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Distinct role of subunits of the Arabidopsis RNA polymerase II elongation factor PAF1C in transcriptional reprogramming
Obermeyer, Simon, Stöckl, Richard
, Schnekenburger, Tobias, Moehle, Christoph, Schwartz, Uwe
and Grasser, Klaus D.
(2022)
Distinct role of subunits of the Arabidopsis RNA polymerase II elongation factor PAF1C in transcriptional reprogramming.
Frontiers in Plant Science 13, p. 974625.
Date of publication of this fulltext: 21 Oct 2022 13:17
Article
DOI to cite this document: 10.5283/epub.53094
Abstract
Transcript elongation by RNA polymerase II (RNAPII) is dynamic and highly regulated, thereby contributing to the implementation of gene expression programs during plant development or in response to environmental cues. The heterohexameric polymerase-associated factor 1 complex (PAF1C) stabilizes the RNAPII elongation complex promoting efficient transcript synthesis. In addition, PAF1C links ...
Transcript elongation by RNA polymerase II (RNAPII) is dynamic and highly regulated, thereby contributing to the implementation of gene expression programs during plant development or in response to environmental cues. The heterohexameric polymerase-associated factor 1 complex (PAF1C) stabilizes the RNAPII elongation complex promoting efficient transcript synthesis. In addition, PAF1C links transcriptional elongation with various post-translational histone modifications at transcribed loci. We have exposed Arabidopsis mutants deficient in the PAF1C subunits ELF7 or CDC73 to elevated NaCl concentrations to provoke a transcriptional response. The growth of elf7 plants was reduced relative to that of wildtype under these challenging conditions, whereas cdc73 plants exhibited rather enhanced tolerance. Profiling of the transcriptional changes upon NaCl exposure revealed that cdc73 responded similar to wildtype. Relative to wildtype and cdc73, the transcriptional response of elf7 plants was severely reduced in accord with their greater susceptibility to NaCl. The data also imply that CDC73 is more relevant for the transcription of longer genes. Despite the fact that both ELF7 and CDC73 are part of PAF1C the strikingly different transcriptional response of the mutants upon NaCl exposure suggests that the subunits have (partially) specific functions.
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| Item type | Article | ||||
| Journal or Publication Title | Frontiers in Plant Science | ||||
| Publisher: | Frontiers | ||||
|---|---|---|---|---|---|
| Place of Publication: | LAUSANNE | ||||
| Volume: | 13 | ||||
| Page Range: | p. 974625 | ||||
| Date | 29 September 2022 | ||||
| Institutions | Biology, Preclinical Medicine > Institut für Pflanzenwissenschaften > Lehrstuhl für Zellbiologie und Pflanzenphysiologie (Prof. Dr. Klaus Grasser) Chemistry and Pharmacy > Central Analytical Services | ||||
| Identification Number |
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| Keywords | SACCHAROMYCES-CEREVISIAE; HISTONE METHYLATION; COMPLEX; EXPRESSION; CHROMATIN; REGULATOR; COMPONENT; PARAFIBROMIN; MUTANTS; COMPASS; Arabidopsis thaliana; chromatin; histone modifications; PAF1C; RNA polymerase II; transcript elongation | ||||
| Dewey Decimal Classification | 500 Science > 540 Chemistry & allied sciences 500 Science > 570 Life sciences | ||||
| Status | Published | ||||
| Refereed | Yes, this version has been refereed | ||||
| Created at the University of Regensburg | Yes | ||||
| URN of the UB Regensburg | urn:nbn:de:bvb:355-epub-530947 | ||||
| Item ID | 53094 |
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