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A Study of the Complexation of MercuryII with Dicysteinyl Tetrapeptides by Electrospray Ionization Mass Spectrometry
Published on: January 8, 2016
Structure-transformable poly (thymine) activators of CRISPR/Cas12a for highly sensitive detection of mercury (II)
David Septian Sumanto Marpaung1, Ya-Yu Chen2, Murali Mohana Rao Singuru2
1International Ph.D. Program in Biomedical and Materials Science, Tunghai University, Taichung 407224, Taiwan; Department of Biosystems Engineering, Institut Teknologi Sumatera, Lampung Selatan 35365, Indonesia.
Abstract:
Off-target effects of the CRISPR/Cas system refer to suboptimal activity triggered by activators containing unintended modifications beyond the intended target, which can lead to unwanted genetic changes-particularly problematic in therapeutic applications. In this study, the off-target effects of Cas12a are strategically repurposed for advanced Hg2+ detection by leveraging a structure-transformable activator. The proposed approach integrates a two-segment poly-T DNA activator with the CRISPR/Cas12a system, where the activator forms hairpin structures through thymine-Hg2+-thymine base pairing in response to mercury concentrations. Increasing Hg2+ concentrations promote the formation and stability of hairpin DNA, significantly suppressing Cas12a activity and resulting in an ON-OFF fluorescence signal modulated by trans-cleavage activity. The effect of varying thymine segment lengths in the poly-T activator was investigated to increase the hybridization burden for crRNA, ultimately enhancing detection sensitivity. The Hg2+-dependent structural transformation of the activator was characterized using circular dichroism (CD), while urea and native PAGE analyses confirmed the catalytic behavior of both cis- and trans-cleavage activities, respectively, as a function of Hg2+ concentration. The trans-cleavage efficiency (kcat/KM) decreased by 3.03-fold as Hg2+ concentration increased from 0 to 40 nM. Under optimized conditions, the biosensor demonstrated a linear detection range of 0-30 nM, a detection limit as low as 0.372 nM, and high selectivity for Hg2+ over other metal ions. Furthermore, the biosensor was successfully applied for Hg2+ detection in field water samples. These findings establish a robust foundation for exploiting the off-target effects of the CRISPR/Cas12a system for the efficient detection of heavy metals in environmental monitoring.
Insights
Researchers repurposed CRISPR/Cas12a off-target effects for mercury detection. A novel DNA activator forms hairpins with mercury, suppressing Cas12a activity for sensitive environmental monitoring.
Area of Science:
- Biotechnology
- Environmental Science
- Molecular Biology
Background:
- CRISPR/Cas systems, while powerful, can exhibit off-target effects leading to unintended genetic modifications.
- Off-target activities present challenges in therapeutic applications but offer potential for novel biosensing strategies.
Purpose of the Study:
- To repurpose the off-target effects of the CRISPR/Cas12a system for sensitive and selective detection of mercury ions (Hg2+).
- To develop a novel biosensor utilizing a structure-transformable DNA activator for real-time Hg2+ monitoring.
Main Methods:
- Integration of a two-segment poly-T DNA activator with the CRISPR/Cas12a system.
- Leveraging thymine-Hg2+-thymine base pairing to induce hairpin formation and modulate Cas12a trans-cleavage activity.
- Characterization using circular dichroism (CD), urea-PAGE, and native PAGE to analyze structural changes and catalytic efficiency.
Main Results:
- Increasing Hg2+ concentrations promoted hairpin formation, suppressing Cas12a activity and generating an ON-OFF fluorescence signal.
- Optimized biosensor achieved a linear detection range of 0-30 nM and a low detection limit of 0.372 nM for Hg2+.
- Demonstrated high selectivity for Hg2+ and successful application in field water sample analysis.
Conclusions:
- The study successfully repurposed CRISPR/Cas12a off-target effects for advanced Hg2+ detection, showcasing a novel application in environmental monitoring.
- The developed biosensor offers a sensitive, selective, and robust platform for detecting heavy metals in environmental samples.
- This work provides a foundation for utilizing CRISPR-based off-target phenomena in developing innovative sensing technologies.
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