EPR Distance Measurements on Long Non-coding RNAs Empowered by Genetic Alphabet Expansion Transcription

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Abstract

We present herein a novel nitroxide spin label-containing RNA triphosphate TPT3NO and its application for site-specific spin-labeling of RNA through in vitro transcription using an expanded genetic alphabet. Our strategy allows the facile preparation of spin-labeled RNAs with sizes ranging from short RNA oligonucleotides to large, complex RNA molecules with over 370 nucleotides by standard in vitro transcription. As a proof of concept, inter-spin distance distributions are measured by pulsed electron paramagnetic resonance (EPR) spectroscopy in short self-complementary RNA sequences and in a well-studied 185 nucleotide non-coding RNA, the B. subtilis glmS ribozyme. The approach is then applied to probe for the first time the folding of the 377 nucleotide A-region of the long non-coding RNA Xist, by PELDOR.

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Domnick, C., Eggert, F., Wuebben, C., Bornewasser, L., Hagelueken, G., Schiemann, O., & Kath-Schorr, S. (2020). EPR Distance Measurements on Long Non-coding RNAs Empowered by Genetic Alphabet Expansion Transcription. Angewandte Chemie - International Edition, 59(20), 7891–7896. https://doi.org/10.1002/anie.201916447

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