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PMID: 12588976 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

In exponentially growing Saccharomyces cerevisiae cells, rRNA synthesis is determined by the summed RNA polymerase I loading rate rather than by the number of active genes.

Molecular and cellular biology ·Vol. 23 ·No. 5 ·2003-03-00 ·Pages 1558-68

French SL, Osheim YN, Cioci F, Nomura M, Beyer AL

Abstract

Genes encoding rRNA are multicopy and thus could be regulated by changing the number of active genes or by changing the transcription rate per gene. We tested the hypothesis that the number of open genes is limiting rRNA synthesis by using an electron microscopy method that allows direct counting of the number of active genes per nucleolus and the number of polymerases per active gene. Two strains of Saccharomyces cerevisiae were analyzed during exponential growth: a control strain with a typical number of rRNA genes ( approximately 143 in this case) and a strain in which the rRNA gene number was reduced to approximately 42 but which grows as well as controls. In control strains, somewhat more than half of the genes were active and the mean number of polymerases/gene was approximately 50 +/- 20. In the 42-copy strain, all rRNA genes were active with a mean number of 100 +/- 29 polymerases/gene. Thus, an equivalent number of polymerases was active per nucleolus in the two strains, though the number of active genes varied by twofold, showing that overall initiation rate, and not the number of active genes, determines rRNA transcription rate during exponential growth in yeast. Results also allow an estimate of elongation rate of approximately 60 nucleotides/s for yeast Pol I and a reinitiation rate of less than 1 s on the most heavily transcribed genes.

MeSH Terms
Cell Nucleolus/metabolism DNA, Ribosomal/metabolism Down-Regulation Gene Deletion Kinetics Microscopy, Electron Models, Genetic RNA Polymerase I/metabolism RNA, Ribosomal/metabolism Saccharomyces cerevisiae/cytology,metabolism Species Specificity Time Factors Transcription, Genetic
Chemicals
DNA, Ribosomal RNA, Ribosomal RNA Polymerase I
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
French Sarah L
Department of Microbiology, University of Virginia Health System, Charlottesville, Virginia 22908-0734, USA.
Osheim Yvonne N
Cioci Francesco
Nomura Masayasu
Beyer Ann L
References (57)
57 references, click to expand
  1. The economics of ribosome biosynthesis in yeast.
    Trends Biochem Sci. 1999 Nov;24(11):437-40 PMID: 10542411
  2. Expansion and contraction of ribosomal DNA repeats in Saccharomyces cerevisiae: requirement of replication fork blocking (Fob1) protein and the role of RNA polymerase I.
    Genes Dev. 1998 Dec 15;12(24):3821-30 PMID: 9869636
  3. Transcription factor UAF, expansion and contraction of ribosomal DNA (rDNA) repeats, and RNA polymerase switch in transcription of yeast rDNA.
    Mol Cell Biol. 1999 Dec;19(12):8559-69 PMID: 10567580
  4. The nucleolus: an old factory with unexpected capabilities.
    Trends Cell Biol. 2000 May;10(5):189-96 PMID: 10754561
  5. RNA polymerase I transcription factor Rrn3 is functionally conserved between yeast and human.
    Proc Natl Acad Sci U S A. 2000 Apr 25;97(9):4724-9 PMID: 10758157
  6. Repression of RNA polymerase I transcription by the tumor suppressor p53.
    Mol Cell Biol. 2000 Aug;20(16):5930-8 PMID: 10913176
  7. The recruitment of RNA polymerase I on rDNA is mediated by the interaction of the A43 subunit with Rrn3.
    EMBO J. 2000 Oct 16;19(20):5473-82 PMID: 11032814
  8. hRRN3 is essential in the SL1-mediated recruitment of RNA Polymerase I to rRNA gene promoters.
    EMBO J. 2001 Mar 15;20(6):1373-82 PMID: 11250903
  9. TIF-IA, the factor mediating growth-dependent control of ribosomal RNA synthesis, is the mammalian homolog of yeast Rrn3p.
    EMBO Rep. 2000 Aug;1(2):171-5 PMID: 11265758
  10. New model for the yeast RNA polymerase I transcription cycle.
    Mol Cell Biol. 2001 Aug;21(15):4847-55 PMID: 11438642
  11. Molecular mechanisms mediating methylation-dependent silencing of ribosomal gene transcription.
    Mol Cell. 2001 Sep;8(3):719-25 PMID: 11583633
  12. The role of acetylation in rDNA transcription.
    Nucleic Acids Res. 2001 Oct 15;29(20):4114-24 PMID: 11600700
  13. Differential roles of phosphorylation in the formation of transcriptional active RNA polymerase I.
    Proc Natl Acad Sci U S A. 2001 Dec 4;98(25):14334-9 PMID: 11717393
  14. At the center of eukaryotic life.
    Cell. 2002 May 31;109(5):545-8 PMID: 12062097
  15. Rrn3 phosphorylation is a regulatory checkpoint for ribosome biogenesis.
    J Biol Chem. 2002 Jul 26;277(30):27423-32 PMID: 12015311
  16. RPD3 is required for the inactivation of yeast ribosomal DNA genes in stationary phase.
    EMBO J. 2002 Sep 16;21(18):4959-68 PMID: 12234935
  17. The nucleolar remodeling complex NoRC mediates heterochromatin formation and silencing of ribosomal gene transcription.
    Nat Genet. 2002 Nov;32(3):393-6 PMID: 12368916
  18. A kinetic framework for a mammalian RNA polymerase in vivo.
    Science. 2002 Nov 22;298(5598):1623-6 PMID: 12446911
  19. Ribosomal RNA genes, RNA polymerases, nucleolar structures, and synthesis of rRNA in the yeast Saccharomyces cerevisiae.
    Cold Spring Harb Symp Quant Biol. 2001;66:555-65 PMID: 12762057
  20. Visualization of nucleolar genes.
    Science. 1969 May 23;164(3882):955-7 PMID: 5813982
  21. Electronmicroscopy of genetic activity.
    Annu Rev Biochem. 1973;42:379-96 PMID: 4581229
  22. Effect of growth rate on the amounts of ribosomal and transfer ribonucleic acids in yeast.
    J Bacteriol. 1975 Jun;122(3):855-65 PMID: 1097403
  23. Ultrastructural patterns of RNA synthesis during early embryogenesis of Drosophila melanogaster.
    Cell. 1976 Jun;8(2):305-19 PMID: 822943
  24. Ribosomal transcriptional complexes in subnuclear fractions of Chinese hamster ovary cells after short-term actinomycin D treatment.
    J Ultrastruct Res. 1979 Feb;66(2):190-9 PMID: 430587
  25. Non-nucleolar transcription complexes of rat liver as revealed by spreading isolated nuclei.
    J Cell Sci. 1979 Dec;40:181-92 PMID: 536385
  26. The nucleolus, chromosomes, and visualization of genetic activity.
    J Cell Biol. 1981 Dec;91(3 Pt 2):15s-27s PMID: 6172428
  27. Ultrastructural organization of yeast chromatin.
    J Cell Biol. 1982 Apr;93(1):217-22 PMID: 7040415
  28. Temperature dependence of RNA synthesis parameters in Escherichia coli.
    J Bacteriol. 1982 Aug;151(2):879-87 PMID: 6178724
  29. Reversible changes in nucleosome structure and histone H3 accessibility in transcriptionally active and inactive states of rDNA chromatin.
    Cell. 1983 Oct;34(3):1033-42 PMID: 6313204
  30. Electron microscopic study of Saccharomyces cerevisiae rDNA chromatin replication.
    Mol Cell Biol. 1986 Apr;6(4):1148-57 PMID: 3537698
  31. Contributions of electron microscopic spreading preparations ("Miller spreads") to the analysis of chromosome structure.
    Results Probl Cell Differ. 1987;14:147-71 PMID: 3303209
  32. Two different chromatin structures coexist in ribosomal RNA genes throughout the cell cycle.
    Cell. 1989 Jun 2;57(5):753-61 PMID: 2720786
  33. Electron microscopy of ribonucleoprotein complexes on nascent RNA using Miller chromatin spreading method.
    Methods Enzymol. 1989;180:481-509 PMID: 2482429
  34. Quantitative determination of rDNA transcription units in vertebrate cells.
    Exp Cell Res. 1991 Mar;193(1):78-86 PMID: 1995304
  35. Synthesis of large rRNAs by RNA polymerase II in mutants of Saccharomyces cerevisiae defective in RNA polymerase I.
    Proc Natl Acad Sci U S A. 1991 May 1;88(9):3962-6 PMID: 2023944
  36. Different chromatin structures along the spacers flanking active and inactive Xenopus rRNA genes.
    Mol Cell Biol. 1992 Oct;12(10):4288-96 PMID: 1406621
  37. Chromatin structures and transcription of rDNA in yeast Saccharomyces cerevisiae.
    Nucleic Acids Res. 1993 May 25;21(10):2331-8 PMID: 8506130
  38. Regulation of mammalian ribosomal gene transcription by RNA polymerase I.
    Prog Nucleic Acid Res Mol Biol. 1999;62:109-54 PMID: 9932453
  39. Regulation of RNA polymerase I transcription in yeast and vertebrates.
    Prog Nucleic Acid Res Mol Biol. 1999;62:293-327 PMID: 9932458
  40. RNA polymerase switch in transcription of yeast rDNA: role of transcription factor UAF (upstream activation factor) in silencing rDNA transcription by RNA polymerase II.
    Proc Natl Acad Sci U S A. 1999 Apr 13;96(8):4390-5 PMID: 10200272
  41. Transcriptional activity and chromatin structure of enhancer-deleted rRNA genes in Saccharomyces cerevisiae.
    Mol Cell Biol. 1999 Jul;19(7):4953-60 PMID: 10373545
  42. Functional characterization of the S. cerevisiae genome by gene deletion and parallel analysis.
    Science. 1999 Aug 6;285(5429):901-6 PMID: 10436161
  43. Structural characterization of RNA polymerase II complexes arrested by a cyclobutane pyrimidine dimer in the transcribed strand of template DNA.
    J Biol Chem. 1999 Aug 20;274(34):24124-30 PMID: 10446184
  44. Function of the growth-regulated transcription initiation factor TIF-IA in initiation complex formation at the murine ribosomal gene promoter.
    Mol Cell Biol. 1993 Nov;13(11):6723-32 PMID: 8413268
  45. Ribosome synthesis during the growth cycle of Saccharomyces cerevisiae.
    Yeast. 1994 Feb;10(2):151-7 PMID: 8203157
  46. Activity of RNA polymerase I transcription factor UBF blocked by Rb gene product.
    Nature. 1995 Mar 9;374(6518):177-80 PMID: 7877691
  47. Replication of transcriptionally active chromatin.
    Nature. 1995 Mar 16;374(6519):276-80 PMID: 7885449
  48. Transcription in the yeast rRNA gene locus: distribution of the active gene copies and chromatin structure of their flanking regulatory sequences.
    Mol Cell Biol. 1995 Oct;15(10):5294-303 PMID: 7565678
  49. Histones associated with non-nucleosomal rat ribosomal genes are acetylated while those bound to nucleosome-organized gene copies are not.
    J Biol Chem. 1996 May 17;271(20):11852-7 PMID: 8662629
  50. Metazoan rDNA enhancer acts by making more genes transcriptionally active.
    J Cell Biol. 1996 Jun;133(5):943-54 PMID: 8655586
  51. RRN3 gene of Saccharomyces cerevisiae encodes an essential RNA polymerase I transcription factor which interacts with the polymerase independently of DNA template.
    EMBO J. 1996 Aug 1;15(15):3964-73 PMID: 8670901
  52. Life with 6000 genes.
    Science. 1996 Oct 25;274(5287):546, 563-7 PMID: 8849441
  53. Chromatin structure and methylation of rat rRNA genes studied by formaldehyde fixation and psoralen cross-linking.
    Nucleic Acids Res. 1997 May 1;25(9):1727-35 PMID: 9108154
  54. Numbers and organization of RNA polymerases, nascent transcripts, and transcription units in HeLa nuclei.
    Mol Biol Cell. 1998 Jun;9(6):1523-36 PMID: 9614191
  55. A specialized form of RNA polymerase I, essential for initiation and growth-dependent regulation of rRNA synthesis, is disrupted during transcription.
    EMBO J. 1998 Jul 1;17(13):3692-703 PMID: 9649439
  56. Reconstitution of yeast RNA polymerase I transcription in vitro from purified components. TATA-binding protein is not required for basal transcription.
    J Biol Chem. 1998 Dec 11;273(50):33795-802 PMID: 9837969
  57. Regulation of ribosome biosynthesis in Escherichia coli and Saccharomyces cerevisiae: diversity and common principles.
    J Bacteriol. 1999 Nov;181(22):6857-64 PMID: 10559149
Article Info
Journal
Molecular and cellular biology
Abbr.
Mol Cell Biol
ISSN
0270-7306
Published
2003-03-00
Pages
1558-68
Language
English
Region
United States
NLM ID
8109087
PMCID
PMC151703
Subset
IM
Grants
CSR NIH HHS · RG0336 · United States
NIGMS NIH HHS · GM35949 · United States
NIGMS NIH HHS · GM63952 · United States
NIGMS NIH HHS · R01 GM063952 · United States
NIGMS NIH HHS · R01 GM035949 · United States
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