Shekhar AC, et al. (2023) Site-directed biochemical analyses reveal that the switchable C-terminus of Rpc31 contributes to RNA polymerase III transcription initiation. Nucleic Acids Res 51(9):4223-4236 PMID:36484109
Shekhar AC, et al. (2023) Mutational and biophysical analyses reveal a TFIIIC binding region in the TFIIF-related Rpc53 subunit of RNA polymerase III. J Biol Chem 299(7):104859 PMID:37230389
Khoo SK, et al. (2018) The TFIIE-related Rpc82 subunit of RNA polymerase III interacts with the TFIIB-related transcription factor Brf1 and the polymerase cleft for transcription initiation. Nucleic Acids Res 46(3):1157-1166 PMID:29177422
Wei YY and Chen HT (2018) Functions of the TFIIE-Related Tandem Winged-Helix Domain of Rpc34 in RNA Polymerase III Initiation and Elongation. Mol Cell Biol 38(4) PMID:29180511
Chang YL, et al. (2017) Yeast Cip1 is activated by environmental stress to inhibit Cdk1-G1 cyclins via Mcm1 and Msn2/4. Nat Commun 8(1):56 PMID:28676626
Cheung S, et al. (2016) Ty1 Integrase Interacts with RNA Polymerase III-specific Subcomplexes to Promote Insertion of Ty1 Elements Upstream of Polymerase (Pol) III-transcribed Genes. J Biol Chem 291(12):6396-411 PMID:26797132
Hu HL, et al. (2015) A Region of Bdp1 Necessary for Transcription Initiation That Is Located within the RNA Polymerase III Active Site Cleft. Mol Cell Biol 35(16):2831-40 PMID:26055328
Khoo SK, et al. (2014) Mapping the protein interaction network for TFIIB-related factor Brf1 in the RNA polymerase III preinitiation complex. Mol Cell Biol 34(3):551-9 PMID:24277937
Lafrance-Vanasse J, et al. (2012) Structural and functional characterization of interactions involving the Tfb1 subunit of TFIIH and the NER factor Rad2. Nucleic Acids Res 40(12):5739-50 PMID:22373916
Wu CC, et al. (2012) RNA polymerase III subunit architecture and implications for open promoter complex formation. Proc Natl Acad Sci U S A 109(47):19232-7 PMID:23132938
Ho CW, et al. (2011) UBC9 autosumoylation negatively regulates sumoylation of septins in Saccharomyces cerevisiae. J Biol Chem 286(24):21826-34 PMID:21518767
Wu CC, et al. (2011) The TFIIF-like Rpc37/53 dimer lies at the center of a protein network to connect TFIIIC, Bdp1, and the RNA polymerase III active center. Mol Cell Biol 31(13):2715-28 PMID:21536656
Eichner J, et al. (2010) Position of the general transcription factor TFIIF within the RNA polymerase II transcription preinitiation complex. EMBO J 29(4):706-16 PMID:20033062
Chen HT, et al. (2007) The positions of TFIIF and TFIIE in the RNA polymerase II transcription preinitiation complex. Nat Struct Mol Biol 14(8):696-703 PMID:17632521
Chen HT and Hahn S (2004) Mapping the location of TFIIB within the RNA polymerase II transcription preinitiation complex: a model for the structure of the PIC. Cell 119(2):169-80 PMID:15479635
Chen HT and Hahn S (2003) Binding of TFIIB to RNA polymerase II: Mapping the binding site for the TFIIB zinc ribbon domain within the preinitiation complex. Mol Cell 12(2):437-47 PMID:14536083
Chen HT, et al. (2000) Structure of a (Cys3His) zinc ribbon, a ubiquitous motif in archaeal and eucaryal transcription. Protein Sci 9(9):1743-52 PMID:11045620