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Abstract
ISG15 plays a crucial role in the innate immune response and has been well-studied due to its antiviral activity and regulation of signal transduction, apoptosis, and autophagy. ISG15 is a ubiquitin-like protein that is activated by an E1 enzyme (Uba7) and transferred to a cognate E2 enzyme (UBE2L6) to form a UBE2L6-ISG15 intermediate that functions with E3 ligases that catalyze conjugation of ISG15 to target proteins. Despite its biological importance, the molecular basis by which Uba7 catalyzes ISG15 activation and transfer to UBE2L6 is unknown as there is no available structure of Uba7. Here, we present cryo-EM structures of human Uba7 in complex with UBE2L6, ISG15 adenylate, and ISG15 thioester intermediate that are poised for catalysis of Uba7-UBE2L6-ISG15 thioester transfer. Our structures reveal a unique overall architecture of the complex compared to structures from the ubiquitin conjugation pathway, particularly with respect to the location of ISG15 thioester intermediate. Our structures also illuminate the molecular basis for Uba7 activities and for its exquisite specificity for ISG15 and UBE2L6. Altogether, our structural, biochemical, and human cell-based data provide significant insights into the functions of Uba7, UBE2L6, and ISG15 in cells.
ISGylation plays a crucial role in the innate immune response and requires sequential activity of E1, E2, and E3 enzymes. Here, the authors present cyro-EM structures that reveal the molecular mechanisms underlying ISG15 activation by the E1 enzyme Uba7 and transfer to its cognate E2 enzyme UBE2L6.
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1 University of Texas Health Science Center at San Antonio, Department of Biochemistry & Structural Biology, San Antonio, USA (GRID:grid.267309.9) (ISNI:0000 0001 0629 5880)
2 Cleveland Clinic, Florida Research and Innovation Center, Port Saint Lucie, USA (GRID:grid.239578.2) (ISNI:0000 0001 0675 4725)