Structural and functional validation of a highly specific Smurf2 inhibitor

Author:

Tessier Tanner M.1ORCID,Chowdhury Arvid2,Stekel Zane1,Fux Julia1,Sartori Maria Augusta2,Teyra Joan3ORCID,Jarvik Nick4,Chung Jacky4,Kurinov Igor5,Sicheri Frank6,Sidhu Sachdev S.4,Singer Alex U.4,Zhang Wei1

Affiliation:

1. Department of Molecular and Cellular Biology University of Guelph Guelph Ontario Canada

2. Department of Molecular Genetics University of Toronto Toronto Ontario Canada

3. Icosagen Cell Factory OÜ Tartumaa Estonia

4. Department of Pharmacy University of Waterloo Kitchener Ontario Canada

5. NE‐CAT, Department of Chemistry and Chemical Biology Cornell University Argonne Illinois USA

6. Lunenfeld‐Tanenbaum Research Institute, Mount Sinai Hospital Toronto Ontario Canada

Abstract

AbstractSmurf1 and Smurf2 are two closely related member of the HECT (homologous to E6AP carboxy terminus) E3 ubiquitin ligase family and play important roles in the regulation of various cellular processes. Both were initially identified to regulate transforming growth factor‐β and bone morphogenetic protein signaling pathways through regulating Smad protein stability and are now implicated in various pathological processes. Generally, E3 ligases, of which over 800 exist in humans, are ideal targets for inhibition as they determine substrate specificity; however, there are few inhibitors with the ability to precisely target a particular E3 ligase of interest. In this work, we explored a panel of ubiquitin variants (UbVs) that were previously identified to bind Smurf1 or Smurf2. In vitro binding and ubiquitination assays identified a highly specific Smurf2 inhibitor, UbV S2.4, which was able to inhibit ligase activity with high potency in the low nanomolar range. Orthologous cellular assays further demonstrated high specificity of UbV S2.4 toward Smurf2 and no cross‐reactivity toward Smurf1. Structural analysis of UbV S2.4 in complex with Smurf2 revealed its mechanism of inhibition was through targeting the E2 binding site. In summary, we investigated several protein‐based inhibitors of Smurf1 and Smurf2 and identified a highly specific Smurf2 inhibitor that disrupts the E2–E3 protein interaction interface.

Funder

Canadian Institutes of Health Research

Publisher

Wiley

Subject

Molecular Biology,Biochemistry

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