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Tommy K Cheung

Publications and source records attributed to Tommy K Cheung.

2 recordsLinked to original sources

Molecular mechanism of HUWE1-HAPSTR1-USP7-mediated ubiquitin chain amplification on nuclear proteins.

Rapid protein turnover is essential for cellular stress adaptation. HUWE1 (HECT, UBA, and WWE domain containing 1), a large HECT-type E3 ligase, regulates many short-lived stress-responsive proteins, yet the mechanisms underlying its substrate selectivity remain unclear. Here, we reveal that HUWE1 functions as a ubiquitin chain amplifier that captures pre-ubiquitinated substrates and amplifies the degradation signal by assembling long ubiquitin chains containing K11-K48 branch points, a process regulated by its partners HUWE1-associated protein stress response 1 (HAPSTR1) and USP7 (ubiquitin-specific-processing protease 7). Structural and biochemical analyses show that HAPSTR1 engages HUWE1's ubiquitin-binding motifs to drive nuclear import and modulate substrate recruitment. A cryo-EM structure of the HUWE1-USP7 complex reveals a bidirectional regulatory mechanism: HUWE1 activates USP7's catalytic activity, while USP7 modulates HUWE1 conformational states. Global proteomic analyses demonstrate that this axis drives extensive remodeling of the short-lived nuclear proteome. These findings establish the HUWE1-HAPSTR1-USP7 complex as a key ubiquitin code modifier, providing a molecular rationale for HUWE1 dysregulation in neurodevelopmental disorders and cancer.

Ubiquitin-Specific Peptidase 7

BCDX2-CX3 and DX2-CX3 complexes assemble and stabilize RAD51 filaments.

The repair of DNA double-strand breaks by homologous recombination is essential for genomic integrity, and its dysregulation is a hallmark of cancer1. Central to homologous recombination is the RAD51 recombinase, whose assembly into a nucleoprotein filament is governed by five RAD51 paralogues (RAD51B, RAD51C, RAD51D, XRCC2 and XRCC3)2. Mutations in any of these proteins predispose individuals to multiple cancers or genetic disorders3-6. These paralogues are thought to form two functionally separate complexes RAD51B-RAD51C-RAD51D-XRCC2 (BCDX2) and RAD51C-XRCC3 (CX3), that act independently at different stages of homologous recombination7-11. Here we demonstrate that all five paralogues can assemble into a single, ATP-dependent BCDX2-CX3-RAD51 supercomplex. The architecture of this assembly bound to single-stranded DNA reveals a contiguous filament where the CX3 module stacks atop BCDX2, creating a protofilament template for RAD51 filament formation. We further identify a novel, RAD51B-independent DX2-CX3 complex (RAD51D-XRCC2-RAD51C-XRCC3) functioning as a stable RAD51 anchor on single-stranded DNA, and we capture it in multiple states, including capping RAD51 filament segment. These distinct assemblies are differentially regulated by ATPase activity, defining a dynamic BCDX2-CX3 'loader' and a stable DX2-CX3 'anchor' that provide functional modularity to the homologous recombination machinery. This work provides a unifying mechanism for human RAD51 paralogue function and delivers an atomic blueprint for interpreting disease-causing mutations.

Rad51 Recombinase