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Construction of Genetically Encoded Light-Up RNA Aptamers for Label-free and Ultrasensitive Detection of CircRNAs in
Ning-Ning Zhao1, Feng-Zheng Li1, Xinyi Zhang2
1College of Chemistry, Chemical Engineering and Materials Science, Shandong Normal University, Jinan 250014, China.
Abstract:
Circular RNAs (circRNAs) as endogenous non-coding RNAs are characterized by covalently closed circular structures, and they widely exist in mammalian cells. The aberrant expression of circRNAs may result in various diseases. Herein, we demonstrate the construction of genetically encoded light-up RNA aptamers for ultrasensitive and label-free detection of circRNA mitochondrial tRNA translation optimization 1 (circMTO1) in cancer cells and tissues. The light-up RNA aptamers are generated by proximity ligation-activated recombinase polymerase amplification (RPA)-assisted transcription amplification. When circMTO1 is present, it initiates the proximity ligation reaction, activating RPA to produce numerous long double-stranded DNAs containing T7 promoters. Subsequently, the RPA products are identified by T7 RNA polymerase, initiating the transcription amplification reaction to generate abundant Spinach RNA aptamers. Spinach RNA aptamers can bind with DFHBI (3,5-difluoro-4-hydroxybenzylidene imidazolidinone) dye to produce a distinct fluorescence signal with near-zero background. This biosensor exhibits excellent selectivity and high sensitivity with a limit of detection of 2.54 aM. It can accurately monitor cellular circMTO1 at the single-cell level and discriminate the expression of circMTO1 between breast cancer patient tissues and healthy tissues. Notably, this biosensor can be employed to measure other nucleic acids by altering the corresponding target recognition sequences, providing a valuable platform for cancer diagnosis and biomedical study.
Insights
We developed a novel biosensor for detecting circular RNA mitochondrial tRNA translation optimization 1 (circMTO1). This ultrasensitive, label-free method accurately identifies circMTO1 in cancer cells and tissues, aiding cancer diagnosis.
Area of Science:
- Biochemistry
- Molecular Biology
- Biotechnology
Background:
- Circular RNAs (circRNAs) are endogenous non-coding RNAs with a unique structure.
- Aberrant circRNA expression is linked to various diseases, including cancer.
- Accurate detection of specific circRNAs is crucial for disease diagnosis and research.
Purpose of the Study:
- To construct a genetically encoded light-up RNA aptamer biosensor.
- To achieve ultrasensitive and label-free detection of circRNA mitochondrial tRNA translation optimization 1 (circMTO1).
- To demonstrate the biosensor's utility in cancer cells, tissues, and for potential broader nucleic acid detection.
Main Methods:
- Proximity ligation-activated RPA-assisted transcription amplification.
- Generation of light-up RNA aptamers (Spinach RNA aptamers).
- Detection via DFHBI dye-induced fluorescence with T7 RNA polymerase amplification.
Main Results:
- The biosensor achieved ultrasensitive detection of circMTO1 with a limit of detection of 2.54 aM.
- Demonstrated high selectivity and label-free detection capabilities.
- Successfully monitored circMTO1 at the single-cell level and differentiated expression in patient tissues.
Conclusions:
- The developed biosensor offers a highly sensitive and selective platform for circMTO1 detection.
- This technology enables accurate monitoring of circMTO1 in biological samples.
- The adaptable platform holds potential for broader applications in cancer diagnosis and biomedical studies.
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