It is shown that bacterial RNA polymerase faithfully transcribes an eight-letter genetic alphabet and recognises unnatural base pairs through mechanisms similar to those used for natural DNA.
Abstract
Expanded genetic alphabets with synthetic nucleotides can greatly increase the chemical diversity of nucleic acids, enabling new molecular functions. Because cellular transcription is executed by multi-subunit RNA polymerases, the compatibility of unnatural base pairs with this machinery is essential for engineering expanded genetic systems. Here we demonstrate that Escherichia coli RNA polymerase efficiently transcribes an eight-letter genetic alphabet with two orthogonal unnatural base pairs: P:Z and B:S pairs. To overcome G:Z misincorporation, we synthesize a higher-fidelity analogue, termed Z*, in which the C5 nitro group is replaced with a carboxamide. To elucidate substrate-recognition mechanisms, we determine four cryo-electron microscopy structures of RNA polymerase incorporating dZ:PTP or dP:Z*TP at 2.42–2.75 Å resolution. These structures, together with our early work on S:B pair, show that E. coli RNA polymerase is able to efficiently recognize these unnatural base pairs in the same manner as natural base pairs. Collectively, these results establish the feasibility of an eight-letter genetic alphabet for transcription. Expanded genetic alphabets can increase the functional diversity of nucleic acids, but their compatibility with cellular transcription is uncertain. Here, the authors show that bacterial RNA polymerase faithfully transcribes an eight‑letter genetic alphabet and recognises unnatural base pairs through mechanisms similar to those used for natural DNA.
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