清脆的
计算生物学
多路复用
分子诊断学
生物
泌尿系统
纳米技术
计算机科学
生物信息学
遗传学
材料科学
基因
电信
内分泌学
作者
Liangliang Hao,Renee T. Zhao,Nicole L. Welch,Edward K.W. Tan,Qian Zhong,Nour Saida Harzallah,Chayanon Ngambenjawong,Henry Ko,Heather E. Fleming,Pardis C. Sabeti,Sangeeta N. Bhatia
标识
DOI:10.1038/s41565-023-01372-9
摘要
Synthetic biomarkers, bioengineered sensors that generate molecular reporters in diseased microenvironments, represent an emerging paradigm in precision diagnostics. Despite the utility of DNA barcodes as a multiplexing tool, their susceptibility to nucleases in vivo has limited their utility. Here we exploit chemically stabilized nucleic acids to multiplex synthetic biomarkers and produce diagnostic signals in biofluids that can be 'read out' via CRISPR nucleases. The strategy relies on microenvironmental endopeptidase to trigger the release of nucleic acid barcodes and polymerase-amplification-free, CRISPR-Cas-mediated barcode detection in unprocessed urine. Our data suggest that DNA-encoded nanosensors can non-invasively detect and differentiate disease states in transplanted and autochthonous murine cancer models. We also demonstrate that CRISPR-Cas amplification can be harnessed to convert the readout to a point-of-care paper diagnostic tool. Finally, we employ a microfluidic platform for densely multiplexed, CRISPR-mediated DNA barcode readout that can potentially evaluate complex human diseases rapidly and guide therapeutic decisions.
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