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24PU

The crystal structure of the chicken FANCM-MHF1-MHF2(Q74C) disulfide-crosslinked complex

Summary for 24PU
Entry DOI10.2210/pdb24pu/pdb
DescriptorCentromere protein S, Fanconi anemia group M protein, Centromere protein X, ... (4 entities in total)
Functional Keywordshistone fold, dna binding, dna repair, fanconi anemia, disulfide-crosslink, dna binding protein
Biological sourceGallus gallus (chicken)
More
Total number of polymer chains5
Total formula weight58044.63
Authors
Ito, S.,Nishino, T. (deposition date: 2026-03-16, release date: 2026-09-23)
Primary citationIto, S.,Nishino, T.
Disulfide engineering of the FANCM-MHF complex reveals constraints on crosslink design in symmetric oligomers.
Protein Sci., 35:e70761-e70761, 2026
Cited by
PubMed Abstract: The Fanconi anemia complementation group M protein (FANCM)-MHF complex is required for branched DNA recognition in the Fanconi anemia pathway, but structural analysis of the intact complex has been hindered by dissociation of FANCM from the FANCM-associated histone fold (MHF) heterotetramer under crystallization conditions. Here, we used structure-guided disulfide engineering to stabilize the FANCM-MHF interface and test whether local geometry is sufficient to predict crosslinking specificity in a symmetric oligomeric assembly. Using endogenous FANCM Cys759 as an anchor, we designed two MHF2 variants, Q74C and L77C. Both supported oxidation-dependent crosslinking in the context of the FANCM-MHF complex, but with distinct outcomes. Q74C formed the intended FANCM-MHF2 disulfide, enabled crystallization of the intact heteropentamer, and preserved DNA-binding behavior under the tested conditions. In contrast, L77C favored a competing MHF2-MHF2 disulfide and yielded only the MHF heterotetramer after FANCM dissociation. Structural analysis further showed distinct crosslinking states for the two MHF tetramers in the asymmetric unit, consistent with local conformational heterogeneity at the MHF dimer-dimer interface. These results show that geometric plausibility alone does not predict crosslinking specificity in symmetric oligomers. Instead, symmetry-related competing pathways can redirect the reaction toward an alternative assembly state. This study provides a practical route to stabilizing FANCM-MHF and reveals a key design constraint for engineered disulfides in symmetric multimeric assemblies.
PubMed: 42606197
DOI: 10.1002/pro.70761
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (2.4 Å)
Structure validation

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PDB entries from 2026-09-30

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