Tianjin Key Laboratory for Modern Drug Delivery and High-Efficiency, Collaborative Innovation Center of Chemical Science and Engineering, School of Pharmaceutical Science and Technology, Tianjin University, Tianjin 300072, China.
Frontiers Science Center for Synthetic Biology (Ministry of Education), Tianjin University, Tianjin 300072, China.
Science. 2021 Apr 30;372(6541):512-516. doi: 10.1126/science.abe4882.
DNA modifications vary in form and function but generally do not alter Watson-Crick base pairing. Diaminopurine (Z) is an exception because it completely replaces adenine and forms three hydrogen bonds with thymine in cyanophage S-2L genomic DNA. However, the biosynthesis, prevalence, and importance of Z genomes remain unexplored. Here, we report a multienzyme system that supports Z-genome synthesis. We identified dozens of globally widespread phages harboring such enzymes, and we further verified the Z genome in one of these phages, phage SH-Ab 15497, by using liquid chromatography with ultraviolet and mass spectrometry. The Z genome endows phages with evolutionary advantages for evading the attack of host restriction enzymes, and the characterization of its biosynthetic pathway enables Z-DNA production on a large scale for a diverse range of applications.
DNA 修饰在形式和功能上各不相同,但通常不会改变沃森-克里克碱基配对。二氨基嘌呤(Z)是一个例外,因为它完全取代腺嘌呤,并与噬藻体 S-2L 基因组 DNA 中的胸腺嘧啶形成三个氢键。然而,Z 基因组的生物合成、普遍性和重要性仍未得到探索。在这里,我们报告了一个支持 Z 基因组合成的多酶系统。我们鉴定了数十种具有这些酶的广泛分布的噬菌体,并且我们通过使用带有紫外线和质谱的液相色谱法,进一步验证了其中一种噬菌体,即噬菌体 SH-Ab 15497 中的 Z 基因组。Z 基因组赋予噬菌体逃避宿主限制酶攻击的进化优势,并且其生物合成途径的表征使得 Z-DNA 可以大规模生产,用于各种应用。