Kimoto Michiko, Hirao Ichiro
Institute of Bioengineering and Nanotechnology , 31 Biopolis Way, The Nanos, #09-01, Singapore 138669.
RIKEN Center for Life Science Technologies , 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa 230-0045, Japan.
ACS Synth Biol. 2017 Oct 20;6(10):1944-1951. doi: 10.1021/acssynbio.7b00165. Epub 2017 Jul 26.
Genetic alphabet expansion technology, the introduction of unnatural bases or base pairs into replicable DNA, has rapidly advanced as a new synthetic biology area. A hydrophobic unnatural base pair between 7-(2-thienyl)imidazo[4,5-b]pyridine (Ds) and 2-nitro-4-propynylpyrrole (Px) exhibited high fidelity as a third base pair in PCR. SELEX methods using the Ds-Px pair enabled high-affinity DNA aptamer generation, and introducing a few Ds bases into DNA aptamers extremely augmented their affinities and selectivities to target proteins. Here, to further scrutinize the functions of this highly hydrophobic Ds base, the thermal stabilities of double-stranded DNAs (dsDNA) containing a noncognate Ds-Ds or G-Ds pair were examined. The thermal stability of the Ds-Ds self-pair was as high as that of the natural G-C pair, and apart from the generally higher stability of the G-C pair than that of the A-T pair, most of the 5'-pyrimidine-Ds-purine-3' sequences, such as CDsA and TDsA, exhibited higher stability than the 5'-purine-Ds-pyrimidine-3' sequences, such as GDsC and ADsC, in dsDNAs. This trait enabled the GC-content-independent control of the thermal stability of the designed dsDNA fragments. The melting temperatures of dsDNA fragments containing the Ds-Ds pair can be predicted from the nearest-neighbor parameters including the Ds base. In addition, the noncognate G-Ds pair can efficiently distinguish its neighboring cognate natural base pairs from noncognate pairs. We demonstrated that real-time PCR using primers containing Ds accurately detected a single-nucleotide mismatch in target DNAs. These unique properties of the Ds base that affect the stabilities of the neighboring base pairs could impart new functions to DNA molecules and technologies.
遗传字母表扩展技术,即将非天然碱基或碱基对引入可复制DNA,作为一个新的合成生物学领域已迅速发展。7-(2-噻吩基)咪唑并[4,5-b]吡啶(Ds)与2-硝基-4-丙炔基吡咯(Px)之间的疏水非天然碱基对在PCR中作为第三个碱基对表现出高保真度。使用Ds-Px对的SELEX方法能够生成高亲和力的DNA适配体,并且在DNA适配体中引入几个Ds碱基极大地增强了它们对靶蛋白的亲和力和选择性。在此,为了进一步研究这种高度疏水的Ds碱基的功能,检测了含有非同源Ds-Ds或G-Ds对的双链DNA(dsDNA)的热稳定性。Ds-Ds自配对的热稳定性与天然G-C对一样高,并且除了G-C对比A-T对通常具有更高的稳定性之外,在dsDNA中,大多数5'-嘧啶-Ds-嘌呤-3'序列,如CDsA和TDsA,比5'-嘌呤-Ds-嘧啶-3'序列,如GDsC和ADsC,表现出更高的稳定性。这一特性使得能够对设计的dsDNA片段的热稳定性进行与GC含量无关的控制。含有Ds-Ds对的dsDNA片段的解链温度可以根据包括Ds碱基在内的最近邻参数来预测。此外,非同源G-Ds对能够有效地将其相邻的同源天然碱基对与非同源碱基对区分开来。我们证明,使用含有Ds的引物进行实时PCR能够准确检测靶DNA中的单核苷酸错配。Ds碱基影响相邻碱基对稳定性的这些独特性质可以赋予DNA分子和技术新的功能。