Our long term goal is to elucidate the mechanisms of initiation and regulation of RNA polymerase II transcription. Our experimental approach is to reconstitute these processes with purified proteins from yeast, and to bring the power of combined biochemical and genetic analysis to bear on the mechanisms. Fractionation of yeast extracts during the previous project period yielded five initiation factors, termed a, b, d, e, and g, all of which are required for transcription by purified RNA polymerase II. The recent cloning of genes for the factors and expression of the proteins in yeast or E. coli should enable the culmination of our efforts during the coming project period.
Specific aims of the proposed research are as follows: 1. To complete the development of a fully defined transcription system with a high efficiency of template utilization. 2. To complete the cloning of genes for factor b, to identify the subunit responsible for phosphorylation of the C-terminal repeat domain (CTD) of RNA polymerase II, to isolate and characterize a """"""""holoenzyme"""""""" form of factor b, and to determine the essential role of factor b in transcription. 3. To resolve multisubunit complexes containing TATA-binding protein (TBP) on the basis of functional assays for basal and activated transcription, and to pursue a speculative idea about the role of TBP and factor e in duplex DNA melting by the isolation of a novel class of factor e mutant. 4. To identify the region(s) of factor e involved in functional interaction with RNA polymerase Il and in determination of the transcription start site by analysis of mutants and of chimeras between cerevisiae and pombe factor e's. 5. To identify the regions of the 54 kD subunit of factor g involved in DNA-binding and polymerase interaction by mutagenesis and construction of yeast-mammalian chimeras. 6. To determine the pattern of protein-protein interactions in an RNA polymerase II """"""""holoenzyme"""""""" containing all initiation factors except TBP by quantitative sequential binding analysis, and to clone or identify the genes for six additional polypeptides of a second holoenzyme containing Srb proteins. 7. To identify and characterize intermediates on the transcription initiation pathway. 8. To form stable, paused elongation complexes. An assay based on adsorption of histidine-tagged RNA polymerase to Ni-agarose will be employed to reveal the components required and assess the role of factor g in complex stability. 9. To purify and characterize the previously described mediator(s) of transcriptional activation on the basis of three different functional assays. 10. To assess the physiologic significance of transcriptional activation in vitro by studies with TBP and activator protein mutants. Effects upon transcriptional activation in vitro and in vivo will be compared. 11. To clone the genes for seven as yet unidentified polypeptides in a complex with Swi and Snf proteins, and to investigate the role of the complex in transcriptional activation in vitro. 12. To resolve and reconstitute a CTD-dependent transcription system. At least two novel factors. one positive- and the other negative-acting are involved.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM036659-10
Application #
2178478
Study Section
Molecular Biology Study Section (MBY)
Project Start
1986-07-01
Project End
1998-06-30
Budget Start
1995-07-01
Budget End
1996-06-30
Support Year
10
Fiscal Year
1995
Total Cost
Indirect Cost
Name
Stanford University
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
800771545
City
Stanford
State
CA
Country
United States
Zip Code
94305
Lorch, Yahli; Maier-Davis, Barbara; Kornberg, Roger D (2018) Histone Acetylation Inhibits RSC and Stabilizes theĀ +1 Nucleosome. Mol Cell 72:594-600.e2
Nagai, Shigeki; Davis, Ralph E; Mattei, Pierre Jean et al. (2017) Chromatin potentiates transcription. Proc Natl Acad Sci U S A 114:1536-1541
Eagen, Kyle P; Aiden, Erez Lieberman; Kornberg, Roger D (2017) Polycomb-mediated chromatin loops revealed by a subkilobase-resolution chromatin interaction map. Proc Natl Acad Sci U S A 114:8764-8769
Robinson, Philip J; Trnka, Michael J; Bushnell, David A et al. (2016) Structure of a Complete Mediator-RNA Polymerase II Pre-Initiation Complex. Cell 166:1411-1422.e16
Lorch, Yahli; Kornberg, Roger D (2015) Chromatin-remodeling and the initiation of transcription. Q Rev Biophys 48:465-70
Guan, Shenheng; Trnka, Michael J; Bushnell, David A et al. (2015) Deconvolution method for specific and nonspecific binding of ligand to multiprotein complex by native mass spectrometry. Anal Chem 87:8541-6
Eagen, Kyle P; Hartl, Tom A; Kornberg, Roger D (2015) Stable Chromosome Condensation Revealed by Chromosome Conformation Capture. Cell 163:934-46
Fazal, Furqan M; Meng, Cong A; Murakami, Kenji et al. (2015) Real-time observation of the initiation of RNA polymerase II transcription. Nature 525:274-7
Lu, Jonathan; Trnka, Michael J; Roh, Soung-Hun et al. (2015) Improved Peak Detection and Deconvolution of Native Electrospray Mass Spectra from Large Protein Complexes. J Am Soc Mass Spectrom 26:2141-51
Murakami, Kenji; Mattei, Pierre-Jean; Davis, Ralph E et al. (2015) Uncoupling Promoter Opening from Start-Site Scanning. Mol Cell 59:133-8

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