5JVT image
Deposition Date 2016-05-11
Release Date 2016-09-14
Last Version Date 2023-09-27
Entry Detail
PDB ID:
5JVT
Title:
Crystal structure of the DNA binding domain of transcription factor FLI1 in complex with an 11-mer DNA GACCGGAAGTG
Biological Source:
Source Organism:
Homo sapiens (Taxon ID: 9606)
Endothia gyrosa (Taxon ID: 40263)
Host Organism:
Method Details:
Experimental Method:
Resolution:
3.10 Å
R-Value Free:
0.23
R-Value Work:
0.19
R-Value Observed:
0.19
Space Group:
P 61 2 2
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:Friend leukemia integration 1 transcription factor
Gene (Uniprot):FLI1
Chain IDs:A, D, G
Chain Length:104
Number of Molecules:3
Biological Source:Homo sapiens
Polymer Type:polydeoxyribonucleotide
Molecule:DNA (5'-D(*GP*AP*CP*CP*GP*GP*AP*AP*GP*TP*G)-3')
Chain IDs:B, E, H
Chain Length:11
Number of Molecules:3
Biological Source:Endothia gyrosa
Polymer Type:polydeoxyribonucleotide
Molecule:DNA (5'-D(*CP*AP*CP*TP*TP*CP*CP*GP*GP*TP*C)-3')
Chain IDs:C, F, I
Chain Length:11
Number of Molecules:3
Biological Source:Endothia gyrosa
Primary Citation
Structures of mithramycin analogues bound to DNA and implications for targeting transcription factor FLI1.
Nucleic Acids Res. 44 8990 9004 (2016)
PMID: 27587584 DOI: 10.1093/nar/gkw761

Abstact

Transcription factors have been considered undruggable, but this paradigm has been recently challenged. DNA binding natural product mithramycin (MTM) is a potent antagonist of oncogenic transcription factor EWS-FLI1. Structural details of MTM recognition of DNA, including the FLI1 binding sequence GGA(A/T), are needed to understand how MTM interferes with EWS-FLI1. We report a crystal structure of an MTM analogue MTM SA-Trp bound to a DNA oligomer containing a site GGCC, and two structures of a novel analogue MTM SA-Phe in complex with DNA. MTM SA-Phe is bound to sites AGGG and GGGT on one DNA, and to AGGG and GGGA(T) (a FLI1 binding site) on the other, revealing how MTM recognizes different DNA sequences. Unexpectedly, at sub-micromolar concentrations MTMs stabilize FLI1-DNA complex on GGAA repeats, which are critical for the oncogenic function of EWS-FLI1. We also directly demonstrate by nuclear magnetic resonance formation of a ternary FLI1-DNA-MTM complex on a single GGAA FLI1/MTM binding site. These biochemical and structural data and a new FLI1-DNA structure suggest that MTM binds the minor groove and perturbs FLI1 bound nearby in the major groove. This ternary complex model may lead to development of novel MTM analogues that selectively target EWS-FLI1 or other oncogenic transcription factors, as anti-cancer therapeutics.

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