Related Experiment Video
Updated: Jul 28, 2025

06:06
Fluorescent Visualization of Mango-tagged RNA in Polyacrylamide Gels via a Poststaining Method
Published on: June 21, 2019
8.6K
Double-stemmed and split structural variants of fluorescent RNA Mango aptamers
Jeremy Herrera-Gutierrez1, Steven J Burden1, Sarah E Kobernat1
1Biomolecular Sciences Graduate Programs, Boise State University, Boise, Idaho 83725, USA.
Summary
Researchers developed new RNA Mango aptamer variants with improved fluorescence and design flexibility. These double-stemmed constructs offer enhanced brightness and potential for RNA imaging and detecting RNA-RNA interactions.
Area of Science:
- Molecular Biology
- Biochemistry
- Biotechnology
Background:
- Fluorogenic aptamers, like RNA Mango, are valuable for RNA quantification and tracking.
- The single-stem structure of existing RNA Mango aptamers limits design modifications.
- G-quadruplex structures are key to RNA Mango's function.
Purpose of the Study:
- To engineer novel RNA Mango aptamer variants with enhanced structural features.
- To improve fluorescence properties and expand design possibilities for RNA Mango aptamers.
- To explore applications in RNA imaging and detection of RNA-RNA interactions.
Main Methods:
- Designed and synthesized double-stemmed RNA Mango aptamer variants.
- Performed fluorescence saturation analysis to quantify binding and brightness.
- Introduced and analyzed mutations in the second stem's linker region.
- Demonstrated the function of a split, bimolecular Mango aptamer.
Main Results:
- Double-stemmed RNA Mango variants exhibited up to ~75% brighter fluorescence compared to the original.
- Mutations in the second linker suggested indirect ligand interaction influencing fluorescence.
- The second stem's linker offers potential for rational design and reselection.
- A bimolecular Mango aptamer was successfully created and functional in vitro.
Conclusions:
- New double-stemmed RNA Mango aptamers offer enhanced fluorescence and greater designability.
- The second stem provides a platform for engineering improved aptamer performance.
- Bimolecular Mango aptamers show promise for detecting RNA-RNA interactions.
- These advancements expand the utility of RNA Mango aptamers for diverse biological applications.
Related Concept Videos
RNA-seq
10.1K
RNA sequencing, or RNA-Seq, is a high-throughput sequencing technology used to study the transcriptome of a cell. Transcriptomics helps to interpret the functional elements of a genome and identify the molecular constituents of an organism. Additionally, it also helps in understanding the development of an organism and the occurrence of diseases.
Before the discovery of RNA-seq, microarray-based methods and Sanger sequencing were used for transcriptome analysis. However, while...
Before the discovery of RNA-seq, microarray-based methods and Sanger sequencing were used for transcriptome analysis. However, while...
10.1K
RNA Structure
71.7K
Overview
The basic structure of RNA consists of a five-carbon sugar and one of four nitrogenous bases. Although most RNA is single-stranded, it can form complex secondary and tertiary structures. Such structures play essential roles in the regulation of transcription and translation.
Different Types of RNA Have the Same Basic Structure
There are three main types of ribonucleic acid (RNA): messenger RNA (mRNA), transfer RNA (tRNA), and ribosomal RNA (rRNA). All three RNA types consist of a...
The basic structure of RNA consists of a five-carbon sugar and one of four nitrogenous bases. Although most RNA is single-stranded, it can form complex secondary and tertiary structures. Such structures play essential roles in the regulation of transcription and translation.
Different Types of RNA Have the Same Basic Structure
There are three main types of ribonucleic acid (RNA): messenger RNA (mRNA), transfer RNA (tRNA), and ribosomal RNA (rRNA). All three RNA types consist of a...
71.7K
RNA Splicing
56.5K
Splicing is the process by which eukaryotic RNA is edited before its translation into protein. The RNA strand transcribed from eukaryotic DNA is called the primary transcript. The primary transcripts that become mRNAs are called precursor messenger RNAs (pre-mRNAs). Eukaryotic pre-mRNA contains alternating sequences of exons and introns. Exons are nucleotide sequences that code for proteins, whereas introns are the non-coding regions. In RNA splicing, introns are removed and exons are bonded...
56.5K

