7Y3I image
Deposition Date 2022-06-10
Release Date 2022-10-26
Last Version Date 2024-05-29
Entry Detail
PDB ID:
7Y3I
Title:
Structure of DNA bound SALL4
Biological Source:
Source Organism:
Host Organism:
Method Details:
Experimental Method:
Resolution:
2.45 Å
R-Value Free:
0.24
R-Value Work:
0.19
R-Value Observed:
0.19
Space Group:
P 21 21 21
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:Sal-like protein 4
Gene (Uniprot):SALL4
Chain IDs:E (auth: A), F (auth: B), G (auth: C), H (auth: D)
Chain Length:78
Number of Molecules:4
Biological Source:Homo sapiens
Polymer Type:polydeoxyribonucleotide
Molecule:DNA (12-mer)
Chain IDs:B (auth: K), D (auth: H)
Chain Length:12
Number of Molecules:2
Biological Source:synthetic construct
Polymer Type:polydeoxyribonucleotide
Molecule:DNA (12-mer)
Chain IDs:A (auth: L), C (auth: G)
Chain Length:12
Number of Molecules:2
Biological Source:synthetic construct
Ligand Molecules
Primary Citation
Structural studies of SALL family protein zinc finger cluster domains in complex with DNA reveal preferential binding to an AATA tetranucleotide motif.
J.Biol.Chem. 298 102607 102607 (2022)
PMID: 36257403 DOI: 10.1016/j.jbc.2022.102607

Abstact

The Spalt-like 4 transcription factor (SALL4) plays an essential role in controlling the pluripotent property of embryonic stem cells via binding to AT-rich regions of genomic DNA, but structural details on this binding interaction have not been fully characterized. Here, we present crystal structures of the zinc finger cluster 4 (ZFC4) domain of SALL4 (SALL4ZFC4) bound with different dsDNAs containing a conserved AT-rich motif. In the structures, two zinc fingers of SALL4ZFC4 recognize an AATA tetranucleotide. We also solved the DNA-bound structures of SALL3ZFC4 and SALL4ZFC1. These structures illuminate a common preference for the AATA tetranucleotide shared by ZFC4 of SALL1, SALL3, and SALL4. Furthermore, our cell biology experiments demonstrate that the DNA-binding activity is essential for SALL4 function as DNA-binding defective mutants of mouse Sall4 failed to repress aberrant gene expression in Sall4-/- mESCs. Thus, these analyses provide new insights into the mechanisms of action underlying SALL family proteins in controlling cell fate via preferential targeting to AT-rich sites within genomic DNA during cell differentiation.

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