清脆的
放大器
基因分型
环介导等温扩增
计算生物学
SNP基因分型
底漆(化妆品)
核酸
生物
微流控
DNA
Cas9
SNP公司
遗传学
分子反转探针
纳米技术
DNA微阵列
反应条件
核酸检测
DNA测序
聚合酶链反应
基因组编辑
化学
反式激活crRNA
基序列
生物系统
计算机科学
作者
Xiaolong Wu,Yanan Li,Yumeng Cao,Zibin Zhao,Hongyu Lu,Shaochong Liang,Grace Lui,Denise P. C. Chan,I‐Ming Hsing
标识
DOI:10.1038/s41467-026-75358-1
摘要
One-pot CRISPR diagnostics face a fundamental incompatibility: isothermal nucleic acid amplification enables rapid target accumulation, whereas CRISPR activation irreversibly consumes those substrates, destabilizing reaction kinetics. Here we show that reaction order can be programmed into DNA primers through thermodynamic design. Differences in primer-binding strength create two sequential amplification stages, delaying CRISPR activation until enough amplicons have accumulated without physical separation or external control. The design also introduces the protospacer adjacent motif (PAM), a short sequence required for CRISPR recognition, through the primer rather than relying on its presence in the native target, expanding target accessibility while retaining single-nucleotide discrimination. An ordinary differential equation model captures the threshold behavior and establishes a predictable framework for primer design. Building on this principle, we develop Thermodynamically Encoded Molecular Programming for One-pot diagnostics (TEMPO), which achieves attomolar sensitivity within 30 min and enables sequencing-concordant SNP genotyping and pathogen detection in a single-step microfluidic format.
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