Previous Article | Next Article 
Mol Cell Biol, April 1998, p. 1935-1945, Vol. 18, No. 4
0270-7306/98/$04.00+0
Copyright © 1998, American Society for Microbiology. All rights reserved.
Analysis of the Interaction of the Novel RNA Polymerase II (pol
II) Subunit hsRPB4 with Its Partner hsRPB7 and with pol II
Vladimir
Khazak,1,
Joanne
Estojak,1
Helen
Cho,2
Jenifer
Majors,1
Gonosuke
Sonoda,3
Joseph R.
Testa,3 and
Erica A.
Golemis1,*
Divisions of
Basic
Sciences1 and
Medical
Sciences,3 Fox Chase Cancer Center,
Philadelphia, Pennsylvania 19111, and
Department of
Biochemistry, Howard Hughes Medical Institute, Robert Wood Johnson
Medical School, University of Medicine and Dentistry of New Jersey,
Piscataway, New Jersey 088542
Received 25 August 1997/Returned for modification 7 October
1997/Accepted 26 January 1998
Under conditions of environmental stress, prokaryotes and lower
eukaryotes such as the yeast Saccharomyces cerevisiae
selectively utilize particular subunits of RNA polymerase II (pol II)
to alter transcription to patterns favoring survival. In S. cerevisiae, a complex of two such subunits, RPB4 and RPB7,
preferentially associates with pol II during stationary phase; of these
two subunits, RPB4 is specifically required for survival under
nonoptimal growth conditions. Previously, we have shown that RPB7
possesses an evolutionarily conserved human homolog, hsRPB7, which was
capable of partially interacting with RPB4 and the yeast
transcriptional apparatus. Using this as a probe in a two-hybrid
screen, we have now established that hsRPB4 is also conserved in higher
eukaryotes. In contrast to hsRPB7, hsRPB4 has diverged so that it no
longer interacts with yeast RPB7, although it partially complements
rpb4
phenotypes in yeast. However, hsRPB4 associates
strongly and specifically with hsRPB7 when expressed in yeast or in
mammalian cells and copurifies with intact pol II. hsRPB4 expression in humans parallels that of hsRPB7, supporting the idea that the two
proteins may possess associated functions. Structure-function studies
of hsRPB4-hsRPB7 are used to establish the interaction interface
between the two proteins. This identification completes the set of
human homologs for RNA pol II subunits defined in yeast and should
provide the basis for subsequent structural and functional characterization of the pol II holoenzyme.
*
Corresponding author. Mailing address: Institute for
Cancer Research, Fox Chase Cancer Center, 7701 Burholme Ave.,
Philadelphia, PA 19111. Phone: (215) 728-2860. Fax: (215) 728-3616. E-mail: EA_Golemis{at}fccc.edu.

Present address: Small Molecule Therapeutics, Monmouth Junction,
N.J.
This article has been cited by other articles:
-
He, X.-J., Hsu, Y.-F., Pontes, O., Zhu, J., Lu, J., Bressan, R. A., Pikaard, C., Wang, C.-S., Zhu, J.-K.
(2009). NRPD4, a protein related to the RPB4 subunit of RNA polymerase II, is a component of RNA polymerases IV and V and is required for RNA-directed DNA methylation. Genes Dev.
23: 318-330
[Abstract]
[Full Text]
-
Verma-Gaur, J., Rao, S. N., Taya, T., Sadhale, P.
(2008). Genomewide Recruitment Analysis of Rpb4, a Subunit of Polymerase II in Saccharomyces cerevisiae, Reveals Its Involvement in Transcription Elongation. Eukaryot Cell
7: 1009-1018
[Abstract]
[Full Text]
-
Singh, S. R., Rekha, N., Pillai, B., Singh, V., Naorem, A., Sampath, V., Srinivasan, N., Sadhale, P. P.
(2004). Domainal organization of the lower eukaryotic homologs of the yeast RNA polymerase II core subunit Rpb7 reflects functional conservation. Nucleic Acids Res
32: 201-210
[Abstract]
[Full Text]
-
Sampath, V., Rekha, N., Srinivasan, N., Sadhale, P.
(2003). The Conserved and Non-conserved Regions of Rpb4 Are Involved in Multiple Phenotypes in Saccharomyces cerevisiae. J. Biol. Chem.
278: 51566-51576
[Abstract]
[Full Text]
-
Armache, K.-J., Kettenberger, H., Cramer, P.
(2003). Architecture of initiation-competent 12-subunit RNA polymerase II. Proc. Natl. Acad. Sci. USA
100: 6964-6968
[Abstract]
[Full Text]
-
Siaut, M., Zaros, C., Levivier, E., Ferri, M.-L., Court, M., Werner, M., Callebaut, I., Thuriaux, P., Sentenac, A., Conesa, C.
(2003). An Rpb4/Rpb7-Like Complex in Yeast RNA Polymerase III Contains the Orthologue of Mammalian CGRP-RCP. Mol. Cell. Biol.
23: 195-205
[Abstract]
[Full Text]
-
Muratoglu, S., Georgieva, S., Papai, G., Scheer, E., Enunlu, I., Komonyi, O., Cserpan, I., Lebedeva, L., Nabirochkina, E., Udvardy, A., Tora, L., Boros, I.
(2003). Two Different Drosophila ADA2 Homologues Are Present in Distinct GCN5 Histone Acetyltransferase-Containing Complexes. Mol. Cell. Biol.
23: 306-321
[Abstract]
[Full Text]
-
Hasegawa, J., Endou, M., Narita, T., Yamada, T., Yamaguchi, Y., Wada, T., Handa, H.
(2003). A Rapid Purification Method for Human RNA Polymerase II by Two-Step Affinity Chromatography. J Biochem
133: 133-138
[Abstract]
[Full Text]
-
Hu, P., Wu, S., Sun, Y., Yuan, C.-C., Kobayashi, R., Myers, M. P., Hernandez, N.
(2002). Characterization of Human RNA Polymerase III Identifies Orthologues for Saccharomyces cerevisiae RNA Polymerase III Subunits. Mol. Cell. Biol.
22: 8044-8055
[Abstract]
[Full Text]
-
Peyroche, G., Levillain, E., Siaut, M., Callebaut, I., Schultz, P., Sentenac, A., Riva, M., Carles, C.
(2002). The A14-A43 heterodimer subunit in yeast RNA pol I and their relationship to Rpb4-Rpb7 pol II subunits. Proc. Natl. Acad. Sci. USA
99: 14670-14675
[Abstract]
[Full Text]
-
Kato-Stankiewicz, J., Hakimi, I., Zhi, G., Zhang, J., Serebriiskii, I., Guo, L., Edamatsu, H., Koide, H., Menon, S., Eckl, R., Sakamuri, S., Lu, Y., Chen, Q.-Z., Agarwal, S., Baumbach, W. R., Golemis, E. A., Tamanoi, F., Khazak, V.
(2002). Inhibitors of Ras/Raf-1 interaction identified by two-hybrid screening revert Ras-dependent transformation phenotypes in human cancer cells. Proc. Natl. Acad. Sci. USA
99: 14398-14403
[Abstract]
[Full Text]
-
Schramm, L., Hernandez, N.
(2002). Recruitment of RNA polymerase III to its target promoters. Genes Dev.
16: 2593-2620
[Full Text]
-
Kimura, M., Suzuki, H., Ishihama, A.
(2002). Formation of a Carboxy-Terminal Domain Phosphatase (Fcp1)/TFIIF/RNA Polymerase II (pol II) Complex in Schizosaccharomyces pombe Involves Direct Interaction between Fcp1 and the Rpb4 Subunit of pol II. Mol. Cell. Biol.
22: 1577-1588
[Abstract]
[Full Text]
-
Bockelmann, R., Neugebauer, P., Djahan Paseban, N., Huttemann, M., Gollnick, H., Bonnekoh, B.
(2001). Suprabasal Overexpression of the hsRPB7 Gene in Psoriatic Epidermis as Identified by a Reverse Transcriptase-Polymerase Chain Reaction Differential Display Model Comparing Psoriasis Plaque Tissue with Peritonsillar Mucosa. Am. J. Pathol.
158: 367-372
[Abstract]
[Full Text]
-
Tan, Q., Li, X., Sadhale, P. P., Miyao, T., Woychik, N. A.
(2000). Multiple Mechanisms of Suppression Circumvent Transcription Defects in an RNA Polymerase Mutant. Mol. Cell. Biol.
20: 8124-8133
[Abstract]
[Full Text]
-
Werner, F., Eloranta, J. J., Weinzierl, R. O. J.
(2000). Archaeal RNA polymerase subunits F and P are bona fide homologs of eukaryotic RPB4 and RPB12. Nucleic Acids Res
28: 4299-4305
[Abstract]
[Full Text]
-
Kimura, M., Ishihama, A.
(2000). Involvement of multiple subunit-subunit contacts in the assembly of RNA polymerase II. Nucleic Acids Res
28: 952-959
[Abstract]
[Full Text]
-
Sakurai, H., Mitsuzawa, H., Kimura, M., Ishihama, A.
(1999). The Rpb4 Subunit of Fission Yeast Schizosaccharomyces pombe RNA Polymerase II Is Essential for Cell Viability and Similar in Structure to the Corresponding Subunits of Higher Eukaryotes. Mol. Cell. Biol.
19: 7511-7518
[Abstract]
[Full Text]
-
Sheffer, A., Varon, M., Choder, M.
(1999). Rpb7 Can Interact with RNA Polymerase II and Support Transcription during Some Stresses Independently of Rpb4. Mol. Cell. Biol.
19: 2672-2680
[Abstract]
[Full Text]
-
Kershnar, E., Wu, S.-Y., Chiang, C. M.
(1998). Immunoaffinity Purification and Functional Characterization of Human Transcription Factor IIH and RNA Polymerase II from Clonal Cell Lines That Conditionally Express Epitope-tagged Subunits of the Multiprotein Complexes. J. Biol. Chem.
273: 34444-34453
[Abstract]
[Full Text]
-
WOYCHIK, N.A.
(1998). Fractions to Functions: RNA Polymerase II Thirty Years Later. Cold Spring Harb Symp Quant Biol
63: 311-318
[Abstract]