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Published on: June 24, 2019
Musashi binding elements in Zika and related Flavivirus 3'UTRs: A comparative study in silico
Adriano de Bernardi Schneider1, Michael T Wolfinger2
1Department of Medicine, University of California San Diego, 220 Dickinson St, Suite A, San Diego, CA, 92103, United States of America.
Abstract:
Zika virus (ZIKV) belongs to a class of neurotropic viruses that have the ability to cause congenital infection, which can result in microcephaly or fetal demise. Recently, the RNA-binding protein Musashi-1 (Msi1), which mediates the maintenance and self-renewal of stem cells and acts as a translational regulator, has been associated with promoting ZIKV replication, neurotropism, and pathology. Msi1 predominantly binds to single-stranded motifs in the 3' untranslated region (UTR) of RNA that contain a UAG trinucleotide in their core. We systematically analyzed the properties of Musashi binding elements (MBEs) in the 3'UTR of flaviviruses with a thermodynamic model for RNA folding. Our results indicate that MBEs in ZIKV 3'UTRs occur predominantly in unpaired, single-stranded structural context, thus corroborating experimental observations by a biophysical model of RNA structure formation. Statistical analysis and comparison with related viruses show that ZIKV MBEs are maximally accessible among mosquito-borne flaviviruses. Our study addresses the broader question of whether other emerging arboviruses can cause similar neurotropic effects through the same mechanism in the developing fetus by establishing a link between the biophysical properties of viral RNA and teratogenicity. Moreover, our thermodynamic model can explain recent experimental findings and predict the Msi1-related neurotropic potential of other viruses.
Insights
Zika virus RNA binding elements (MBEs) are highly accessible, promoting replication and neurotropism. This study links viral RNA structure to fetal abnormalities, aiding in predicting neurotropic potential in other arboviruses.
Area of Science:
- Virology
- Molecular Biology
- Biophysics
Background:
- Zika virus (ZIKV) is a neurotropic virus linked to congenital infections, microcephaly, and fetal demise.
- The RNA-binding protein Musashi-1 (Msi1) promotes ZIKV replication, neurotropism, and pathology by binding to specific RNA motifs.
Purpose of the Study:
- To analyze the biophysical properties of Musashi binding elements (MBEs) in ZIKV 3'UTRs.
- To establish a link between viral RNA structure, Msi1 binding, and teratogenicity.
- To predict the neurotropic potential of emerging arboviruses.
Main Methods:
- Systematic analysis of MBE properties in flavivirus 3'UTRs using a thermodynamic RNA folding model.
- Biophysical modeling of RNA structure formation.
- Statistical analysis and comparison with related viruses.
Main Results:
- ZIKV MBEs are predominantly in single-stranded contexts, consistent with experimental data.
- ZIKV MBEs exhibit maximal accessibility among mosquito-borne flaviviruses.
- The thermodynamic model explains experimental findings and predicts Msi1-related neurotropic potential.
Conclusions:
- ZIKV RNA structure facilitates Msi1 binding, contributing to neurotropism and teratogenicity.
- Accessible MBEs in ZIKV 3'UTRs correlate with its pathological effects.
- The developed model can predict the neurotropic potential of other viruses based on RNA biophysical properties.

