RPB8/YOR224C Literature Guide Help

Other names published for RPB8: ABC14.5, YOR224C

RPB8 - Protein Physical Properties (42)

ReferenceOther Genes Addressed
Kaplan CD, et al.  (2012) Dissection of Pol II Trigger Loop Function and Pol II Activity-Dependent Control of Start Site Selection In Vivo. PLoS Genet 8(4):e1002627
Kellinger MW, et al.  (2012) 5-formylcytosine and 5-carboxylcytosine reduce the rate and substrate specificity of RNA polymerase II transcription. Nat Struct Mol Biol 19(8):831-3
Kellinger MW, et al.  (2012) Dissecting chemical interactions governing RNA polymerase II transcriptional fidelity. J Am Chem Soc 134(19):8231-40
Kuryan BG, et al.  (2012) Histone density is maintained during transcription mediated by the chromatin remodeler RSC and histone chaperone NAP1 in vitro. Proc Natl Acad Sci U S A 109(6):1931-6
Luo J, et al.  (2012) An integrated chemical cross-linking and mass spectrometry approach to study protein complex architecture and function. Mol Cell Proteomics 11(2):M111.008318
Zamft B, et al.  (2012) Nascent RNA structure modulates the transcriptional dynamics of RNA polymerases. Proc Natl Acad Sci U S A 109(23):8948-53
Blattner C, et al.  (2011) Molecular basis of Rrn3-regulated RNA polymerase I initiation and cell growth. Genes Dev 25(19):2093-105
Cheung AC, et al.  (2011) Structural basis of initial RNA polymerase II transcription. EMBO J 30(23):4755-63
Mosley AL, et al.  (2011) Highly reproducible label free quantitative proteomic analysis of RNA polymerase complexes. Mol Cell Proteomics 10(2):M110.000687
Ruan W, et al.  (2011) Evolution of two modes of intrinsic RNA polymerase transcript cleavage. J Biol Chem 286(21):18701-7
Sigurdsson S, et al.  (2010) Evidence that transcript cleavage is essential for RNA polymerase II transcription and cell viability. Mol Cell 38(2):202-10
Hodges C, et al.  (2009) Nucleosomal fluctuations govern the transcription dynamics of RNA polymerase II. Science 325(5940):626-8
Alic N, et al.  (2007) Selectivity and proofreading both contribute significantly to the fidelity of RNA polymerase III transcription. Proc Natl Acad Sci U S A 104(25):10400-5
Galburt EA, et al.  (2007) Backtracking determines the force sensitivity of RNAP II in a factor-dependent manner. Nature 446(7137):820-3
Kashkina E, et al.  (2007) Multisubunit RNA polymerases melt only a single DNA base pair downstream of the active site. J Biol Chem 282(30):21578-82
Yildirim Y and Doruker P  (2004) Collective motions of RNA polymerases. Analysis of core enzyme, elongation complex and holoenzyme. J Biomol Struct Dyn 22(3):267-80
Mondal N, et al.  (2003) Elongation by RNA polymerase II on chromatin templates requires topoisomerase activity. Nucleic Acids Res 31(17):5016-24
Komissarova N, et al.  (2002) Shortening of RNA:DNA hybrid in the elongation complex of RNA polymerase is a prerequisite for transcription termination. Mol Cell 10(5):1151-62
Bhargava P and Kassavetis GA  (1999) Abortive initiation by Saccharomyces cerevisiae RNA polymerase III. J Biol Chem 274(37):26550-6
Matsuzaki H, et al.  (1994) Analysis of RNA chain elongation and termination by Saccharomyces cerevisiae RNA polymerase III. J Mol Biol 235(4):1173-92
Hammond CI and Holland MJ  (1983) Purification of yeast RNA polymerases using heparin agarose affinity chromatography. Transcriptional properties of the purified enzymes on defined templates. J Biol Chem 258(5):3230-41
Bell GI, et al.  (1977) Phosphorylation of yeast DNA-dependent RNA polymerases in vivo and in vitro. Isolation of enzymes and identification of phosphorylated subunits. J Biol Chem 252(9):3082-91
Huet J, et al.  (1977) Characterization of ribonuclease H activity associated yeast RNA polymerase A. J Biol Chem 252(24):8848-55
Buhler JM, et al.  (1976) Structural studies on yeast RNA polymerases. Existence of common subunits in RNA polymerases A(I) and B(II). J Biol Chem 251(6):1712-7
Huet J, et al.  (1976) Association of RNase H activity with yeast RNA polymerase A. Nature 261(5559):431-3
Huet J, et al.  (1976) Further characterization of yeast RNA polymerases. Effect of subunits removal. Biochimie 58(1-2):71-80
Schultz LD and Hall BD  (1976) Transcription in yeast: alpha-amanitin sensitivity and other properties which distinguish between RNA polymerases I and III. Proc Natl Acad Sci U S A 73(4):1029-33
Valenzuela P, et al.  (1976) Yeast DNA dependent RNA polymerases I, II and III. The existence of subunits common to the three enzymes. Biochem Biophys Res Commun 71(4):1319-25
Valenzuela P, et al.  (1976) Yeast DNA-dependent RNA polymerase I. A rapid procedure for the large scale purification of homogeneous enzyme. J Biol Chem 251(5):1464-70
Ponta H, et al.  (1974) Transcription of yeast DNA in vitro. Preparation of yeast DNA which is used as template by the purified DNA-dependent RNA polymerases A and B from yeast. Eur J Biochem 46(3):473-9