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Protein interaction quantified in vivo by spectrally resolved fluorescence resonance energy transfer.

Raicu V., Jansma D.B., Miller R.J., Friesen J.D.

Biochem. J. 385:265-277(2005) · Mapped (1)

Expression vehicles used in recombinant DNA technology.

Friesen J.D., An G.

Biotechnol. Adv. 1:205-227(1983) · Mapped (3)

Splicing factor slt11p and its involvement in formation of U2/U6 helix II in activation of the yeast spliceosome.

Xu D., Friesen J.D.

Mol. Cell. Biol. 21:1011-1023(2001) · UniProtKB (2)

RNA polymerase II subunit Rpb9 regulates transcription elongation in vivo.

Hemming S.A., Jansma D.B., Macgregor P.F., Goryachev A., Friesen J.D., Edwards A.M.

J. Biol. Chem. 275:35506-35511(2000) · UniProtKB (1) · Mapped (4)

Zinc stoichiometry of yeast RNA polymerase II and characterization of mutations in the zinc-binding domain of the largest subunit.

Donaldson I.M., Friesen J.D.

J. Biol. Chem. 275:13780-13788(2000) · Mapped (5)

Elongin from Saccharomyces cerevisiae.

Koth C.M., Botuyan M.V., Moreland R.J., Jansma D.B., Conaway J.W., Conaway R.C., Chazin W.J., Friesen J.D., Arrowsmith C.H., Edwards A.M.

J. Biol. Chem. 275:11174-11180(2000) · UniProtKB (2)

Stimulation of transcription by mutations affecting conserved regions of RNA polymerase II.

Archambault J., Jansma D.B., Kawasoe J.H., Arndt K.T., Greenblatt J., Friesen J.D.

J. Bacteriol. 180:2590-2598(1998) · Mapped (7)

Synthetic lethality of yeast slt mutations with U2 small nuclear RNA mutations suggests functional interactions between U2 and U5 snRNPs that are important for both steps of pre-mRNA splicing.

Xu D., Field D.J., Tang S.-J., Moris A., Bobechko B.P., Friesen J.D.

Mol. Cell. Biol. 18:2055-2066(1998) · UniProtKB (2) · Mapped (6)

Identification and characterization of human genes encoding Hprp3p and Hprp4p, interacting components of the spliceosome.

Wang A., Forman-Kay J., Luo Y., Luo M., Chow Y.-H., Plumb J., Friesen J.D., Tsui L.-C., Heng H.H.Q., Woolford J.L. Jr. et al.

Hum. Mol. Genet. 6:2117-2126(1997) · UniProtKB (2) · Mapped (2)

Genetic complementation of the Saccharomyces cerevisiae leu2 gene by the Escherichia coli leuB gene.

Storms R.K., Holowachuck E.W., Friesen J.D.

Mol. Cell. Biol. 1:836-842(1981) · Mapped (1)

Genetic evidence for selective degradation of RNA polymerase subunits by the 20S proteasome in Saccharomyces cerevisiae.

Nouraini S., Xu D., Nelson S., Lee M., Friesen J.D.

Nucleic Acids Res. 25:3570-3579(1997) · Mapped (5)

The nucleotide sequence of Saccharomyces cerevisiae chromosome XVI.

Bussey H., Storms R.K., Ahmed A., Albermann K., Allen E., Ansorge W., Araujo R., Aparicio A., Barrell B.G., Badcock K. et al.

Nature 387:103-105(1997) · UniProtKB (1,335)

Histone H1 in Saccharomyces cerevisiae.

Ushinsky S.C., Bussey H., Ahmed A.A., Wang Y., Friesen J.D., Williams B.A., Storms R.K.

Yeast 13:151-161(1997) · UniProtKB (1)

Similar upstream regulatory elements of genes that encode the two largest subunits of RNA polymerase II in Saccharomyces cerevisiae.

Jansma D.B., Archambault J., Mostachfi O., Friesen J.D.

Nucleic Acids Res. 24:4543-4551(1996) · Mapped (6)

Mutations in an Abf1p binding site in the promoter of yeast RPO26 shift the transcription start sites and reduce the level of RPO26 mRNA.

Nouraini S., Hu J., McBroom L.D., Friesen J.D.

Yeast 12:1339-1350(1996) · Mapped (2)

Rpo26p, a subunit common to yeast RNA polymerases, is essential for the assembly of RNA polymerases I and II and for the stability of the largest subunits of these enzymes.

Nouraini S., Archambault J., Friesen J.D.

Mol. Cell. Biol. 16:5985-5996(1996) · Mapped (4)

In vitro characterization of mutant yeast RNA polymerase II with reduced binding for elongation factor TFIIS.

Wu J., Awrey D.E., Edwards A.M., Archambault J., Friesen J.D.

Proc. Natl. Acad. Sci. U.S.A. 93:11552-11557(1996) · Mapped (3)

Underproduction of the largest subunit of RNA polymerase II causes temperature sensitivity, slow growth, and inositol auxotrophy in Saccharomyces cerevisiae.

Archambault J., Jansma D.B., Friesen J.D.

Genetics 142:737-747(1996) · Mapped (3)

An RNA-dependent ATPase associated with U2/U6 snRNAs in pre-mRNA splicing.

Xu D., Nouraini S., Field D., Tang S.J., Friesen J.D.

Nature 381:709-713(1996) · Mapped (1)

An impaired RNA polymerase II activity in Saccharomyces cerevisiae causes cell-cycle inhibition at START.

Drebot M.A., Johnston G.C., Friesen J.D., Singer R.A.

Mol. Gen. Genet. 241:327-334(1993) · Mapped (6)

Genetics of eukaryotic RNA polymerases I, II, and III.

Archambault J., Friesen J.D.

Microbiol. Rev. 57:703-724(1993) · Mapped (30)

Mutational analysis of the PRP4 protein of Saccharomyces cerevisiae suggests domain structure and snRNP interactions.

Hu J., Xu Y., Schappert K., Harrington T., Wang A., Braga R., Mogridge J., Friesen J.D.

Nucleic Acids Res. 22:1724-1734(1994) · Mapped (2)

The upstream activator CTF/NF1 and RNA polymerase II share a common element involved in transcriptional activation.

Xiao H., Lis J.T., Xiao H., Greenblatt J., Friesen J.D.

Nucleic Acids Res. 22:1966-1973(1994) · Mapped (3)

A highly conserved domain of RNA polymerase II shares a functional element with acidic activation domains of upstream transcription factors.

Xiao H., Friesen J.D., Lis J.T.

Mol. Cell. Biol. 14:7507-7516(1994) · Mapped (5)

Recruiting TATA-binding protein to a promoter: transcriptional activation without an upstream activator.

Xiao H., Friesen J.D., Lis J.T.

Mol. Cell. Biol. 15:5757-5761(1995) · Mapped (1)

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