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Ruan W, et al.  (2011) Evolution of two modes of intrinsic RNA polymerase transcript cleavage. J Biol Chem 286(21):18701-7

Abstract: During gene transcription, the RNA polymerase (Pol) active center can catalyze RNA cleavage. This intrinsic cleavage activity is strong for Pol I and Pol III but very weak for Pol II. The reason for this difference is unclear because the active centers of the polymerases are virtually identical. Here we show that Pol II gains strong cleavage activity when the C-terminal zinc ribbon domain (C-ribbon) of subunit Rpb9 is replaced by its counterpart from the Pol III subunit C11. X-ray analysis shows that the C-ribbon has detached from its site on the Pol II surface and is mobile. Mutagenesis indicates that the C-ribbon transiently inserts into the Pol II pore to complement the active center. This mechanism is also used by transcription factor IIS, a factor that can bind Pol II and induce strong RNA cleavage. Together with published data, our results indicate that Pol I and Pol III contain catalytic C-ribbons that complement the active center, whereas Pol II contains a non-catalytic C-ribbon that is immobilized on the enzyme surface. Evolution of the Pol II system may have rendered mRNA transcript cleavage controllable by the dissociable factor transcription factor IIS to enable promoter-proximal gene regulation and elaborate 3'-processing and transcription termination.

Status: Published Type: Journal Article | Research Support, Non-U.S. Gov't PubMed ID: 21454497

Topics addressed in this paper

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Topics Genes linked to topics (#1 - 10 )
DST1 RPA12 RPB10 RPB11 RPB2 RPB3 RPB4 RPB5 RPB7 RPB8
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Topics Genes linked to topics (#11 - 15 )
RPB9 RPC10 RPC11 RPO21 RPO26
Evolution blue ball blue ball
Fungal Related Genes/Proteins blue ball blue ball
Mutants/Phenotypes blue ball blue ball
Non-Fungal Related Genes/Proteins blue ball blue ball
Primary Literature blue ball blue ball blue ball blue ball blue ball
Protein Physical Properties blue ball blue ball blue ball blue ball blue ball
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