Skip to content
Open access

Random in vitro Protein single-Loop Engineering (RiPLE) by mRNA display

Sep 2026 · bioRxiv · 0 citations · 13 references
Biology

Abstract

Peptide lasso-grafting strategies enable the transfer of established pharmacophores into compact protein scaffolds but often require optimization to preserve target binding and biological activity. Here, we report Random in-vitro Protein single-Loop Engineering (RiPLE), an mRNA-display strategy for the direct discovery of engineered ubiquitin binders, termed U-bodies, from a library containing a fully randomized surface loop of variable length. Using receptor tyrosine kinase-like orphan receptor 1 (ROR1) as a model target, we generated U-bodies through RiPLE and compared them with lasso-grafted U-bodies derived from a previously identified ROR1-binding macrocyclic peptide. Both approaches yielded U-bodies bearing single-digit nanomolar affinity to ROR1; however, RiPLE converged on de novo binding sequences that were distinct from the parental peptide. Notably, most selected U-bodies exhibited strong selectivity for ROR1 over the closely related receptor ROR2, whereas the parental peptide bound both receptors with high affinity. Representative ROR1-binding U-bodies also inhibited wound closure in ROR1-expressing MDA-MB-231 cells without detectable cytotoxicity. Applying RiPLE to the heterotrimeric G-protein subunit (GαS) similarly yielded high-affinity binders and revealed sequence convergence patterns distinct from lasso-grafting. Together, these results establish RiPLE as a powerful and complementary alternative to peptide-guided lasso-grafting, enabling de novo evolution of functional binding surfaces directly within their final protein scaffold.

Read PDF

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.