8Q0N image
Entry Detail
PDB ID:
8Q0N
EMDB ID:
Keywords:
Title:
HACE1 in complex with RAC1 Q61L
Biological Source:
Source Organism:
Host Organism:
PDB Version:
Deposition Date:
2023-07-28
Release Date:
2024-01-10
Method Details:
Experimental Method:
Resolution:
4.20 Å
Aggregation State:
PARTICLE
Reconstruction Method:
SINGLE PARTICLE
Macromolecular Entities
Polymer Type:polypeptide(L)
Description:E3 ubiquitin-protein ligase HACE1
Mutations:deletion 1-21
Chain IDs:A (auth: B)
Chain Length:889
Number of Molecules:1
Biological Source:Homo sapiens
Polymer Type:polypeptide(L)
Description:Ras-related C3 botulinum toxin substrate 1
Mutations:Q61L
Chain IDs:B (auth: C)
Chain Length:213
Number of Molecules:1
Biological Source:Homo sapiens
Primary Citation
Structural mechanisms of autoinhibition and substrate recognition by the ubiquitin ligase HACE1.
Nat.Struct.Mol.Biol. 31 364 377 (2024)
PMID: 38332367 DOI: 10.1038/s41594-023-01203-4

Abstact

Ubiquitin ligases (E3s) are pivotal specificity determinants in the ubiquitin system by selecting substrates and decorating them with distinct ubiquitin signals. However, structure determination of the underlying, specific E3-substrate complexes has proven challenging owing to their transient nature. In particular, it is incompletely understood how members of the catalytic cysteine-driven class of HECT-type ligases (HECTs) position substrate proteins for modification. Here, we report a cryogenic electron microscopy (cryo-EM) structure of the full-length human HECT HACE1, along with solution-based conformational analyses by small-angle X-ray scattering and hydrogen-deuterium exchange mass spectrometry. Structure-based functional analyses in vitro and in cells reveal that the activity of HACE1 is stringently regulated by dimerization-induced autoinhibition. The inhibition occurs at the first step of the catalytic cycle and is thus substrate-independent. We use mechanism-based chemical crosslinking to reconstitute a complex of activated, monomeric HACE1 with its major substrate, RAC1, determine its structure by cryo-EM and validate the binding mode by solution-based analyses. Our findings explain how HACE1 achieves selectivity in ubiquitinating the active, GTP-loaded state of RAC1 and establish a framework for interpreting mutational alterations of the HACE1-RAC1 interplay in disease. More broadly, this work illuminates central unexplored aspects in the architecture, conformational dynamics, regulation and specificity of full-length HECTs.

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Primary Citation of related structures