期刊论文详细信息
BMC Molecular Biology
VprBP (DCAF1): a promiscuous substrate recognition subunit that incorporates into both RING-family CRL4 and HECT-family EDD/UBR5 E3 ubiquitin ligases
Patrick C Swanson1  Koushik Mondal1  Tadashi Nakagawa2 
[1] Department of Medical Microbiology and Immunology, Creighton University, 2500 California Plaza, Omaha, NE 68178, USA;Department of Cell Proliferation, United Center for Advanced Research and Translational Medicine, Graduate School of Medicine, Tohoku University, Sendai 900-8575, Japan
关键词: WD40 repeat;    HECT;    RING;    E3 ubiquitin ligase;    Ubiquitin;    UL35;    Vpx;    Vpr;    HIV;    V(D)J recombination;    RAG1;    telomerase;    TERT;    p53;    Methyl degron;    RORα;    Histone H3;    Mcm10;    LGL2;    UNG2;    Katanin;    Merlin;    Dyrk2;    UBR5;    EDD;    CRL4;    Cul4;    DDB1;    DCAF1;    VprBP;   
Others  :  1090691
DOI  :  10.1186/1471-2199-14-22
 received in 2013-06-03, accepted in 2013-09-03,  发布年份 2013
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【 摘 要 】

The terminal step in the ubiquitin modification system relies on an E3 ubiquitin ligase to facilitate transfer of ubiquitin to a protein substrate. The substrate recognition and ubiquitin transfer activities of the E3 ligase may be mediated by a single polypeptide or may rely on separate subunits. The latter organization is particularly prevalent among members of largest class of E3 ligases, the RING family, although examples of this type of arrangement have also been reported among members of the smaller HECT family of E3 ligases. This review describes recent discoveries that reveal the surprising and distinctive ability of VprBP (DCAF1) to serve as a substrate recognition subunit for a member of both major classes of E3 ligase, the RING-type CRL4 ligase and the HECT-type EDD/UBR5 ligase. The cellular processes normally regulated by VprBP-associated E3 ligases, and their targeting and subversion by viral accessory proteins are also discussed. Taken together, these studies provide important insights and raise interesting new questions regarding the mechanisms that regulate or subvert VprBP function in the context of both the CRL4 and EDD/UBR5 E3 ligases.

【 授权许可】

   
2013 Nakagawa et al.; licensee BioMed Central Ltd.

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