Shiyin Zhang, Siying Xie, Jin Wang, Xiaomin Zhang, Ying Cai, Xingyan Lai, Nan Min, Jing Qu, Bo Peng, Tingdong Li, Jun Zhang, Dahou Yang, Xiaolu Shi, Ningshao Xia, Shengxiang Ge
CRISPR/Cas12a combined with nucleic acid amplification enables highly specific and sensitive detection. However, its broader deployment is constrained by protospacer adjacent motif (PAM) dependence, multistep workflows, and limited reagent practicality. Here, we identify a PAM-independent Cas12a activator, termed mosaic DNA, which exhibits structural features intermediate between single-stranded DNA (ssDNA) and double-stranded DNA (dsDNA). Building on this finding, we develop a PAM-independent mosaic switch triggered by a solid-liquid phase transition, thereby addressing these limitations within a single platform. Distinct from previous reports, our experiments show that this activator is generated prior to the digestion of dsDNA into ssDNA by the lambda exonuclease, forming the basis of lambda exonuclease-driven Cas12a activation, a process we refer to as the mosaic switch. Mosaic switch can detect arbitrary dsDNA with sensitivity comparable to that of PAM-containing dsDNA, and maintain single-nucleotide discrimination. Lyophilizing mosaic switch reagents and encapsulating them in paraffin improve stability and usability, which also enables straightforward one-pot integration with recombinase polymerase amplification (RPA) via a solid-liquid phase transition. Applied directly to 58 extraction-free mpox clinical samples, this platform showed complete concordance (100%) with quantitative PCR. This CRISPR/Cas12a platform maintains analytical performance while broadening the range of targets, simplifying the workflow, and enhancing reagent practicality, showing great potential for clinical deployment.