College of Life Science and Technology, Beijing Advanced Innovation Center for Soft Matter Science and Engineering , Beijing University of Chemical Technology , Beijing 100029 , China.
Department of Biomedical Engineering , Tufts University , Medford , Massachusetts 02155 , United States.
Anal Chem. 2018 Nov 20;90(22):13655-13662. doi: 10.1021/acs.analchem.8b03963. Epub 2018 Nov 8.
The distinctive nuclease activity toward nucleic acid substrates enables various applications in analytical chemistry and dynamic DNA nanotechnology. λ Exonuclease is a widely used tool for the processing of PCR products, and DNA sequencing. This enzyme also shows promise for reducing the leakage (i.e., activation in absence of a correct input) in DNA-based analytical methods and nanotechnology due to its sensitivity to mismatches. However, the selectivity of λ exonuclease for single-mismatch in most applications is not high. Inspired by the increased specificity of dynamic probes in DNA nanotechnology, we enhanced the single-mismatch selectivity of λ exonuclease by using very short double-stranded DNA (dsDNA) as the substrate. From the bulk fluorescence measurements, short perfectly matched (PM) substrate which is as a correct input can be effectively digested, but the existence of single-mismatch drastically reduces the digestion rate. Real-time single-molecule kinetics analysis reveals that PM substrate can be selectively stabilized by the binding of λ exonuclease, which combines with the differential stability of transient hybridization of short substrates to yield high single-mismatch selectivity. An excellent selective assay for a single-nucleotide mutation in KRAS was demonstrated, which permits detecting this mutation from cell line at as low as 0.02%, holding potential for detecting rare mutations in circulating tumor DNA of early stage cancers.
核酸底物的独特核酸酶活性使其在分析化学和动态 DNA 纳米技术中具有广泛的应用。λ 外切核酸酶是一种广泛用于处理 PCR 产物和 DNA 测序的工具。由于其对错配的敏感性,该酶在基于 DNA 的分析方法和纳米技术中也有望减少漏检(即在没有正确输入的情况下激活)。然而,在大多数应用中,λ 外切核酸酶对单错配的选择性并不高。受 DNA 纳米技术中动态探针特异性提高的启发,我们通过使用非常短的双链 DNA(dsDNA)作为底物来提高 λ 外切核酸酶的单错配选择性。从批量荧光测量结果来看,作为正确输入的短完全匹配(PM)底物可以被有效消化,但单错配的存在大大降低了消化速率。实时单分子动力学分析表明,PM 底物可以通过 λ 外切核酸酶的结合得到选择性稳定,这结合了短底物瞬态杂交的差异稳定性,从而产生高的单错配选择性。该方法可用于检测 KRAS 中的单核苷酸突变,在细胞系中低至 0.02%的水平即可检测到该突变,有望用于检测早期癌症循环肿瘤 DNA 中的罕见突变。