Abstract CrRNA engineering has emerged as a pivotal strategy for extending CRISPR–Cas13a biosensing. However, structural modulation of the direct repeat (DR) region remains exceptionally challenging due to its intricate architecture and the high energetic barrier of the Cas13a–crRNA interface, which is conventionally viewed as a rigid and immutable scaffold. Here, we demonstrate that the DR region is instead a programmable topological element with unexpected structural plasticity. By systematically engineering the DR through sequence insertion and structural splitting, we identified multiple DR variants that retain robust catalytic activity. Crucially, this topological reconfiguration enables Cas13a activity to be precisely gated by unmodified nucleic acid blockers, a level of regulation unattainable with the wild-type crRNA. Building on this flexible modulation, we developed Dre-CRISPR, a DR-engineered platform that couples target-triggered DR restoration to a self-reinforcing autocatalytic loop. This self-amplifying system provides a 2 × 106-fold sensitivity enhancement over nonamplified systems. Furthermore, the Dre-CRISPR platform extends the diagnostic scope of Cas13a to a broader spectrum of analytes, ranging from microRNAs to enzymatic activities and heavy metal ions. Our findings redefine the crRNA scaffold as a versatile signaling node and provide a generalizable framework for developing high-sensitivity, self-amplifying CRISPR biosensors through topology-driven guide RNA engineering.
Wei Ding, Xiao-Min Yang, Yu-Tong Yang et al.· Nucleic Acids Research· 0 citations
Magnetic electrochemical sensors (MECs) are robust bioanalytical devices because of their high selectivity, strong antifouling ability, low cost, and simple operation properties. However, since many biomolecules are nonelectroactive, achieving their electrochemical determination is still a huge challenge. In this report, a sensitive electrochemical sensor was developed by glutaraldehyde cross-linking of electroactive tyrosine (Tyr) on the glycoprotein chains at the magnetic molecularly imprinted nanoparticle surface. Thus, the electrochemical detection of glycoproteins can be indirectly achieved by the determination of Tyr. The usefulness of the method was evaluated using the carcinoembryonic antigen (CEA) and ovalbumin (OVA) as model glycoproteins. The proposed method exhibited linear responses for OVA and CEA over concentration ranges of 10 ng mL–1 to 10 μg mL–1 and 10 ng mL–1 to 1 μg mL–1, with LODs (3σ) of 2.03 ng mL–1 and 1.56 ng mL–1, respectively. Consequently, the proposed signal conversion strategy provides new ideas for designing and preparing a novel magnetic electrochemical sensor.
Yiting Shi, Lili Sun, Xue-Bing Wang et al.· Journal of Physical Chemistr...· 0 citations
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