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Dotsch, V.

Publications and source records attributed to Dotsch, V..

2 recordsLinked to original sources

Role of Uba7-UFD in E1-E2 ISGylation: NMR-Based Insights into E2 Binding Dynamics

The ISGylation pathway, a key post-translational modification, plays a pivotal role in the innate immune response by covalently attaching ISG15 to target proteins. This cascade involves a series of enzymatic steps, including activation by the E1 enzyme Uba7, conjugation by the E2 enzyme UbcH8, and ligation by an E3 ligase. Central to this process is the ubiquitin-fold domain (UFD) of Uba7, which facilitates the transfer of ISG15 to UbcH8. However, the structural and mechanistic details of this interaction remain poorly understood. In this work, we present the solution NMR structure and functional analysis of the ubiquitin-fold domain of human Uba7, the E1 enzyme in the ISGylation cascade. Through detailed NMR titration experiments and mutational studies, we mapped the interaction surface of Uba7-UFD with UbcH8, identifying key residues and their contributions to the E1-E2 interaction. We found that Uba7-UFD is flexible in its free form; this flexibility is conserved across ubiquitin-like systems but shows a regional shift that may play an important role in correct E2 and Ubl selection. Chemical shift perturbation and mutational analysis further demonstrate the importance of specific residues, particularly Cys996, in maintaining UFDs structural integrity and binding capacity. Additionally, mutations designed to alter the flexibility and length of the loop region between UFD and UbcH8 show significant effects on binding, indicating that these regions are crucial for efficient E2 recruitment. These findings provide new insights into the mechanistic basis of E2 enzyme selection in ISGylation and underscore the functional relevance of dynamic structural transitions in E1-E2 complex formation. Statement of SignificanceISGylation is a key ubiquitin-like modification pathway essential for antiviral defense, immune regulation, and protein quality control. However, the molecular principles that govern communication between the E1 and E2 enzymes in this pathway remain poorly defined. Here, we present the first NMR structure of the human Uba7 ubiquitin-fold domain (UFD) and its interaction with UbcH8. Our findings reveal how structural flexibility within the UFD is crucial for specific and efficient E2 recognition, providing fundamental insight into the dynamic mechanism of ISGylation and advancing our understanding of ubiquitin-like enzyme cascades relevant to cellular regulation and disease.

biochemistry↗

A ribosome-associating chaperone mediates GTP-driven vectorial folding of nascent eEF1A

Eukaryotic translation elongation factor 1A (eEF1A) is a highly abundant, multi-domain GTPase. Post-translational steps essential for eEF1A biogenesis are carried out by bespoke chaperones but co-translational mechanisms tailored to eEF1A folding remain unexplored. Here, we find that the N-terminal, GTP-binding domain of eEF1A is prone to co-translational misfolding and using computational approaches, yeast genetics, and microscopy analysis, we identify the conserved yet uncharacterized yeast protein Ypl225w as a chaperone dedicated to solving this problem. Proteomics and biochemical reconstitution reveal that Ypl225ws interaction with ribosomal eEF1A nascent chains depends on additional binding of Ypl225w to the UBA domain of nascent polypeptide-associated complex (NAC). Lastly, we show by orthogonal chemical genetics that Ypl225w primes eEF1A nascent chains for their subsequent binding to GTP and release from Ypl225w. Our work establishes eEF1A as a model system for chaperone-dependent co-translational folding and unveils a novel mechanism for GTP-driven folding on the ribosome.

biochemistry↗