4.6 Article

Crystal structure of a human ubiquitin E1-ubiquitin complex reveals conserved functional elements essential for activity

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 293, 期 47, 页码 18337-18352

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.RA118.003975

关键词

ubiquitin; enzyme mechanism; enzyme structure; structure-function; X-ray crystallography; conformational change; protein degradation; adenylation; E1; thioester

资金

  1. National Institutes of Health from NIGMS [P41 GM103403]
  2. National Institutes of Health ORIP HEI [S10 RR029205]
  3. DOE Office of Science [DE-AC02-06CH11357]
  4. Office of the Vice President for Research at the Medical University of South Carolina
  5. National Institutes of Health Shared Instrumentation Award [S10 RR027139-01]
  6. NATIONAL CANCER INSTITUTE [T32CA193201, F30CA216921] Funding Source: NIH RePORTER
  7. NATIONAL CENTER FOR RESEARCH RESOURCES [S10RR029205, S10RR027139] Funding Source: NIH RePORTER
  8. NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES [R01GM115568, P41GM103403] Funding Source: NIH RePORTER

向作者/读者索取更多资源

Ubiquitin (Ub) signaling plays a key regulatory role in nearly every aspect of eukaryotic biology and is initiated by E1 enzymes that activate and transfer Ub to E2 Ub-conjugating enzymes. Despite Ub E1's fundamental importance to the cell and its attractiveness as a target for therapeutic intervention in cancer and other diseases, its only available structural information is derived from yeast orthologs of human ubiquitin-like modifier-activating enzyme 1 (hUBA1). To illuminate structural differences between yeast and hUBA1 structures that might be exploited for the development of small-molecule therapeutics, we determined the first crystal structure of a hUBA1-Ub complex. Using structural analysis, molecular modeling, and biochemical analysis, we demonstrate that hUBA1 shares a conserved overall structure and mechanism with previously characterized yeast orthologs, but displays subtle structural differences, particularly within the active site. Computational analysis revealed four potential ligand-binding hot spots on the surface of hUBA1 that might serve as targets to inhibit hUBA1 at the level of Ub activation or E2 recruitment or that might potentially be used in approaches such as protein-targeting chimeric molecules. Taken together, our work enhances our understanding of the hUBA1 mechanism, provides an improved framework for the development of small-molecule inhibitors of UBA1, and serves as a stepping stone for structural studies that involve the enzymes of the human Ub system at the level of both E1 and E2.

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