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Biology subjects

Mohamed, W. I.

Publications and source records attributed to Mohamed, W. I..

3 recordsLinked to original sources

The hGID GID4 E3 ubiquitin ligase complex targets ARHGAP11A to regulate cell migration

The human CTLH/GID (hGID) complex emerged as an important E3 ligase regulating multiple cellular processes, including cell cycle progression and metabolic activity. However, the range of biological functions controlled by hGID remains unexplored. Here, we show that the hGID substrate receptor GID4 regulates cell growth and migration. Biochemical and cellular assays combined with proximity-dependent biotinylation (BioID2) revealed that the hGIDGID4 E3-ligase targets the Rho-GAP ARHGAP11A for degradation. Depletion of GID4 or impeding the GID4 substrate binding pocket impairs motility and directed cell movement, whereas knockdown of ARHGAP11A significantly restores the cell migration defect. We found that GID4 controls cell migration by degrading ARHGAP11A thereby preventing its accumulation at the cell periphery where it inactivates RhoA activity. Together, we identified a unique function for GID4, as well as a wide range of substrate profiles beyond Pro/N-degron motifs, which pave the way for deciphering additional pathways regulated by hGID E3 ligase activity through its GID4 substrate receptor.

biochemistry↗

The CRL4B E3 ligase regulates mitosis by recruiting phospho-specific DCAFs

The cullin-4 paralogs CUL4A and CUL4B assemble E3 ubiquitin ligase complexes regulating multiple chromatin-associated cellular functions. Although they are structurally similar, we found that the unique N-terminal extension of CUL4B is heavily phosphorylated during mitosis, and the phosphorylation pattern is perturbed in the CUL4B-P50L mutation causing X-linked intellectual disability (XLID). Phenotypic characterization and mutational analysis revealed that CUL4B phosphorylation is required for efficient progression through mitosis, controlling spindle positioning and cortical tension. Interestingly, while CUL4B phosphorylation triggers chromatin exclusion, it critically promotes binding to actin regulators and two previously unrecognized, CUL4B-specific DCAFs, LIS1 and WDR1. Indeed, co-immunoprecipitation experiments and biochemical analysis revealed that LIS1 and WDR1 interact with DDB1, but their binding requires the phosphorylated N-terminal domain of CUL4B. Together, our study uncovers previously unrecognized DCAFs relevant for mitosis and brain development that specifically bind CUL4B, but not the CUL4B-P50L patient mutant, by a phosphorylation-dependent mechanism.

cell biology↗

The human GID complex engages two independent modules for substrate recruitment

The human GID (hGID) complex is an evolutionary conserved E3 ubiquitin ligase regulating diverse biological processes including glucose metabolism and cell cycle progression. However, the biochemical function and substrate recognition of the multi-subunit complex remains poorly understood. While the yeast GID complex recognizes Pro/N-end rule substrates via yeast Gid4, the human GID complex requires a WDR26/Gid7-dependent module to trigger proteasomal degradation of mammalian HBP1. Here, using biochemical assays, crosslinking-mass spectrometry and cryo-electron microscopy, we show that hGID unexpectedly engages two distinct modules for substrate recruitment, dependent on either WDR26 or GID4. WDR26 together with RanBP9 cooperate to ubiquitinate HBP1 in vitro, while GID4 is dispensable for this reaction. In contrast, GID4 functions as an adaptor for the substrate ZMYND19, which surprisingly lacks a Pro/N-end rule degron. GID4 substrate binding and ligase activity is regulated by ARMC8, while the shorter ARMC8{beta} isoform assembles into a stable hGID complex that is unable to recruit GID4. Cryo-EM reconstructions of these hGID complexes reveal the localization of WDR26 within a ring-like, tetrameric architecture and suggest that GID4 and WDR26/Gid7 utilize different, non-overlapping binding sites. Together, these data advance our mechanistic understanding of how the hGID complex recruits cognate substrates and provide insights into the regulation of its ligase activity.

biochemistry↗