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Chitosan/Interfering RNA Nanoparticle Mediated Gene Silencing in Disease Vector Mosquito Larvae
Published on: March 25, 2015
Intron-derived small RNAs for silencing viral RNAs in mosquito cells
Priscilla Y L Tng1,2, Leonela Z Carabajal Paladino1, Michelle A E Anderson1
1Arthropod Genetics Group, The Pirbright Institute, Pirbright, United Kingdom.
Abstract:
Aedes aegypti and Ae. albopictus are the main vectors of mosquito-borne viruses of medical and veterinary significance. Many of these viruses have RNA genomes. Exogenously provided, e.g. transgene encoded, small RNAs could be used to inhibit virus replication, breaking the transmission cycle. We tested, in Ae. aegypti and Ae. albopictus cell lines, reporter-based strategies for assessing the ability of two types of small RNAs to inhibit a chikungunya virus (CHIKV) derived target. Both types of small RNAs use a Drosophila melanogaster pre-miRNA-1 based hairpin for their expression, either with perfect base-pairing in the stem region (shRNA-like) or containing two mismatches (miRNA-like). The pre-miRNA-1 stem loop structure was encoded within an intron; this allows co-expression of one or more proteins, e.g. a fluorescent protein marker tracking the temporal and spatial expression of the small RNAs in vivo. Three reporter-based systems were used to assess the relative silencing efficiency of ten shRNA-like siRNAs and corresponding miRNA-like designs. Two systems used a luciferase reporter RNA with CHIKV RNA inserted either in the coding sequence or within the 3' UTR. A third reporter used a CHIKV derived split replication system. All three reporters demonstrated that while silencing could be achieved with both miRNA-like and shRNA-like designs, the latter were substantially more effective. Dcr-2 was required for the shRNA-like siRNAs as demonstrated by loss of inhibition of the reporters in Dcr-2 deficient cell lines. These positive results in cell culture are encouraging for the potential use of this pre-miRNA-1-based system in transgenic mosquitoes.
Insights
Small RNAs can inhibit chikungunya virus (CHIKV) replication in mosquito cell lines. ShRNA-like small RNAs were more effective than miRNA-like designs, showing potential for transgenic mosquito applications.
Area of Science:
- Molecular Biology
- Virology
- Entomology
Background:
- Aedes aegypti and Ae. albopictus mosquitoes transmit significant arboviruses.
- RNA viruses are a major public health concern.
- RNA interference offers a potential strategy to control virus transmission.
Purpose of the Study:
- To evaluate small RNA-based strategies for inhibiting chikungunya virus (CHIKV) replication.
- To compare the efficacy of shRNA-like and miRNA-like small RNAs in mosquito cell lines.
- To assess the potential of a pre-miRNA-1 based system for use in transgenic mosquitoes.
Main Methods:
- Reporter-based assays in Ae. aegypti and Ae. albopictus cell lines.
- Utilized luciferase and split replication systems to monitor CHIKV inhibition.
- Tested shRNA-like and miRNA-like small RNAs derived from Drosophila melanogaster pre-miRNA-1.
- Assessed the role of Dicer-2 (Dcr-2) in small RNA-mediated silencing.
Main Results:
- Both shRNA-like and miRNA-like small RNAs demonstrated CHIKV silencing capabilities.
- shRNA-like designs were significantly more effective than miRNA-like designs.
- Dcr-2 was essential for the silencing activity of shRNA-like small RNAs.
- Reporter systems confirmed the efficacy of small RNA-mediated inhibition.
Conclusions:
- A pre-miRNA-1 based system can effectively inhibit CHIKV replication in mosquito cell lines.
- shRNA-like molecules show superior efficacy compared to miRNA-like molecules.
- The findings support the development of transgenic mosquitoes utilizing small RNA technology to control arbovirus transmission.
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