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Structure of the Wilms tumor suppressor protein zinc finger domain bound to DNA
Raphael Stoll1, Brian M Lee, Erik W Debler
1Department of Molecular Biology and Skaggs Institute for Chemical Biology, The Scripps Research Institute, La Jolla, CA 92037, USA.
Abstract:
The zinc finger domain of the Wilms tumor suppressor protein (WT1) contains four canonical Cys(2)His(2) zinc fingers. WT1 binds preferentially to DNA sequences that are closely related to the EGR-1 consensus site. We report the structure determination by both X-ray crystallography and NMR spectroscopy of the WT1 zinc finger domain in complex with DNA. The X-ray structure was determined for the complex with a cognate 14 base-pair oligonucleotide, and composite X-ray/NMR structures were determined for complexes with both the 14 base-pair and an extended 17 base-pair DNA. This combined approach allowed unambiguous determination of the position of the first zinc finger, which is influenced by lattice contacts in the crystal structure. The crystal structure shows the second, third and fourth zinc finger domains inserted deep into the major groove of the DNA where they make base-specific interactions. The DNA duplex is distorted in the vicinity of the first zinc finger, with a cytidine twisted and tilted out of the base stack to pack against finger 1 and the tip of finger 2. By contrast, the composite X-ray/NMR structures show that finger 1 continues to follow the major groove in the solution complexes. However, the orientation of the helix is non-canonical, and the fingertip and the N terminus of the helix project out of the major groove; as a consequence, the zinc finger side-chains that are commonly involved in base recognition make no contact with the DNA. We conclude that finger 1 helps to anchor WT1 to the DNA by amplifying the binding affinity although it does not contribute significantly to binding specificity. The structures provide molecular level insights into the potential consequences of mutations in zinc fingers 2 and 3 that are associated with Denys-Drash syndrome and nephritic syndrome. The mutations are of two types, and either destabilize the zinc finger structure or replace key base contact residues.
Insights
The Wilms tumor suppressor protein (WT1) zinc finger domain binds DNA. Structural studies reveal WT1 finger 1 anchors DNA, while fingers 2-4 confer specificity, offering insights into associated genetic disorders.
Area of Science:
- Structural Biology
- Molecular Biology
- Genetics
Background:
- The Wilms tumor suppressor protein (WT1) is crucial for gene regulation.
- Its zinc finger domain mediates DNA binding, recognizing sequences similar to EGR-1.
- Understanding WT1-DNA interactions is key to deciphering its role in development and disease.
Purpose of the Study:
- To determine the high-resolution structures of the WT1 zinc finger domain bound to DNA.
- To elucidate the molecular mechanisms underlying WT1 DNA recognition and binding.
- To provide insights into mutations in WT1 associated with Denys-Drash and nephritic syndromes.
Main Methods:
- X-ray crystallography was used to determine the structure of the WT1 zinc finger domain complexed with a 14 base-pair DNA oligonucleotide.
- Nuclear Magnetic Resonance (NMR) spectroscopy was employed to study complexes with 14 and 17 base-pair DNA molecules.
- A combined X-ray/NMR approach was utilized to resolve ambiguities in structural interpretation.
Main Results:
- Crystal structure revealed fingers 2-4 binding deep within the DNA major groove, mediating base-specific interactions.
- DNA structure is distorted near finger 1, with a cytidine extruded to interact with fingers 1 and 2.
- Composite X-ray/NMR structures showed finger 1 following the major groove but with non-canonical helix orientation, lacking base-specific contacts.
- Finger 1 primarily functions in DNA anchoring and affinity amplification, not specificity.
Conclusions:
- WT1 zinc finger 1 anchors the protein to DNA, enhancing binding affinity but not specificity.
- Zinc fingers 2 and 3 are critical for sequence-specific DNA recognition.
- Structural insights explain the impact of mutations in fingers 2 and 3 on WT1 function and associated syndromes.
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