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Updated: Jan 4, 2026

In Vitro Analysis of E3 Ubiquitin Ligase Function
Published on: May 14, 2021
Structure of the Fanconi anaemia monoubiquitin ligase complex
Shabih Shakeel1, Eeson Rajendra1, Pablo Alcón1
1MRC Laboratory of Molecular Biology, Cambridge, UK.
Abstract:
The Fanconi anaemia (FA) pathway repairs DNA damage caused by endogenous and chemotherapy-induced DNA crosslinks, and responds to replication stress1,2. Genetic inactivation of this pathway by mutation of genes encoding FA complementation group (FANC) proteins impairs development, prevents blood production and promotes cancer1,3. The key molecular step in the FA pathway is the monoubiquitination of a pseudosymmetric heterodimer of FANCD2-FANCI4,5 by the FA core complex-a megadalton multiprotein E3 ubiquitin ligase6,7. Monoubiquitinated FANCD2 then recruits additional protein factors to remove the DNA crosslink or to stabilize the stalled replication fork. A molecular structure of the FA core complex would explain how it acts to maintain genome stability. Here we reconstituted an active, recombinant FA core complex, and used cryo-electron microscopy and mass spectrometry to determine its structure. The FA core complex comprises two central dimers of the FANCB and FA-associated protein of 100 kDa (FAAP100) subunits, flanked by two copies of the RING finger subunit, FANCL. These two heterotrimers act as a scaffold to assemble the remaining five subunits, resulting in an extended asymmetric structure. Destabilization of the scaffold would disrupt the entire complex, resulting in a non-functional FA pathway. Thus, the structure provides a mechanistic basis for the low numbers of patients with mutations in FANCB, FANCL and FAAP100. Despite a lack of sequence homology, FANCB and FAAP100 adopt similar structures. The two FANCL subunits are in different conformations at opposite ends of the complex, suggesting that each FANCL has a distinct role. This structural and functional asymmetry of dimeric RING finger domains may be a general feature of E3 ligases. The cryo-electron microscopy structure of the FA core complex provides a foundation for a detailed understanding of its E3 ubiquitin ligase activity and DNA interstrand crosslink repair.
Insights
The Fanconi anaemia (FA) core complex structure reveals its role in DNA repair. Understanding this E3 ubiquitin ligase mechanism is crucial for genome stability and cancer research.
Area of Science:
- Molecular Biology
- Structural Biology
- Genetics
Background:
- The Fanconi anaemia (FA) pathway is essential for repairing DNA damage, particularly crosslinks, and responding to replication stress.
- Mutations in FA pathway genes lead to developmental issues, bone marrow failure, and cancer.
- The FA core complex, an E3 ubiquitin ligase, monoubiquitinates FANCD2-FANCI, a key step in DNA repair.
Purpose of the Study:
- To determine the molecular structure of the FA core complex.
- To elucidate the mechanism by which the FA core complex maintains genome stability.
Main Methods:
- Reconstitution of an active, recombinant FA core complex.
- Cryo-electron microscopy for structural determination.
- Mass spectrometry for complex analysis.
Main Results:
- The FA core complex has an extended, asymmetric structure with FANCB and FAAP100 dimers at the center, flanked by FANCL subunits.
- FANCB and FAAP100 share similar structures despite lacking sequence homology.
- FANCL subunits exhibit different conformations, suggesting distinct functional roles and highlighting the complex's asymmetry.
Conclusions:
- The determined structure provides a mechanistic basis for the FA core complex's E3 ubiquitin ligase activity in DNA interstrand crosslink repair.
- The structural insights explain why mutations in FANCB, FANCL, and FAAP100 are rare.
- The asymmetric nature of the dimeric RING finger domains may be a general characteristic of E3 ligases.
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