Correlation Engine 2.0
Clear Search sequence regions


  • AP 1 (7)
  • c fos (2)
  • c jun (2)
  • cell cycle (1)
  • cFos (9)
  • circular dichroism (2)
  • cJun (8)
  • consensus sequence (2)
  • dimers (1)
  • element (1)
  • factor (4)
  • gene (1)
  • phase (2)
  • regulates (1)
  • Sizes of these terms reflect their relevance to your search.

    The AP-1 transcription factor family crucially regulates progression of the cell cycle, as well as playing roles in proliferation, differentiation, and the stress response. The two best described AP-1 family members, cFos and cJun, are known to dimerize to form a functional AP-1 heterodimer that binds to a consensus response element sequence. Although cJun can also homodimerize and bind to DNA, the canonical view is that cFos cannot bind DNA without heterodimerizing with cJun. Here, we show that cFos can actually bind to DNA in the absence of cJun in vitro. Using dual color single molecule imaging of cFos alone, we directly visualize binding to and movement on DNA. Of all these DNA-bound proteins, detailed analysis suggested 30 to 46% were homodimers. Furthermore, we constructed fluorescent protein fusions of cFos and cJun for Förster resonance energy transfer experiments. These constructs indicated complete dimerization of cJun, but although cFos could dimerize, its extent was reduced. Finally, to provide orthogonal confirmation of cFos binding to DNA, we performed bulk-phase circular dichroism experiments that showed clear structural changes in DNA; these were found to be specific to the AP-1 consensus sequence. Taken together, our results clearly show cFos can interact with DNA both as monomers and dimers independently of its archetypal partner, cJun. Copyright © 2022 The Authors. Published by Elsevier Inc. All rights reserved.

    Citation

    James T Leech, Andrew Brennan, Nicola A Don, Jody M Mason, Neil M Kad. In vitro single molecule and bulk phase studies reveal the AP-1 transcription factor cFos binds to DNA without its partner cJun. The Journal of biological chemistry. 2022 Aug;298(8):102229

    Expand section icon Mesh Tags

    Expand section icon Substances


    PMID: 35787376

    View Full Text