c-Jun Homodimers Can Function as a Context-Specific Coactivator

Author:

Grondin Benoit1,Lefrancois Martin1,Tremblay Mathieu1,Saint-Denis Marianne1,Haman André1,Waga Kazuo2,Bédard André3,Tenen Daniel G.4,Hoang Trang15

Affiliation:

1. Institute of Research in Immunology and Cancer

2. Department of Hematology, Dokkyo University School of Medicine, Tochigi 321-0293, Japan

3. Department of Biology, York University, North York, Ontario, Canada M3J 1P3

4. Harvard Institutes of Medicine and Harvard Stem Cell institute, Harvard Medical School, Boston, Massachusetts 02115

5. Departments of Pharmacology, Biochemistry, and Molecular Biology, University of Montreal, Montréal, Québec, Canada H3C 3J7

Abstract

ABSTRACT Transcription factors can function as DNA-binding-specific activators or as coactivators. c-Jun drives gene expression via binding to AP-1 sequences or as a cofactor for PU.1 in macrophages. c-Jun heterodimers bind AP-1 sequences with higher affinity than homodimers, but how c-Jun works as a coactivator is unknown. Here, we provide in vitro and in vivo evidence that c-Jun homodimers are recruited to the interleukin-1β (IL-1β) promoter in the absence of direct DNA binding via protein-protein interactions with DNA-anchored PU.1 and CCAAT/enhancer-binding protein β (C/EBPβ). Unexpectedly, the interaction interface with PU.1 and C/EBPβ involves four of the residues within the basic domain of c-Jun that contact DNA, indicating that the capacities of c-Jun to function as a coactivator or as a DNA-bound transcription factor are mutually exclusive. Our observations indicate that the IL-1β locus is occupied by PU.1 and C/EBPβ and poised for expression and that c-Jun enhances transcription by facilitating a rate-limiting step, the assembly of the RNA polymerase II preinitiation complex, with minimal effect on the local chromatin status. We propose that the basic domain of other transcription factors may also be redirected from a DNA interaction mode to a protein-protein interaction mode and that this switch represents a novel mechanism regulating gene expression profiles.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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