Kim Won Jong, Sato Yuichi, Akaike Toshihiro, Maruyama Atsushi
Department of Biomolecular Engineering, Graduate School of Bioscience and Biotechnology, Tokyo Institute of Technology, 4259 Nagatsuta-cho, Midori, Yokohama 226-8501, Japan.
Nat Mater. 2003 Dec;2(12):815-20. doi: 10.1038/nmat1021. Epub 2003 Nov 23.
Genetic diagnoses, such as single nucleotide polymorphism (SNP) typing, allow elucidation of gene-based physiological differences, such as susceptibility to diseases and response to drugs, among individuals. Many detection technologies, including allele-specific hybridization, allele-specific primer extension and oligonucleotide ligation, are being used to discriminate SNP alleles. These methods still have many unsolved practical issues. In general they require adequate and specific hybridizations of primer or probe DNAs with target DNAs. This frequently needs optimization of the probe/primer structures and operating conditions. In nature, highly homology-sensitive hybridization is assisted by a nucleic acid chaperone that reduces the energy barrier associated with breakage and reassociation of nucleic base pairs. Here we report a simple, quick, precise but enzyme-free method for SNP analysis. The method uses cationic comb-type copolymers (CCCs) producing high nucleic acid chaperone activities. A single-base mismatch in 20-mer DNA can be detected within a few minutes at ambient temperatures (25-37 degrees C). Even without careful optimization processes, the method has the sensitivity to detect the mismatches causing subtle changes (Delta T(m) equals approximately 1 degree C) in duplex thermal stability. CCCs may have various bioanalytical applications where precise hybridization of nucleic acids is needed.
基因诊断,如单核苷酸多态性(SNP)分型,能够阐明个体之间基于基因的生理差异,如疾病易感性和药物反应。包括等位基因特异性杂交、等位基因特异性引物延伸和寡核苷酸连接在内的许多检测技术,都被用于区分SNP等位基因。这些方法仍然存在许多尚未解决的实际问题。一般来说,它们需要引物或探针DNA与靶DNA进行充分且特异的杂交。这常常需要优化探针/引物结构和操作条件。在自然界中,高度同源性敏感的杂交由核酸伴侣辅助,该核酸伴侣可降低与核酸碱基对断裂和重新结合相关的能量屏障。在此,我们报告一种简单、快速、精确且无需酶的SNP分析方法。该方法使用具有高核酸伴侣活性的阳离子梳型共聚物(CCC)。在环境温度(25 - 37摄氏度)下,几分钟内就能检测出20聚体DNA中的单碱基错配。即使无需仔细的优化过程,该方法也具有检测导致双链热稳定性细微变化(ΔT(m)约等于1摄氏度)的错配的灵敏度。CCC可能在需要核酸精确杂交的各种生物分析应用中发挥作用。