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Published on: June 15, 2018
Gene silencing in vitro and in vivo using intronic microRNAs
1Department of Cell and Neurobiology, Keck School of Medicine, University of Southern California, Los Angeles, CA, USA.
Abstract:
MicroRNAs (miRNAs), small single-stranded regulatory RNAs capable of interfering with intracellular messenger RNAs (mRNAs) that contain either complete or partial complementarity, are useful for the design of new therapies against cancer polymorphism and viral mutation. Numerous miRNAs have been reported to induce RNA interference (RNAi), a posttranscriptional gene-silencing mechanism. Recent evidence also indicates that they are involved in the transcriptional regulation of genome activities. They were first discovered in Caenorhabditis elegans as native RNA fragments that modulate a wide range of genetic regulatory pathways during embryonic development, and are now recognized as small gene silencers transcribed from the noncoding regions of a genome. In humans, nearly 97% of the genome is noncoding DNA, which varies from one individual to another, and changes in these sequences are frequently noted to manifest clinical and circumstantial malfunction. Type 2 myotonic dystrophy and fragile X syndrome were found to be associated with miRNAs derived from introns. Intronic miRNA is a new class of miRNAs derived from the processing of nonproteincoding regions of gene transcripts. The intronic miRNAs differ uniquely from previously described intergenic miRNAs in the requirement of RNA polymerase (Pol)-II and spliceosomal components for its biogenesis. Several kinds of intronic miRNAs have been identified in C. elegans, mouse, and human cells; however, neither function nor application has been reported. Here, we show for the first time that intron-derived miRNA is not only able to induce RNAi in mammalian cells but also in fish, chicken embryos, and adult mice, demonstrating the evolutionary preservation of this gene regulation system in vivo. These miRNA-mediated animal models provide artificial means to reproduce the mechanisms of miRNA-induced disease in vivo and will shed further light on miRNA-related therapies.
Insights
Intron-derived microRNAs (miRNAs) can induce RNA interference (RNAi) in various species, demonstrating evolutionary conservation. These findings pave the way for novel miRNA-based therapies and disease modeling.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- MicroRNAs (miRNAs) are small regulatory RNAs involved in gene silencing and transcriptional regulation.
- Intronic miRNAs, derived from noncoding DNA, are a distinct class requiring specific biogenesis pathways.
- Previous research identified intronic miRNAs but lacked functional and application data.
Purpose of the Study:
- To investigate the functional capacity of intron-derived microRNAs (miRNAs) in inducing RNA interference (RNAi).
- To demonstrate the evolutionary conservation and in vivo efficacy of intronic miRNAs across different species.
- To establish miRNA-mediated animal models for studying disease mechanisms and developing therapies.
Main Methods:
- Experimental induction of RNA interference using intron-derived miRNAs in mammalian cells.
- Testing the efficacy of intronic miRNAs in vivo in fish, chicken embryos, and adult mice.
- Analysis of evolutionary preservation of the intronic miRNA gene regulation system.
Main Results:
- Intron-derived miRNAs were shown to effectively induce RNA interference (RNAi) in mammalian cells.
- Functional RNAi mediated by intronic miRNAs was confirmed in vivo across diverse species including fish, birds, and mammals.
- The study demonstrated the evolutionary conservation of this gene regulation mechanism.
Conclusions:
- Intron-derived miRNAs are functional gene silencers with conserved activity across species.
- These findings support the development of novel therapeutic strategies targeting gene regulation.
- The established miRNA-mediated animal models offer valuable tools for disease research and drug discovery.
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