

