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February 2, 2026Analytical Chemistry5 citations

Intrinsic crRNA Scaffold Dynamic Reassembly Powered Cas12a Cascade Amplification for Multiplexed Detection

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CZCheng ZhaHZHongshuai ZhangMSMei Su

Key Points

  • This research aims to develop a biosensor using crRNA scaffold reassembly for enhanced target detection sensitivity.
  • Developed a reassembly biosensor that couples catalytic nucleic acid cleavage with Cas12a amplification.
  • Utilized an intrinsic amplifier to regenerate crRNA and facilitate signal output.
  • Tested detection capabilities on various targets including miRNAs and small molecules.
  • Demonstrated excellent sensitivity and specificity for multiple targets.
  • Achieved accurate miRNA detection in cell lines and clinical samples, validated by RT-qPCR.
  • Showed robust performance in complex matrices like serum and environmental water.

Abstract

The reassembly of the intrinsic crRNA scaffold with complementary ssDNA activates Cas12a trans-cleavage activity, thereby overcoming the limitations of conventional split crRNA engineering strategies and resulting in expanded target detection range, reduced background interference, and improved signal-to-noise ratio. Here, we have developed a novel scaffold RNA reassembly biosensor that ingeniously couples catalytic nucleic acid (ribozyme or DNAzyme) cleavage as a signal transduction element with the Cas12a cascade amplification, enabling highly sensitive detection of diverse targets including miRNAs, small molecules, and metal ions. The system employs an intrinsic amplifier that integrates signal output with crRNA regeneration. Each Cas12a cleavage event not only generates a fluorescent signal but also releases scaffold RNA, which promptly reassembles into functional crRNA complexes, thereby driving continuous Cas12a activation. This crRNA scaffold dynamic reassembly circuit enables cascade signal amplification without requiring additional crRNA or activators, thereby facilitating one-pot detection with shortened reaction time, while simultaneously enhancing detection sensitivity and minimizing aerosol contamination risks. Experimental results demonstrated excellent sensitivity, specificity, and robustness in complex matrices such as serum and environmental water samples. Moreover, the system achieved accurate miRNA detection in different cell lines and clinical samples, which was corroborated by lateral flow analysis and showed strong agreement with the RT-qPCR gold-standard method. Owing to its modular design and powerful amplification capacity, this platform holds broad potential for versatile biosensing applications.

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Cite This Study

Zha et al. (2026) studied this question.

synapsesocial.com/papers/6980ff19c1c9540dea811d53https://doi.org/10.1021/acs.analchem.5c07867
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Proximity-Inducible CRISPR/Cas12a Activity by Scaffold RNA Assembly for Sensing Applications2025
  2. 2DNAzyme-Enhanced CRISPR/Cas12a Cascade Enables Isothermal, One-Pot RNA Diagnostics2026
  3. 3From Self-Processing to Responsive Assembly Enabling an Autocatalytic Cas13a Circuit for Enhanced Biosensing2026
  4. 4Cas12a-assisted split crRNA complex for analysis and detection of diverse entities2025
  5. 5Scaffold-Proximal DNA Extensions Enhance Cas12a Trans-cleavage for Direct and Broad-Scope Nucleic Acid Detection2026 · 1 citations