Department of Chemistry, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, USA.
J Am Chem Soc. 2009 Mar 11;131(9):3246-52. doi: 10.1021/ja807853m.
Predominantly hydrophobic unnatural nucleotides that selectively pair within duplex DNA as well as during polymerase-mediated replication have recently received much attention as the cornerstone of efforts to expand the genetic alphabet. We recently reported the results of a screen and subsequent lead hit optimization that led to identification of the unnatural base pair formed between the nucleotides dMMO2 and d5SICS. This unnatural base pair is replicated by the Klenow fragment of Escherichia coli DNA polymerase I with better efficiency and fidelity than other candidates reported in the literature. However, its replication remains significantly less efficient than a natural base pair, and further optimization is necessary for its practical use. To better understand and optimize the slowest step of replication of the unnatural base pair, the insertion of dMMO2 opposite d5SICS, we synthesized two dMMO2 derivatives, d5FM and dNaM, which differ from the parent nucleobase in terms of shape, hydrophobicity, and polarizability. We find that both derivatives are inserted opposite d5SICS more efficiently than dMMO2 and that overall the corresponding unnatural base pairs are generally replicated with higher efficiency and fidelity than the pair between dMMO2 and d5SICS. In fact, in the case of the dNaM:d5SICS heteropair, the efficiency of each individual step of replication approaches that of a natural base pair, and the minimum overall fidelity ranges from 10(3) to 10(4). In addition, the data allow us to propose a generalized model of unnatural base pair replication, which should aid in further optimization of the unnatural base pair and possibly in the design of additional unnatural base pairs that are replicated with truly natural-like efficiency and fidelity.
最近,具有疏水性的非天然核苷酸在双链 DNA 中以及在聚合酶介导的复制过程中能够选择性配对,作为扩展遗传密码子的基础受到了广泛关注。我们最近报道了筛选结果和后续的先导化合物优化,这导致鉴定了在核苷酸 dMMO2 和 d5SICS 之间形成的非天然碱基对。与文献中报道的其他候选物相比,这种非天然碱基对由大肠杆菌 DNA 聚合酶 I 的 Klenow 片段复制的效率和保真度更高。然而,其复制效率仍然明显低于天然碱基对,需要进一步优化才能实际应用。为了更好地理解和优化非天然碱基对复制的最慢步骤,即 dMMO2 插入到 d5SICS 对面,我们合成了两种 dMMO2 衍生物,d5FM 和 dNaM,它们在形状、疏水性和极化率方面与母体碱基不同。我们发现,这两种衍生物插入到 d5SICS 对面的效率都比 dMMO2 高,并且总的来说,相应的非天然碱基对的复制效率和保真度通常比 dMMO2 和 d5SICS 之间的碱基对更高。事实上,在 dNaM:d5SICS 杂碱基对的情况下,复制的每个单个步骤的效率接近天然碱基对,并且整体最小保真度范围为 10(3)到 10(4)。此外,这些数据使我们能够提出非天然碱基对复制的通用模型,这应该有助于进一步优化非天然碱基对,并可能设计出具有真正类似天然效率和保真度的额外非天然碱基对。