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◆ Biosensors & bioelectronics2026-08-31

Double-end blocker and split input mediated CRISPR-Cas12a system for modular single-base mutation detection with low abundance.

Shizhen Li, Yangwei Liao, Xiaoxiang Wang, Guanbin Chen, Yifei Liu, Shutao Pan, Tingting Zhen, Xu Li, Feng Zhu, Renyi Qin

原始摘要(英文原文)· Original abstract
Traditional CRISPR-Cas12a mutation detection systems are limited by poor single-base specificity, target-specific crRNA redesign, and insufficient sensitivity for low-abundance mutations, restricting their clinical liquid biopsy applications. Herein, we developed a crRNA-universal, sensitive and specific CRISPR-Cas12a detection platform, termed DESIC (double-end blocker and split-input mediated CRISPR-Cas12a system), for single-base mutation detection. The DESIC system adopts two key structural designs: double-end blocker (DEB) and duplicated split-input (SIN). The DEB spatially isolates crRNA recognition and target-binding regions, enabling universal detection of various mutation sites without crRNA redesign. The SIN strategy amplifies thermodynamic differences from single-base mismatches, greatly improving single-nucleotide discrimination. We targeted four prevalent pancreatic cancer KRAS mutations (G12D, G12R, G12V, Q61H) and optimized the system to achieve optimal discrimination. The optimized DESIC system exhibited ultra-low limits of detection down to 0.01% mutant allele fraction with reliable linear quantitative performance. Clinical validation using 15 pairs of pancreatic cancer tissue and peripheral blood samples confirmed that DESIC results were highly consistent with gold-standard NGS data. With a flexible modular design, this low-cost, easy-operated platform can be readily extended to multiple tumor mutations, holding great potential for tumor liquid biopsy and early molecular diagnosis.
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Double-end blocker and split input mediated CRISPR-Cas12a system for modular single-base mutation detection with low abundance. — 科研速览 Science Skim