Redundancy of chromatin remodeling pathways for the induction of the yeast PHO5 promoter in vivo

被引:80
作者
Barbaric, Slobodan
Luckenbach, Tim
Schmid, Andrea
Blaschke, Dorothea
Hoerz, Wolfram
Korber, Philipp
机构
[1] Univ Munich, Adolf Butenadt Inst, D-80336 Munich, Germany
[2] Univ Zagreb, Fac Food Technol & Biotechnol, Biochem Lab, Zagreb 10000, Croatia
关键词
D O I
10.1074/jbc.M700623200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Induction of the yeast PHO5 and PHO8 genes leads to a prominent chromatin transition at their promoter regions as a prerequisite for transcription activation. Although induction of PHO8 is strictly dependent on Snf2 and Gcn5, there is no chromatin remodeler identified so far that would be essential for the opening of PHO5 promoter chromatin. Nonetheless, the nonessential but significant involvement of cofactors; can be identified if the chromatin opening kinetics are delayed in the respective mutants. Using this approach, we have tested individually all 15 viable Snf2 type ATPase deletion mutants for their effect on PHO5 promoter induction and opening. Only the absence of Snf2 and Ino80 showed a strong delay in chromatin remodeling kinetics. The snf2 ino80 double mutation had a synthetic kinetic effect but eventually still allowed strong PHO5 induction. The same was true for the snf2 gcn5 and ino80 gcn5 double mutants. This strongly suggests a complex network of redundant and mutually independent parallel pathways that lead to the remodeling of the PHO5 promoter. Further, chromatin remodeling kinetics at a transcriptionally inactive TATA box-mutated PHO5 promoter were affected neither under wild type conditions nor in the absence of Snf2 or Gcn5. This demonstrates the complete independence of promoter chromatin opening from downstream PHO5 transcription processes. Finally, the histone variant Htz1 has no prominent role for the kinetics of PHO5 promoter chromatin remodeling.
引用
收藏
页码:27610 / 27621
页数:12
相关论文
共 87 条
[51]   Histone chaperones, a supporting role in the limelight [J].
Loyola, A ;
Almouzni, G .
BIOCHIMICA ET BIOPHYSICA ACTA-GENE STRUCTURE AND EXPRESSION, 2004, 1677 (1-3) :3-11
[52]   Regulation of an intergenic transcript controls adjacent gene transcription in Saccharomyces cerevisiae [J].
Martens, JA ;
Wu, PYJ ;
Winston, F .
GENES & DEVELOPMENT, 2005, 19 (22) :2695-2704
[53]   Acetylation of H2AZ Lys 14 is associated with genome-wide gene activity in yeast [J].
Millar, CB ;
Xu, F ;
Zhang, KL ;
Grunstein, M .
GENES & DEVELOPMENT, 2006, 20 (06) :711-722
[54]   Genome-scale profiling of histone H3.3 replacement patterns [J].
Mito, Y ;
Henikoff, JG ;
Henikoff, S .
NATURE GENETICS, 2005, 37 (10) :1090-1097
[55]   ATP-Driven exchange of histone H2AZ variant catalyzed by SWR1 chromatin remodeling complex [J].
Mizuguchi, G ;
Shen, XT ;
Landry, J ;
Wu, WH ;
Sen, S ;
Wu, C .
SCIENCE, 2004, 303 (5656) :343-348
[56]   Transcriptional repression of the yeast CHA1 gene requires the chromatin-remodeling complex RSC [J].
Moreira, JMA ;
Holmberg, S .
EMBO JOURNAL, 1999, 18 (10) :2836-2844
[57]   Nucleosome structure of the yeast CHA1 promoter:: analysis of activation-dependent chromatin remodeling of an RNA-polymerase-II-transcribed gene in TBP and RNA pol II mutants defective in vivo in response to acidic activators [J].
Moreira, JMA ;
Holmberg, S .
EMBO JOURNAL, 1998, 17 (20) :6028-6038
[58]   Histone chaperone ASF1 cooperates with the Brahma chromatin-remodelling machinery [J].
Moshkin, YM ;
Armstrong, JA ;
Maeda, RK ;
Tamkun, JW ;
Verrijzer, P ;
Kennison, JA ;
Karch, F .
GENES & DEVELOPMENT, 2002, 16 (20) :2621-2626
[59]   Cooperation between complexes that regulate chromatin structure and transcription [J].
Narlikar, GJ ;
Fan, HY ;
Kingston, RE .
CELL, 2002, 108 (04) :475-487
[60]   Polyphosphate loss promotes SNF/SWI- and gcn5-dependent mitotic induction of PHO5 [J].
Neef, DW ;
Kladde, MP .
MOLECULAR AND CELLULAR BIOLOGY, 2003, 23 (11) :3788-3797