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CRISPR Gene Editing Tool for MicroRNA Cluster Network Analysis
Published on: April 25, 2022
The microRNA (miRNA): overview of the RNA genes that modulate gene function
Shao-Yao Ying1, Donald C Chang, Shi-Lung Lin
1Department of Cell and Neurobiology, Keck School of Medicine, University of Southern California, 1333 San Pablo Street, BMT-403, Los Angeles, CA, 90033, USA. sying@usc.edu
Abstract:
MicroRNAs (miRNAs), widely distributed, small regulatory RNA genes, target both messenger RNA (mRNA) degradation and suppression of protein translation based on sequence complementarity between the miRNA and its targeted mRNA. Different names have been used to describe various types of miRNA. During evolution, RNA retroviruses or transgenes invaded the eukaryotic genome and inserted in the non-coding regions of DNA, conceivably acting as transposon-like jumping genes, providing defense from viral invasion and fine-tuning of gene expression as a secondary level of gene modulation in eukaryotes. When a transposon is inserted in the intron, it becomes an intronic miRNA, taking advantage of the protein synthesis machinery, i.e., mRNA transcription and splicing, as a means for processing and maturation. Recently, miRNAs have been found to play an important, but not life-threatening, role in embryonic development. They might play a pivotal role in diverse biological systems in various organisms, facilitating a quick response and accurate plotting of body physiology and structures. Based on these unique properties, man-made intronic miRNAs have been developed for in vitro evaluation of gene function, in vivo gene therapy and generation of transgenic animal models. The biogenesis and identification of miRNAs, potential applications, and future directions for research are presented, hopefully providing a guideline for further miRNA and gene function studies.
Insights
MicroRNAs (miRNAs) are small regulatory RNA molecules that control gene expression. Intronic miRNAs, derived from transposons, offer unique applications in gene therapy and research.
Area of Science:
- Molecular Biology
- Genetics
- RNA Biology
Background:
- MicroRNAs (miRNAs) are small regulatory RNA molecules that modulate gene expression by targeting messenger RNA (mRNA).
- Transposons, including viral sequences, have integrated into eukaryotic genomes, contributing to gene regulation.
- Intronic miRNAs arise from transposon insertions within introns, utilizing cellular machinery for their processing.
Purpose of the Study:
- To review the biogenesis and identification of microRNAs.
- To explore the role of intronic miRNAs in biological systems and embryonic development.
- To present potential applications of engineered intronic miRNAs in research and therapeutics.
Main Methods:
- Literature review on miRNA biogenesis and function.
- Analysis of the evolutionary origins of intronic miRNAs from transposons.
- Discussion of experimental approaches for miRNA identification and application.
Main Results:
- miRNAs regulate gene expression through mRNA degradation and translational suppression.
- Intronic miRNAs leverage host cell machinery for maturation.
- miRNAs play crucial roles in embryonic development and physiological regulation.
Conclusions:
- Engineered intronic miRNAs have potential for in vitro gene function studies, in vivo gene therapy, and creating transgenic models.
- Further research into miRNA biogenesis and function is warranted.
- This review provides a guideline for future studies on miRNAs and gene function.
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