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Updated: Jul 15, 2026

Iterative Optimization of DNA Duplexes for Crystallization of SeqA-DNA Complexes
Published on: November 1, 2012
Crystal structure of a ternary SAP-1/SRF/c-fos SRE DNA complex
Y Mo1, W Ho, K Johnston
1The Wistar Institute, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Abstract:
Combinatorial DNA binding by proteins for promoter-specific gene activation is a common mode of DNA regulation in eukaryotic organisms, and occurs at the promoter of the c-fos proto-oncogene. The c-fos promoter contains a serum response element (SRE) that mediates ternary complex formation with the Ets proteins SAP-1 or Elk-1 and the MADS-box protein, serum response factor (SRF). Here, we report the crystal structure of a ternary SAP-1/SRF/c-fos SRE DNA complex containing the minimal DNA-binding domains of each protein. The structure of the complex reveals that the SAP-1 monomer and SRF dimer are bound on opposite faces of the DNA, and that the DNA recognition helix of SAP-1 makes direct contact with the DNA recognition helix of one of the two SRF subunits. These interactions facilitate an 82 degrees DNA bend around SRF and a modulation of protein-DNA contacts by each protein when compared to each of the binary DNA complexes. A comparison with a recently determined complex containing SRF, an idealized DNA site, and a SAP-1 fragment containing a SRF-interacting B-box region, shows a similar overall architecture but also shows important differences. Specifically, the comparison suggests that the B-box region of the Ets protein does not significantly influence DNA recognition by either of the proteins, and that the sequence of the DNA target effects the way in which the two proteins cooperate for DNA recognition. These studies have implications for how DNA-bound SRF may modulate the DNA-binding properties of other Ets proteins such as Elk-1, and for how other Ets proteins may modulate the DNA-binding properties of other DNA-bound accessory factors to facilitate promoter-specific transcriptional responses.
Insights
This study reveals the crystal structure of a ternary complex involving SAP-1, SRF, and c-fos DNA. It shows how these proteins interact to regulate gene activation, highlighting DNA bending and protein-DNA contact modulation.
Area of Science:
- Molecular Biology
- Structural Biology
- Genetics
Background:
- Combinatorial DNA binding regulates eukaryotic gene activation.
- The c-fos proto-oncogene promoter uses a serum response element (SRE).
- SRE mediates complex formation with Ets proteins (SAP-1/Elk-1) and SRF.
Purpose of the Study:
- Determine the crystal structure of a ternary SAP-1/SRF/c-fos SRE DNA complex.
- Elucidate the protein-DNA interactions and structural consequences.
- Compare this complex to related structures to understand regulatory mechanisms.
Main Methods:
- X-ray crystallography to determine the ternary complex structure.
- Analysis of protein-DNA contacts and DNA conformation.
- Comparative structural analysis with existing datasets.
Main Results:
- The crystal structure reveals SAP-1 monomer and SRF dimer on opposite DNA faces.
- SAP-1's DNA recognition helix contacts SRF's DNA recognition helix.
- The complex induces an 82-degree DNA bend and modulates protein-DNA interactions.
Conclusions:
- The SAP-1 B-box region may not significantly influence DNA recognition.
- DNA target sequence impacts protein cooperation in DNA recognition.
- Findings inform how SRF and Ets proteins modulate transcription factor binding for gene regulation.
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