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Updated: Jul 5, 2026

Artificial RNA Polymerase II Elongation Complexes for Dissecting Co-transcriptional RNA Processing Events
Published on: May 13, 2019
Molecular evolution of the RNA polymerase II CTD
Rob D Chapman1, Martin Heidemann, Corinna Hintermair
1Institute for Clinical Molecular Biology and Tumour Genetics, Helmholtz Center for Environmental Health, Center for Integrated Protein Science (CiPSM), D-81377 Munich, Germany. drrobchapman@googlemail.com
Abstract:
In higher eukaryotes, an unusual C-terminal domain (CTD) is crucial to the function of RNA polymerase II in transcription. The CTD consists of multiple heptapeptide repeats; differences in the number of repeats between organisms and their degree of conservation have intrigued researchers for two decades. Here, we review the evolution of the CTD at the molecular level. Several primitive motifs have been integrated into compound heptads that can be readily amplified. The selection of phosphorylatable residues in the heptad repeat provided the opportunity for advanced gene regulation in eukaryotes. Current findings suggest that the CTD should be considered as a collection of continuous overlapping motifs as opposed to a specific functional unit defined by a heptad.
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