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HOS15 Coregulates Photoperiodic Flowering with the Evening Complex via Transcriptional Repression of GIGANTEA
The Plant Cell
◽
10.1105/tpc.19.00039
◽
2019
◽
Vol 31
(1)
◽
pp. 3-4
◽
Cited By ~ 1
Author(s):
Reza K. Hammond
Keyword(s):
Transcriptional Repression
◽
Photoperiodic Flowering
Download Full-text
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Hyperosmotic stress induces readthrough transcripts and changes to the Pol II interactome despite widespread transcriptional repression
10.26226/morressier.5ebd45acffea6f735881aed5
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2020
◽
Author(s):
Nicolle Rosa Mercado
Keyword(s):
Transcriptional Repression
◽
Hyperosmotic Stress
◽
Pol Ii
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Faculty Opinions recommendation of The Arabidopsis SPA1 gene is required for circadian clock function and photoperiodic flowering.
Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature
◽
10.3410/f.1001654.374751
◽
2006
◽
Author(s):
Xing Wang Deng
Keyword(s):
Circadian Clock
◽
Photoperiodic Flowering
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Faculty Opinions recommendation of Set2 is a nucleosomal histone H3-selective methyltransferase that mediates transcriptional repression.
Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature
◽
10.3410/f.1004137.60661
◽
2002
◽
Author(s):
Thomas Jenuwein
Keyword(s):
Transcriptional Repression
◽
Histone H3
◽
Nucleosomal Histone
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Faculty Opinions recommendation of Aux/IAA proteins contain a potent transcriptional repression domain.
Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature
◽
10.3410/f.1017314.202497
◽
2004
◽
Author(s):
Emmanuel Liscum
Keyword(s):
Transcriptional Repression
◽
Repression Domain
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Faculty Opinions recommendation of Bcl-6 mediates the germinal center B cell phenotype and lymphomagenesis through transcriptional repression of the DNA-damage sensor ATR.
Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature
◽
10.3410/f.1088411.543222
◽
2007
◽
Author(s):
Erik Selsing
Keyword(s):
Dna Damage
◽
B Cell
◽
Germinal Center
◽
Transcriptional Repression
◽
Cell Phenotype
◽
Germinal Center B Cell
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Faculty Opinions recommendation of EWS/FLI mediates transcriptional repression via NKX2.2 during oncogenic transformation in Ewing's sarcoma.
Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature
◽
10.3410/f.1105078.561250
◽
2008
◽
Author(s):
Richard Riedel
Keyword(s):
Transcriptional Repression
◽
Ewing’S Sarcoma
◽
Ewing's Sarcoma
◽
Oncogenic Transformation
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Faculty Opinions recommendation of Transcriptional repression mediated by repositioning of genes to the nuclear lamina.
Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature
◽
10.3410/f.1104146.560139
◽
2008
◽
Author(s):
Lucio Comai
Keyword(s):
Transcriptional Repression
◽
Nuclear Lamina
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Faculty Opinions recommendation of JAZ8 lacks a canonical degron and has an EAR motif that mediates transcriptional repression of jasmonate responses in Arabidopsis.
Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature
◽
10.3410/f.717968469.793468210
◽
2012
◽
Author(s):
Jennifer Nemhauser
◽
Edith Pierre-Jerome
Keyword(s):
Transcriptional Repression
◽
Ear Motif
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Faculty Opinions recommendation of α-Catenin interacts with APC to regulate β-catenin proteolysis and transcriptional repression of Wnt target genes.
Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature
◽
10.3410/f.718178564.793487279
◽
2013
◽
Author(s):
Marian Waterman
Keyword(s):
Transcriptional Repression
◽
Target Genes
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Transcriptional repression of the c-fos gene by YY1 is mediated by a direct interaction with ATF/CREB.
Journal of Virology
◽
10.1128/jvi.69.7.4323-4330.1995
◽
1995
◽
Vol 69
(7)
◽
pp. 4323-4330
◽
Cited By ~ 83
Author(s):
Q Zhou
◽
R W Gedrich
◽
D A Engel
Keyword(s):
Transcriptional Repression
◽
Direct Interaction
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