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Preparation of Multifunctional Silk-Based Microcapsules Loaded with DNA Plasmids Encoding RNA Aptamers and Riboswitches
Published on: October 8, 2021
Ingeniería de 바이오센서 de aptámeros de ARN modulares guiada por estructura para la detecciónMultiplex de circRNA en un
Yao Fu1, Xuejuan Pei2, Cheng Chen1
1Department of Forensic Medicine, Chongqing Medical University, Chongqing, 400016, China.
Abstract:
Circular RNAs (circRNAs) are a class of endogenous biological macromolecules characterized by their covalently closed, single-stranded structures, which confer exceptional stability and sequence-specific back-splice junctions (BSJs). Exploiting these unique structural features for diagnostic purposes remains challenging, particularly in multiplexed formats. Here, we report a modular biosensing platform that integrates the structural specificity of circRNA BSJ recognition with the conformation-dependent fluorescence emission of engineered RNA aptamers. This system, termed FRA-MOML, utilizes ligase-assisted assembly to convert target recognition into a transcribable DNA template, which is then amplified by T7 RNA polymerase to produce structural switches-fluorescent RNA aptamers (e.g., iSpinach and Mango). These aptamers, upon folding into their specific three-dimensional structures, bind to small-molecule fluorogens and emit distinct fluorescent signals. By decoupling the structural recognition module (probes) from the signal-generating macromolecule (aptamer), our platform achieves femtomolar sensitivity, excellent single-nucleotide discrimination (especially at structurally critical ligation junctions), and one-pot multiplex detection without labeled probes. We validated this structure-based design by simultaneously quantifying two bladder cancer-associated circRNAs (circSMARCA5 and circSLC38A1) in complex biological matrices, including serum, cell lines, and tumor tissues. The plug-and-play programmability, rooted in the modular architecture of nucleic acids, offers a versatile tool not only for circRNA detection but also for studying structure-function relationships of diverse biological macromolecules.

