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Published on: May 1, 2019
A Poxvirus Decapping Enzyme Colocalizes with Mitochondria To Regulate RNA Metabolism and Translation and Promote
Shuai Cao1,2, Joshua A Molina1,2, Fernando Cantu2
1Department of Veterinary Pathobiology, College of Veterinary Medicine & Biomedical Sciences, Texas A&M University, College Station, Texas, USA.
Abstract:
Decapping enzymes remove the 5' cap of eukaryotic mRNA, leading to accelerated RNA decay. They are critical in regulating RNA homeostasis and play essential roles in many cellular and life processes. They are encoded in many organisms and viruses, including vaccinia virus, which was used as the vaccine to eradicate smallpox. Vaccinia virus encodes two decapping enzymes, D9 and D10, that are necessary for efficient viral replication and pathogenesis. However, the underlying molecular mechanisms regulating vaccinia decapping enzymes' functions are still largely elusive. Here, we demonstrated that vaccinia D10 almost exclusively colocalized with mitochondria. As mitochondria are highly mobile cellular organelles, colocalization of D10 with mitochondria can concentrate D10 locally and mobilize it to efficiently decap mRNAs. Mitochondria were barely observed in "viral factories," where viral transcripts are produced, suggesting that mitochondrial colocalization provides a spatial mechanism to preferentially decap cellular mRNAs over viral mRNAs. We identified three amino acids at the N terminus of D10 that are required for D10's mitochondrial colocalization. Loss of mitochondrial colocalization significantly impaired viral replication, reduced D10's ability to remove the RNA 5' cap during infection, and diminished D10's gene expression shutoff and mRNA translation promotion abilities. IMPORTANCE Decapping enzymes comprise many members from various organisms, ranging from plants, animals, and viruses. The mechanisms regulating their functions vary and are still largely unknown. Our study provides evidence that a vaccinia virus-encoded decapping enzyme, D10, colocalizes with mitochondria. Loss of mitochondrial colocalization significantly impairs viral replication, D10's gene expression shutoff, and mRNA translation promotion ability. Overall, our results suggest that mitochondrial colocalization is a spatial mechanism to concentrate D10 locally and mobilize it to efficiently and preferentially target cellular mRNAs for decapping and promote viral mRNA translation. Our results have broad impacts for understanding the functions and regulatory mechanisms of decapping enzymes.
Insights
Vaccinia virus decapping enzyme D10 targets host cell mitochondria, preferentially degrading cellular mRNA. This mitochondrial localization is crucial for viral replication and gene expression control.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Decapping enzymes regulate RNA homeostasis and are vital for cellular processes.
- Vaccinia virus, a poxvirus, encodes two decapping enzymes, D9 and D10, essential for its replication.
- The regulatory mechanisms of vaccinia decapping enzymes remain largely unknown.
Purpose of the Study:
- To investigate the molecular mechanisms regulating the function of vaccinia virus decapping enzyme D10.
- To determine the subcellular localization of D10 and its impact on viral processes.
- To identify key regions of D10 responsible for its localization and function.
Main Methods:
- Confocal microscopy to observe D10 colocalization with mitochondria.
- Site-directed mutagenesis to identify amino acids critical for D10 mitochondrial targeting.
- Analysis of viral replication, decapping activity, gene expression shutoff, and mRNA translation in D10 mutants.
Main Results:
- Vaccinia D10 predominantly colocalizes with mitochondria.
- Mitochondrial colocalization concentrates D10 and facilitates preferential decapping of cellular mRNAs.
- Specific N-terminal amino acids of D10 are required for mitochondrial localization.
- Loss of mitochondrial colocalization severely impairs viral replication and D10's functions.
Conclusions:
- Mitochondrial colocalization is a spatial regulatory mechanism for vaccinia D10.
- This localization allows D10 to efficiently target and degrade cellular mRNAs, promoting viral replication.
- Understanding D10-mitochondria interaction provides insights into decapping enzyme regulation and viral pathogenesis.
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